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XCL207A323CR-G

XCL207A323CR-G

  • 厂商:

    TOREX(特瑞仕)

  • 封装:

    CL-2025-02

  • 描述:

    DC DC CONVERTER 3.2V 0.6A

  • 详情介绍
  • 数据手册
  • 价格&库存
XCL207A323CR-G 数据手册
XCL205/XCL206/XCL207 Series ETR28001-018a Inductor Built-in Step-Down “micro DC/DC” Converters ☆Green Operation Compatible ■GENERAL DESCRIPTION The XCL205/XCL206/XCL207 series is a synchronous step-down micro DC/DC converter which integrates an inductor and a control IC in one tiny package (2.5mm×2.0mm, h=1.0mm). A stable power supply with an output current of 600mA is configured using only two capacitors connected externally. Operating voltage range is from 2.0V to 6.0V(XCL20xG:1.8V~6.0V). Output voltage is internally set in a range from 0.8V to 4.0V in increments of 0.05V. The device is operated by 3.0MHz, and includes 0.42Ω P-channel driver transistor and 0.52Ω Nchannel switching transistor. As for operation mode, the XCL205 series is PWM control, the XCL206 series is automatic PWM/PFM switching control and the XCL207 series can be manually switched between the PWM control mode and the0automatic PWM/PFM switching control mode, allowing fast response, low ripple and high efficiency over the full range of loads (from light load to heavy load). During stand-by, the device is shutdown to reduce current consumption to as low as 1.0μA or less. With the built-in UVLO (Under Voltage Lock Out) function, the internal driver transistor is forced OFF when input voltage becomes 1.4V or lower. XCL205B (G, F)/XCL206B (G, F)/XCL207B (G, F) series provide short-time turn-on by the soft start function internally set in 0.25ms. XCL205B(C,G,F) /XCL206 B(C,G,F) / XCL207B(C,G,F) integrate CL auto discharge function which enables the electric charge stored at the output capacitor CL to be discharged via the internal auto-discharge switch located between the LX and VSS pins. When the devices enter stand-by mode, output voltage quickly returns to the VSS level as a result of this function. ■FEATURES ■APPLICATIONS Ultra-Small Input Voltage ●Mobile phones, Smart phones ●Bluetooth Headsets Output Voltage High Efficiency Output Current Oscillation Frequency Maximum Duty Cycle Capacitor CE Function ●WiMAX PDAs, MIDs, UMPCs ●Portable game consoles ●Digital cameras, Camcorders ●Electronic dictionaries Protection Circuits Control Methods Operating Ambient Temperature Environmentally Friendly : 2.5mm×2.0mm, h=1.0mm : 2.0V ~ 6.0V(A/B/C Type) 1.8V ~ 6.0V(G/F Type) : 0.8V ~ 4.0V (±2.0%) : 90% (VIN=4.2V, VOUT=3.3V) : 600mA : 3.0MHz (±15%) : 100% : Low ESR Ceramic : Active High Soft-Start Circuit Built-In CL High Speed Auto Discharge : Current Limiter Circuit Built-In (Constant Current & Latching) : PWM (XCL205) PWM/PFM Auto (XCL206) PWM/PFM Manual (XCL207) : -40℃ ~ 85℃ : EU RoHS Compliant, Pb Free ■TYPICAL APPLICATION CIRCUIT ■TYPICAL PERFORMANCE CHARACTERISTICS A/B/C/G Types XCL205A333xx/XCL206A333xx/XCL207A333xx 100 L1 600m CL 10μF Vss VOUT 80 VIN Vss CIN 4.7μF CE/MOD L2 Efficency:EFFI(%) LX XCL206/XCL207(PWM/PFM) 60 VIN= 5.5V 5.0V 4.2V 40 XCL205/XCL207 (PWM) 20 VOUT=3.3V (TOP VIEW) * “L1 and LX”, and “L2 and VOUT” is connected by wiring. 0 0.1 1 10 100 1000 Output Current:IOUT (mA) 1/27 XCL205/XCL206/XCL207 Series ■BLOCK DIAGRAM 1) A Type L2 L1 Inductor Phase Compensation VOUT R1 CFB Current Feedback Current Limit PWM Comparator Error Amp. FB Logic R2 Synch Buffer Drive Lx VSHORT Vref with Soft Start, CE VIN PWM/PFM Selector VSS Ramp Wave Generator OSC UVLO Cmp UVLO R3 VSS CE/MODE Control Logic R4 CE/MODE 2) B/C/G Type L2 L1 Inductor Phase Compensation VOUT R1 CFB Current Feedback Current Limit PWM Comparator Error Amp. FB Logic R2 Synch Buffer Drive Lx VSHORT Vref with Soft Start, CE VIN PWM/PFM Selector VSS Ramp Wave Generator OSC UVLO Cmp UVLO R3 VSS CE/ CE/MODE Control Logic R4 CE/MODE 3) F Type L2 L1 Inductor Phase Compensation FB Error Amp. FB Current Feedback Current Limit PWM Comparator Logic Synch Buffer Drive Lx VSHORT Vref with Soft Start, CE VIN PWM/PFM Selector VSS UVLO Cmp R3 VSS R4 UVLO Ramp Wave Generator OSC CE/ CE/MODE Control Logic CE/MODE NOTE: The XCL205 offers a fixed PWM control, a signal from CE/MODE Control Logic to PWM/PFM Selector is fixed to "L" level inside. The XCL206 control scheme is PWM/PFM automatic switching, a signal from CE/MODE Control Logic to PWM/PFM Selector is fixed to "H" level inside. The diodes placed inside are ESD protection diodes and parasitic diodes. 2/27 XCL205/XCL206/XCL207 Series ■PRODUCT CLASSIFICATION ●Ordering Information XCL205①②③④⑤⑥-⑦(*1) Fixed PWM control XCL206①②③④⑤⑥-⑦(*1) PWM / PFM automatic switching control XCL207①②③④⑤⑥-⑦(*1) Manual Mode Selection Pin (Semi-custom) DESIGNATOR ITEM SYMBOL A ① B Fixed Output Voltage Functions selection (All CE active high) C G Output Voltage External Setting (*2) (*3) VIN≧2.0V, No CL auto discharge, Standard soft-start VIN≧2.0V, Fixed Output Voltage CL auto discharge, High speed soft-start VIN≧2.0V, Fixed Output Voltage CL auto discharge, Standard soft-start VIN≧1.8V, Fixed Output Voltage CL auto discharge, High speed soft-start VIN≧1.8V, CL auto discharge, High speed soft-start Output voltage options e.g. 1.2V → ②=1, ③=2 1.25V → ②=1, ③=C 0.05V increments : 0.05=A,0.15=B, 0.25=C, 0.35=D, 0.45=E, 0.55=F, 0.65=H, 0.75=K, 0.85=L, 0.95=M External Setting 0.8V (F type) 3.0MHz ②③ Fixed Output Voltage 0~9 A~M ④ Output Voltage External Setting Oscillation Frequency 08 3 Packages (Order Unit) AR-G(*2) CL-2025 (3,000pcs/Reel) CR-G(*3) CL-2025-02(3,000pcs/Reel) ⑤⑥-⑦ (*1) F DESCRIPTION The “-G” suffix denotes Halogen and Antimony free as well as being fully EU RoHS compliant. AR-G is storage temperature range "-40℃ ~ 105℃". CR-G is storage temperature range "-40℃ ~ 125℃". ■PIN CONFIGURATION L1 7 VIN 6 1 Lx Vss 5 2 Vss CE/MODE 4 3 VOUT/FB 8 L2 (BOTTOM VIEW) * It should be connected the VSS pin (No. 2 and 5) to the GND pin. * If the dissipation pad needs to be connected to other pins, it should be connected to the GND pin. * Please refer to pattern layout page for the connecting to PCB. 3/27 XCL205/XCL206/XCL207 Series ■PIN ASSIGNMENT PIN NUMBER PIN NAME FUNCTIONS 1 2,5 Lx VSS VOUT FB CE / MODE VIN L1 L2 Switching Output Ground 3 4 6 7 8 Fixed Output Voltage Pin (A/B/C/G types) Output Voltage Sense Pin (F type) Chip Enable & Mode Switch Power Input Inductor Electrodes ■FUNCTION OPERATIONAL STATES CE/MODE XCL205 XCL206 XCL207 H Level (*1) Synchronous PWM Fixed Control Synchronous PWM/PFM Automatic Switching Synchronous PWM/PFM Automatic Switching M Leve (*2) - - Synchronous PWM Fixed Control L Level (*3) Stand-by Stand-by Stand-by ※series CE/MODE pin voltage level range H Level :0.65V ≦ H Level ≦ 6V (XCL205,XCL206) (*1) H Level :VIN-0.25V ≦ H Level ≦ VIN (XCL207) M Level :0.65V ≦ M Level ≦ VIN-1.0V (*2) L Level :0V ≦ L Level ≦ 0.25V (*3) Please do not leave the CE/MODE pin open (*4) ■ABSOLUTE MAXIMUM RATINGS RATINGS UNITS VIN Pin Voltage LX Pin Voltage PARAMETER VIN VLX -0.3 ~ 6.5 -0.3 ~ VIN + 0.3 V V VOUT Pin Voltage(A/B/C/G types) VFB Pin Voltage(F type) VOUT VFB -0.3 ~ 6.5 -0.3 ~ 6.5 V V CE/MODE Pin Voltage LX Pin Current VCE ILX -0.3 ~ 6.5 ±1500 V mA Pd 1000 (40mm x 40mm Standard board) (*1) mW Topr -40 ~ 85 ℃ Tstg -40 ~ 105 -40 ~ 125 ℃ Power Dissipation (Ta=25℃) SYMBOL CL2025 CL2025-02 Operating Ambient Temperature Storage Temperature(*2) CL-2025 CL-2025-02 (*1) The power dissipation figure shown is PCB mounted and is for reference only. (*2) Storage temperature, are divided by the product specification of the package. Please refer to PACKAGING INFORMATION for the mounting condition. 4/27 XCL205/XCL206/XCL207 Series ■ELECTRICAL CHARACTERISTICS Ta=25℃ ●XCL205Axx3AR/XCL206Axx3AR/XCL207Axx3AR/XCL205Axx3CR/XCL206Axx3CR/XCL207Axx3CR, PARAMETER SYMBOL Output Voltage VOUT Operating Voltage Range VIN CONDITIONS When connected to external components, VIN=VCE=5.0V, IOUT=30mA Maximum Output Current IOUTMAX VIN=VOUT(T)+2.0V, VCE=1.0V When connected to external components (*9) UVLO Voltage VUVLO VCE=VIN,VOUT=0V, Voltage which Lx pin holding “L” level (*1, *11) Supply Current (XCL205) MIN. TYP. MAX. UNITS CIRCUIT V ① 2.0 - 6.0 V ① 600 - - mA ① 1.00 1.40 1.78 V ③ - 46 65 - 21 35 μA ② IDD VIN=VCE=5.0V, VOUT=VOUT(T)×1.1 ISTB VIN=5.0V, VCE=0V, VOUT=VOUT(T)×1.1 - 0 1.0 μA ② Oscillation Frequency fOSC When connected to external components, VIN=VOUT(T)+2.0V,VCE=1.0V, IOUT=100mA 2550 3000 3450 kHz ① PFM Switching Current (*12) IPFM When connected to external components, VIN=VOUT(T)+2.0V, VCE=VIN , IOUT=1mA mA ⑩ PFM Duty Limit (*12) DTYLIMIT_PFM VCE= VIN= VOUT(T) +1.0V, IOUT=1mA - 200 300 % ① Maximum Duty Cycle DMAX VIN=VCE=5.0V, VOUT=VOUT (T)×0.9 100 - - % ③ DMIN VIN=VCE=5.0V, VOUT=VOUT (T)×1.1 - - 0 % ③ - - % ① 900 0.35 0.42 0.45 0.52 0.01 0.01 1050 0.55 0.67 0.65 0.77 1.0 1.0 1350 Ω Ω Ω Ω μA μA mA ④ ④ ⑤ ⑤ ⑥ - ±100 - ppm/ ℃ ① 0.65 - 6.0 V ③ VSS - 0.25 V ③ - - VIN - 1.0 V ① VIN 0.25 - - V ① -0.1 -0.1 0.0 0.0 0.1 0.1 μA μA ⑤ ⑤ 0.5 0.9 2.5 ms ① 1.0 - 20 ms ⑦ V ⑦ Supply Current (XCL206, XCL207) Stand-by Current Minimum Duty Cycle Efficiency(*2) EFFI Lx SW "H" ON Resistance 1 Lx SW "H" ON Resistance 2 Lx SW "L" ON Resistance 1 Lx SW "L" ON Resistance 2 Lx SW "H" Leakage Current (*5) Lx SW "L" Leakage Current (*5) Current Limit (*10) Output Voltage Temperature Characteristics RLxH RLxH RLxL RLxL ILEAKH ILEAKL ILIM △VOUT/ (VOUT・△ Topr) CE "H" Voltage VCEH CE "L" Voltage VCEL PWM "H" Level Voltage (*13) VPWMH PWM "L" Level Voltage (*13) VPWML CE "H" Current CE "L" Current ICEH ICEL Soft Start Time tSS Latch Time tLAT Short Protection Threshold Voltage VSHORT Inductance Value Allowed Inductor Current L IDC When connected to external components, VCE=VIN=VOUT (T)+1.2V, IOUT = 100mA VIN=VCE=5.0V, VOUT=0V, ILX=100mA (*3) VIN=VCE=3.6V, VOUT=0V, ILX=100mA (*3) VIN=VCE=5.0V (*4) VIN=VCE=3.6V, (*4) VIN=VOUT=5.0V, VCE=0V, LX=0V VIN=VOUT=5.0V, VCE=0V, LX= 5.0V VIN=VCE=5.0V, VOUT=VOUT(T)×0.9 (*8) IOUT =30mA -40℃≦Topr≦85℃ VOUT = VOUT(T)x0.4, Applied voltage to VCE, Voltage changes Lx to “H” level (*11) VOUT = VOUT(T)x0.4, Applied voltage to VCE, Voltage changes Lx to “L” level (*11) When connected to external components, IOUT=1mA (*6), Voltage which oscillation frequency becomes 2550kHz≦fOSC≦3450kHz (*13) When connected to external components, IOUT=1mA (*6), Voltage which oscillation frequency becomes fOSC<2550kHz (*13) VIN =VCE =5.0V, VOUT = VOUT(T)x0.9 VIN =5.0V, VCE =0V, VOUT = VOUT(T)x0.9 When connected to external components, VCE=0V→VIN , IOUT=1mA VIN=VCE=5.0V, VOUT=0.8×VOUT(T) Short Lx at 1Ω resistance (*7) Sweeping VOUT, VIN=VCE=5.0V, Short Lx at 1Ω resistance, VOUT voltage which Lx becomes “L” level within 1ms Test frequency=1MHz ΔT=40℃ - 1.5 1000 - μH mA Test conditions: Unless otherwise stated, VIN=5.0V, VOUT (T) =Nominal Voltage, applied voltage sequence is VOUT→VIN→VCE NOTE: (*1) Including hysteresis operating voltage range. (*2) EFFI = { ( output voltage×output current ) / ( input voltage×input current) }×100 (*3) ON resistance (Ω)= (V - Lx pin measurement voltage) / 100mA IN (*4) Design value (*5) When temperature is high, a current of approximately 10μA (maximum) may leak. (*6) The CE/MODE pin of the XCL207 series works also as an external switching pin of PWM control and PWM/PFM control. When the IC is in the operation, control is switched to the automatic PWM/PFM switching mode when the CE/MODE pin voltage is equal to or greater than VIN minus 0.3V, and to the PWM mode when the CE/MODE pin voltage is equal to or lower than VIN minus 1.0V and equal to or greater than VCEH. (*7) Time until it short-circuits V OUT with GND via 1Ω of resistor from an operational state and is set to Lx=0V from current limit pulse generating. (*8) When V is less than 2.4V, limit current may not be reached because voltage falls caused by ON resistance. IN (*9) When the difference between the input and the output is small, some cycles may be skipped completely before current maximizes. If current is further pulled from this state, output voltage will decrease because of P-ch driver ON resistance. (*10) Current limit denotes the level of detection at peak of coil current. (*11) “H”=V ~V -1.2V, “L”=+0.1V~-0.1V IN IN (*12) I PFM and DTYLIMIT_PFM are defined only for the XCL206 and XCL207 series which have PFM control function. (Not for the XCL205 series) (*13) V PWMH and VPWML are defined only for the XCL207 series. (They are not used in the XCL205/and XCL206 series) 5/27 XCL205/XCL206/XCL207 Series ■ELECTRICAL CHARACTERISTICS (Continued) ●XCL205Bxx3AR/XCL206Bxx3AR/XCL207Bxx3AR/XCL205Bxx3CR/XCL206Bxx3CR/XCL207Bxx3CR, PARAMETER SYMBOL Output Voltage VOUT Operating Voltage Range VIN Maximum Output Current IOUTMAX UVLO Voltage VUVLO Supply Current (XCL205) CONDITIONS When connected to external components, VIN=VCE=5.0V, IOUT=30mA VIN=VOUT(T)+2.0V, VCE=1.0V When connected to external components (*9) VCE=VIN,VOUT=0V, Voltage which Lx pin holding “L” level (*1, *11) Supply Current (XCL206, XCL207) Stand-by Current IDD VIN=VCE=5.0V, VOUT=VOUT(T)×1.1 ISTB Oscillation Frequency fOSC PFM Switching Current (*12) IPFM VIN=5.0V, VCE=0V, VOUT=VOUT(T)×1.1 When connected to external components, VIN =VOUT(T)+2.0V,VCE=1.0V, IOUT=100mA When connected to external components, VIN =VOUT(T)+2.0V, VCE = VIN , IOUT=1mA Ta=25℃ MIN. TYP. MAX. UNITS CIRCUIT V ① 2.0 - 6.0 V ① 600 - - mA ① 1.00 1.40 1.78 V ③ - 46 65 - 21 35 μA ② - 0 1.0 μA ② 2550 3000 3450 kHz ① mA ⑩ DTYLIMIT_PFM VCE=VIN= VOUT(T) +1.0V, IOUT=1mA - 200 300 % ① Maximum Duty Cycle DMAX VIN=VCE=5.0V, VOUT=VOUT (T)×0.9 100 - - % ③ Minimum Duty Cycle DMIN VIN=VCE=5.0V, VOUT=VOUT (T)×1.1 When connected to external components, VCE=VIN=VOUT (T)+1.2V, IOUT=100mA VIN=VCE=5.0V, VOUT=0V, ILX=100mA (*3) VIN=VCE=3.6V, VOUT=0V, ILX=100mA (*3) VIN=VCE=5.0V (*4) VIN=VCE = 3.6V (*4) VIN=VOUT=5.0V, VCE =0V, LX=0V VIN=VCE=5.0V, VOUT=VOUT (T)×0.9 (*8) - - 0 % ③ - - % ① 900 0.35 0.42 0.45 0.52 0.01 1050 0.55 0.67 0.65 0.77 1.0 1350 Ω Ω Ω Ω μA mA ④ ④ ⑨ ⑥ - ±100 - ppm/ ℃ ① 0.65 - 6.0 V ③ VSS - 0.25 V ③ - - VIN - 1.0 V ① VIN 0.25 - - V ① -0.1 -0.1 0.0 0.0 0.1 0.1 μA μA ⑤ ⑤ ms ① ms ⑦ V ⑦ Ω μH mA ⑧ PFM Duty Limit (*12) Efficiency (*2) Lx SW "H" ON Resistance 1 Lx SW "H" ON Resistance 2 Lx SW "L" ON Resistance 1 Lx SW "L" ON Resistance 2 Lx SW "H" Leakage Current (*5) Current Limit (*10) EFFI Output Voltage Temperature Characteristics RLxH RLxH RLxL RLxL ILEAKH ILIM △VOUT/ (VOUT・△ Topr) CE "H" Voltage VCEH CE "L" Voltage VCEL PWM "H" Level Voltage (*13) VPWMH PWM "L" Level Voltage (*13) VPWML CE "H" Current CE "L" Current ICEH ICEL Soft Start Time tSS Latch Time tLAT Short Protection Threshold Voltage VSHORT CL Discharge Inductance Value Allowed Inductor Current RDCHG L IDC IOUT =30mA -40℃≦Topr≦85℃ VOUT = VOUT(T)x0.4, Applied voltage to VCE, Voltage changes Lx to “H” level (*11) VOUT = VOUT(T)x0.4, Applied voltage to VCE, Voltage changes Lx to “L” level (*11) When connected to external components, IOUT=1mA (*6), Voltage which oscillation frequency becomes 2550kHz≦fOSC≦3450kHz (*13) When connected to external components, IOUT=1mA (*6), Voltage which oscillation frequency becomes fOSC<2550kHz (*13) VIN =VCE =5.0V, VOUT = VOUT(T)x0.9 VIN =5.0V, VCE =0V, VOUT = VOUT(T)x0.9 When connected to external components, VCE=0V→VIN , IOUT=1mA VIN=VCE=5.0V, VOUT=0.8×VOUT(T) Short Lx at 1Ω resistance (*7) Sweeping VOUT, VIN=VCE=5.0V, Short Lx at 1Ω resistance, VOUT voltage which Lx becomes “L” level within 1ms VIN=5.0V, LX=5.0V, VCE=0V, VOUT=Open Test frequency =1MHz ΔT=40℃ 1.0 200 - - 20 300 1.5 1000 450 - Test conditions: Unless otherwise stated, VIN=5.0V, VOUT (T) =Nominal Voltage, applied voltage sequence is VOUT→VIN→VCE NOTE: Including hysteresis operating voltage range. EFFI = { ( output voltage×output current ) / ( input voltage×input current) }×100 ON resistance (Ω)= (VIN - Lx pin measurement voltage) / 100mA (*4) Design value (*5) When temperature is high, a current of approximately 10μA (maximum) may leak. (*6) The CE/MODE pin of the XCL207 series works also as an external switching pin of PWM control and PWM/PFM control. When the IC is in the operation, control is switched to the automatic PWM/PFM switching mode when the CE/MODE pin voltage is equal to or greater than VIN minus 0.3V, and to the PWM mode when the CE/MODE pin voltage is equal to or lower than VIN minus 1.0V and equal to or greater than VCEH. (*7) Time until it short-circuits V OUT with GND via 1Ω of resistor from an operational state and is set to Lx=0V from current limit pulse generating. (*8) When V is less than 2.4V, limit current may not be reached because voltage falls caused by ON resistance. IN (*9) When the difference between the input and the output is small, some cycles may be skipped completely before current maximizes. If current is further pulled from this state, output voltage will decrease because of P-ch driver ON resistance. (*10) Current limit denotes the level of detection at peak of coil current. (*11) “H”=V ~V -1.2V, “L”=+0.1V~-0.1V IN IN (*12) IPFM and DTYLIMIT_PFM are defined only for the XCL206 and XCL207 series which have PFM control function. (Not for the XCL205 series) (*13) V PWMH and VPWML are defined only for the XCL207 series. (They are not used in the XCL205/and XCL206 series) (*1) (*2) (*3) 6/27 XCL205/XCL206/XCL207 Series ■ELECTRICAL CHARACTERISTICS (Continued) ●XCL205Cxx3AR/XCL206Cxx3AR/XCL207Cxx3AR/XCL205Cxx3CR/XCL206Cxx3CR/XCL207Cxx3CR, PARAMETER SYMBOL Output Voltage VOUT Operating Voltage Range VIN Maximum Output Current IOUTMAX UVLO Voltage VUVLO Supply Current (XCL205) CONDITIONS When connected to external components, VIN = VCE =5.0V, IOUT =30mA VIN=VOUT(T)+2.0V, VCE=1.0V When connected to external components (*9) VCE=VIN,VOUT=0V, Voltage which Lx pin holding “L” level (*1, *11) IDD VIN =VCE=5.0V, VOUT= VOUT(T)×1.1 Stand-by Current ISTB Oscillation Frequency fOSC PFM Switching Current (*12) IPFM VIN =5.0V, VCE=0V, VOUT= VOUT(T)×1.1 When connected to external components, VIN =VOUT(T)+2.0V,VCE=1.0V, IOUT=100mA When connected to external components, VIN =VOUT(T)+2.0V, VCE = VIN , IOUT=1mA Supply Current (XCL206, XCL207) PFM Duty Limit (*12) DTYLIMIT_PFM VCE= VIN = VOUT(T) +1.0V, IOUT=1mA Maximum Duty Cycle MAXDTY VIN = VCE =5.0V, VOUT = VOUT (T)×0.9 Minimum Duty Cycle MINDTY VIN = VCE =5.0V, VOUT = VOUT (T)×1.1 When connected to external components, VCE = VIN = VOUT (T)+1.2V, IOUT = 100mA VIN = VCE = 5.0V, VOUT = 0V,ILX = 100mA (*3) VIN = VCE = 3.6V, VOUT = 0V,ILX = 100mA (*3) VIN = VCE = 5.0V (*4) VIN = VCE = 3.6V (*4) VIN= VOUT =5.0V, VCE =0V, LX=0V VIN = VCE= 5.0V, VOUT = VOUT (T)×0.9 (*8) IOUT =30mA -40℃≦Topr≦85℃ VOUT = VOUT(T)x0.4, Applied voltage to VCE, Voltage changes Lx to “H” level (*11) VOUT = VOUT(T)x0.4, Applied voltage to VCE, Voltage changes Lx to “L” level (*11) When connected to external components, IOUT=1mA (*6), Voltage which oscillation frequency becomes 2550kHz≦fOSC≦3450kHz (*13) When connected to external components, IOUT=1mA (*6), Voltage which oscillation frequency becomes fOSC<2550kHz (*13) VIN =VCE =5.0V, VOUT = VOUT(T)x0.9 VIN =5.0V, VCE =0V, VOUT = VOUT(T)x0.9 When connected to external components, VCE=0V→VIN , IOUT=1mA VIN=VCE=5.0V, VOUT=0.8×VOUT(T) Short Lx at 1Ω resistance (*7) Sweeping VOUT, VIN=VCE=5.0V, Short Lx at 1Ω resistance, VOUT voltage which Lx becomes “L” level within 1ms VIN = 5.0V, LX = 5.0V VCE = 0V VOUT = open Test frequency=1MHz ΔT=40℃ Efficiency (*2) EFFI Lx SW "H" ON Resistance 1 RLxH Lx SW "H" ON Resistance 2 RLxH Lx SW "L" ON Resistance 1 RLxL Lx SW "L" ON Resistance 2 RLxL Lx SW "H" Leakage Current (*5) ILEAKH Current Limit (*10) ILIM Output Voltage △VOUT/ (VOUT・△Topr) Temperature Characteristics CE "H" Voltage VCEH CE "L" Voltage VCEL PWM "H" Level Voltage (*13) VPWMH PWM "H" Level Voltage (*13) VPWML CE "H" Current CE "L" Current ICEH ICEL Soft Start Time tSS Latch Time tLAT Short Protection Threshold Voltage VSHORT CL Discharge Inductance Value Allowed Inductor Current RDCHG L IDC Ta=25℃ MIN. TYP. MAX. UNITS CIRCUIT V ① 2.0 - 6.0 V ① 600 - - mA ① 1.00 1.40 1.78 V ③ - 46 65 21 35 μA ② - 0 1.0 μA ② 2550 3000 3450 kHz ① mA ⑩ - 200 300 % ① 100 - - % ③ - - 0 % ③ - - % ① 900 0.35 0.42 0.45 0.52 0.01 1050 0.55 0.67 0.65 0.77 1.0 1350 Ω Ω Ω Ω μA mA ④ ④ ⑨ ⑥ - ±100 - ppm/ ℃ ① 0.65 - 6.0 V ③ VSS - 0.25 V ③ - - VIN - 1.0 V ① VIN 0.25 - - V ① -0.1 -0.1 0.0 0.0 0.1 0.1 μA μA ⑤ ⑤ 0.5 0.9 2.5 ms ① 1.0 - 20 ms ⑦ V ⑦ Ω μH mA ⑧ - 200 - 300 1.5 1000 450 - Test conditions: Unless otherwise stated, VIN=5.0V, VOUT (T) = Nominal Voltage, applied voltage sequence is VOUT→VIN→VCE NOTE: (*1) Including hysteresis operating voltage range. EFFI = { ( output voltage×output current ) / ( input voltage×input current) }×100 (*3) ON resistance (Ω)= (VIN - Lx pin measurement voltage) / 100mA (*4) Design value (*5) When temperature is high, a current of approximately 10μA (maximum) may leak. (*6) The CE/MODE pin of the XCL207 series works also as an external switching pin of PWM control and PWM/PFM control. When the IC is in the operation, control is switched to the automatic PWM/PFM switching mode when the CE/MODE pin voltage is equal to or greater than VIN minus 0.3V, and to the PWM mode when the CE/MODE pin voltage is equal to or lower than VIN minus 1.0V and equal to or greater than VCEH. (*7) Time until it short-circuits VOUT with GND via 1Ω of resistor from an operational state and is set to Lx=0V from current limit pulse generating. (*8) When VIN is less than 2.4V, limit current may not be reached because voltage falls caused by ON resistance. (*9) When the difference between the input and the output is small, some cycles may be skipped completely before current maximizes. If current is further pulled from this state, output voltage will decrease because of P-ch driver ON resistance. (*10) Current limit denotes the level of detection at peak of coil current. (*11) “H”=VIN~VIN-1.2V, “L”=+0.1V~-0.1V (*12) IPFM and DTYLIMIT_PFM are defined only for the XCL206 and XCL207 series which have PFM control function. (Not for the XCL205 series) (*13) VPWMH and VPWML are defined only for the XCL207 series. (They are not used in the XCL205/and XCL206 series) (*2) 7/27 XCL205/XCL206/XCL207 Series ■ELECTRICAL CHARACTERISTICS (Continued) ●XCL205Gxx3AR/XCL206Gxx3AR/XCL207Gxx3AR/XCL205Gxx3CR/XCL206Gxx3CR/XCL207Gxx3CR, PARAMETER SYMBOL Output Voltage VOUT Operating Voltage Range VIN Maximum Output Current IOUTMAX UVLO Voltage VUVLO Supply Current (XCL205) CONDITIONS When connected to external components, VIN = VCE =5.0V, IOUT =30mA VIN=VOUT(T)+2.0V, VCE=1.0V When connected to external components (*9) VCE=VIN,VOUT(T)×0.5(*14), Voltage which Lx pin holding “L” level (*1, *11) IDD VIN =VCE=5.0V, VOUT= VOUT(T)×1.1 Stand-by Current ISTB Oscillation Frequency fOSC PFM Switching Current (*12) IPFM VIN =5.0V, VCE=0V, VOUT= VOUT(T)×1.1 When connected to external components, VIN =VOUT(T)+2.0V,VCE=1.0V, IOUT=100mA When connected to external components, VIN =VOUT(T)+2.0V, VCE = VIN , IOUT=1mA Supply Current (XCL206, XCL207) PFM Duty Limit (*12) DTYLIMIT_PFM VCE= VIN = VOUT(T) +1.0V, IOUT=1mA Maximum Duty Cycle MAXDTY VIN = VCE =5.0V, VOUT = VOUT (T)×0.9 Minimum Duty Cycle MINDTY Efficiency(*2) EFFI VIN = VCE =5.0V, VOUT = VOUT (T)×1.1 When connected to external components, VCE = VIN = VOUT (T)+1.2V, IOUT = 100mA VIN = VCE = 5.0V, VOUT = 0V,ILX = 100mA (*3) VIN = VCE = 3.6V, VOUT = 0V,ILX = 100mA (*3) VIN = VCE = 5.0V (*4) VIN = VCE = 3.6V (*4) VIN= VOUT =5.0V, VCE =0V, LX=0V VIN = VCE= 5.0V, VOUT = VOUT (T)×0.9 (*8) IOUT =30mA -40℃≦Topr≦85℃ VOUT = VOUT(T)x0.4, Applied voltage to VCE, Voltage changes Lx to “H” level (*11) VOUT = VOUT(T)x0.4, Applied voltage to VCE, Voltage changes Lx to “L” level (*11) When connected to external components, IOUT=1mA (*6), Voltage which oscillation frequency becomes 2550kHz≦fOSC≦3450kHz (*13) When connected to external components, IOUT=1mA (*6), Voltage which oscillation frequency becomes fOSC<2550kHz (*13) VIN =VCE =5.0V, VOUT = VOUT(T)x0.9 VIN =5.0V, VCE =0V, VOUT = VOUT(T)x0.9 When connected to external components, VCE=0V→VIN , IOUT=1mA VIN=VCE=5.0V, VOUT=0.8×VOUT(T) Short Lx at 1Ω resistance (*7) Sweeping VOUT, VIN=VCE=5.0V, Short Lx at 1Ω resistance, VOUT voltage which Lx becomes “L” level within 1ms VIN = 5.0V, LX = 5.0V VCE = 0V VOUT = open Test frequency=1MHz ΔT=40℃ Lx SW "H" ON Resistance 1 RLxH Lx SW "H" ON Resistance 2 RLxH Lx SW "L" ON Resistance 1 RLxL Lx SW "L" ON Resistance 2 RLxL Lx SW "H" Leakage Current (*5) ILEAKH Current Limit (*10) ILIM Output Voltage △VOUT/ (VOUT・△Topr) Temperature Characteristics CE "H" Voltage VCEH CE "L" Voltage VCEL PWM "H" Level Voltage (*13) VPWMH PWM "H" Level Voltage (*13) VPWML CE "H" Current CE "L" Current ICEH ICEL Soft Start Time tSS Latch Time tLAT Short Protection Threshold Voltage VSHORT CL Discharge Inductance Value Allowed Inductor Current RDCHG L IDC Ta=25℃ MIN. TYP. MAX. UNITS CIRCUIT V ① 1.8 - 6.0 V ① 600 - - mA ① 1.00 1.40 1.78 V ③ - 46 65 - 21 35 μA ② - 0 1.0 μA ② 2550 3000 3450 kHz ① mA ⑩ - 200 300 % ① 100 - - % ③ - - 0 % ③ - - % ① 900 0.35 0.42 0.45 0.52 0.01 1050 0.55 0.67 0.65 0.77 1.0 1350 Ω Ω Ω Ω μA mA ④ ④ ⑨ ⑥ - ±100 - ppm/ ℃ ① 0.65 - 6.0 V ③ VSS - 0.25 V ③ - - VIN - 1.0 V ① VIN 0.25 - - V ① -0.1 -0.1 0.0 0.0 0.1 0.1 μA μA ⑤ ⑤ ms ① ms ⑦ V ⑦ Ω μH mA ⑧ - 1.0 200 - - 20 300 1.5 1000 450 - Test conditions: Unless otherwise stated, VIN=5.0V, VOUT (T) = Nominal Voltage, applied voltage sequence is VOUT→VIN→VCE NOTE: (*1) Including hysteresis operating voltage range. EFFI = { ( output voltage×output current ) / ( input voltage×input current) }×100 (*3.) ON resistance (Ω)= (VIN - Lx pin measurement voltage) / 100mA (*4.) Design value (*5) When temperature is high, a current of approximately 10μA (maximum) may leak. (*6) The CE/MODE pin of the XCL207 series works also as an external switching pin of PWM control and PWM/PFM control. When the IC is in the operation, control is switched to the automatic PWM/PFM switching mode when the CE/MODE pin voltage is equal to or greater than VIN minus 0.3V, and to the PWM mode when the CE/MODE pin voltage is equal to or lower than VIN minus 1.0V and equal to or greater than VCEH. (*7) Time until it short-circuits VOUT with GND via 1Ω of resistor from an operational state and is set to Lx=0V from current limit pulse generating. (*8) When VIN is less than 2.4V, limit current may not be reached because voltage falls caused by ON resistance. (*9) When the difference between the input and the output is small, some cycles may be skipped completely before current maximizes. If current is further pulled from this state, output voltage will decrease because of P-ch driver ON resistance. (*10) Current limit denotes the level of detection at peak of coil current. (*11) “H”=VIN~VIN-1.2V, “L”=+0.1V~-0.1V (*12) IPFM and DTYLIMIT_PFM are defined only for the XCL206 and XCL207 series which have PFM control function. (Not for the XCL 205 series) (*13) VPWMH and VPWML are defined only for the XCL207 series. (They are not used in the XCL205/and XCL206 series) (*2) (*14) 8/27 VIN is applied when VOUT (T) x 0.5V becomes more than VIN. XCL205/XCL206/XCL207 Series ■ELECTRICAL CHARACTERISTICS (Continued) ●XCL205F083AR/XCL206F083AR/XCL207F083AR/XCL205F083CR/XCL206F083CR/XCL207F083CR, PARAMETER SYMBOL FB Voltage VFB Operating Voltage Range VIN Maximum Output Current IOUTMAX UVLO Voltage VUVLO Supply Current (XCL205) CONDITIONS VIN=VCE=5.0V, VFB voltage which Decrease VFB from 0.9V, Lx becomes “H” (*11) level VIN=VOUT(T)+2.0V, VCE=1.0V When connected to external components (*9) VCE=VIN,VFB= 0.4V, Voltage which Lx pin holding “L” level (*1, *11) IDD VIN =VCE=5.0V, VFB= 0.88V Stand-by Current ISTB Oscillation Frequency fOSC PFM Switching Current (*12) IPFM VIN =5.0V, VCE=0V, VFB= 0.88V When connected to external components, VIN =3.2V, VCE=1.0V, IOUT=100mA When connected to external components, VIN =3.2V, VCE = VIN , IOUT=1mA Supply Current (XCL206, XCL207) PFM Duty Limit (*12) DTYLIMIT_PFM VCE= VIN = 2.2V, IOUT=1mA Maximum Duty Cycle MAXDTY VIN = VCE =5.0V, VFB = 0.72V Minimum Duty Cycle MINDTY VIN = VCE =5.0V, VFB = 0.88V When connected to external components, VCE = VIN = 2.4V, IOUT = 100mA VIN = VCE = 5.0V, VFB = 0.72V,ILX = 100mA (*3) VIN = VCE = 3.6V, VFB = 0.72V,ILX = 100mA (*3) VIN = VCE = 5.0V (*4) VIN = VCE = 3.6V (*4) VIN= VFB =5.0V, VCE =0V, LX=0V VIN = VCE= 5.0V, VFB = 0.72V (*8) IOUT =30mA -40℃≦Topr≦85℃ VFB=0.72V, Applied voltage to VCE, Voltage changes Lx to “H” level (*11) VFB=0.72V, Applied voltage to VCE, Voltage changes Lx to “L” level (*11) When connected to external components, IOUT=1mA (*6), Voltage which oscillation frequency becomes 2550kHz≦fOSC≦3450kHz (*13) When connected to external components, IOUT=1mA (*6), Voltage which oscillation frequency becomes fOSC<2550kHz (*13) VIN = VCE =5.0V, VFB = 0.72V VIN =5.0V, VCE = 0V, VFB = 0.72V When connected to external components, VCE=0V→VIN , IOUT=1mA VIN=VCE=5.0V, VFB=0.64 Short Lx at 1Ω resistance (*7) VIN=VCE=5.0V, VFB voltage which Decrease VFB from 0.4V, Lx becomes “L” (*11)level within 1ms Efficiency (*2) EFFI Lx SW "H" ON Resistance 1 RLxH Lx SW "H" ON Resistance 2 RLxH Lx SW "L" ON Resistance 1 RLxL Lx SW "L" ON Resistance 2 RLxL Lx SW "H" Leakage Current (*5) ILEAKH Current Limit (*10) ILIM Output Voltage △VOUT/ (VOUT・△Topr) Temperature Characteristics CE "H" Voltage VCEH CE "L" Voltage VCEL PWM "H" Level Voltage (*13) VPWMH PWM "H" Level Voltage (*13) VPWML CE "H" Current CE "L" Current ICEH ICEL Soft Start Time tSS Latch Time tLAT Short Protection Threshold Voltage VSHORT CL Discharge Inductance Value Allowed Inductor Current RDCHG L IDC VIN = 5.0V LX = 5.0V VCE = 0V, VFB = open Test frequency=1MHz ΔT=40℃ Ta=25℃ MIN. TYP. MAX. UNITS CIRCUIT 0.784 0.800 0.816 V ③ 1.8 - 6.0 V ⑪ 600 - - mA ⑪ 1.00 1.40 1.78 V ③ - 46 65 - 21 35 μA ② - 0 1.0 μA ② 2550 3000 3450 kHz ⑪ 170 220 270 mA ⑫ - 200 300 % ⑪ 100 - - % ③ - - 0 % ③ - 86 - % ⑪ 900 0.35 0.42 0.45 0.52 0.01 1050 0.55 0.67 0.65 0.77 1.0 1350 Ω Ω Ω Ω μA mA ④ ④ ⑨ ⑥ - ±100 - ppm/ ℃ ⑪ 0.65 - 6.0 V ③ VSS - 0.25 V ③ - - VIN - 1.0 V ⑪ VIN 0.25 - - V ⑪ -0.1 -0.1 0.0 0.0 0.1 0.1 μA μA ⑤ ⑤ - 0.25 0.40 ms ⑪ 1.0 - 20 ms ⑦ 0.15 0.20 0.25 V ⑦ 200 - 300 1.5 1000 450 - Ω μH mA ⑧ - Test conditions: VOUT=1.2V when the external components are connected. Unless otherwise stated, VIN=5.0V, applied voltage sequence is VFB→VIN→VCE NOTE: (*1) Including hysteresis operating voltage range. (*2) EFFI = { ( output voltage×output current ) / ( input voltage×input current) }×100 (*3) ON resistance (Ω)= (VIN - Lx pin measurement voltage) / 100mA (*4) Design value (*5) When temperature is high, a current of approximately 10μA (maximum) may leak. (*6) The CE/MODE pin of the XCL207 series works also as an external switching pin of PWM control and PWM/PFM control. When the IC is in the operation, control is switched to the automatic PWM/PFM switching mode when the CE/MODE pin voltage is equal to or greater than VIN minus 0.3V, and to the PWM mode when the CE/MODE pin voltage is equal to or lower than VIN minus 1.0V and equal to or greater than VCEH. (*7) Time until it short-circuits VFB with GND via 1Ωof resistor from an operational state and is set to Lx=0V from current limit pulse generating. (*8) When VIN is less than 2.4V, limit current may not be reached because voltage falls caused by ON resistance. (*9) When the difference between the input and the output is small, some cycles may be skipped completely before current maximizes. If current is further pulled from this state, output voltage will decrease because of P-ch driver ON resistance. (*10) Current limit denotes the level of detection at peak of coil current. (*11) “H”=VIN~VIN-1.2V, “L”=+0.1V~-0.1V (*12) IPFM and DTYLIMIT_PFM are defined only for the XCL206 and XCL207 series which have PFM control function. (Not for the XCL205 series) (*13) VPWMH and VPWML are defined only for the XCL207 series. (They are not used in the XCL205/and XCL206 series) 9/27 XCL205/XCL206/XCL207 Series ■ELECTRICAL CHARACTERISTICS (Continued) ●PFM Switching Current ●Output Voltage NOMINAL OUTPUT VOUT(V) IPFM(mA) NOMINAL OUTPUT MIN TYP MAX VOUT(T) MIN TYP MAX VOUT(T)≦1.2V 190 260 350 1.00 0.980 1.000 1.020 1.2V<VOUT(T)≦1.75V 180 240 300 1.20 1.176 1.200 1.224 1.8V≦VOUT(T) 170 220 270 1.40 1.372 1.400 1.428 1.50 1.470 1.500 1.530 1.75 1.715 1.750 1.785 1.80 1.764 1.800 1.836 1.90 1.862 1.900 1.938 2.50 2.450 2.500 2.550 2.80 2.744 2.800 2.856 2.85 2.793 2.850 2.907 3.00 2.940 3.000 3.060 3.30 3.234 3.300 3.366 VOLTAGE VOLTAGE ●Short Protection Threshold Voltage ●Efficiency NOMINAL Efficiency (%) OUTPUT XCL205/206/207 VOLTAGE VOLTAGE VOUT(T) 3.0MHz 1.00 79 VOUT(T) MIN TYP MAX MIN TYP MAX 1.20 82 1.00 0.375 0.500 0.625 0.188 0.250 0.313 1.40 83 1.20 0.450 0.600 0.750 0.225 0.300 0.375 1.50 84 1.40 0.525 0.700 0.875 0.263 0.350 0.438 1.50 0.563 0.750 0.938 0.282 0.375 0.469 1.75 0.656 0.875 1.094 0.328 0.438 0.547 1.80 0.675 0.900 1.125 0.338 0.450 0.563 1.90 0.713 0.950 1.188 0.357 0.475 0.594 2.50 0.938 1.250 1.563 0.469 0.625 0.782 2.80 1.050 1.400 1.750 0.525 0.700 0.875 2.85 1.069 1.425 1.781 0.535 0.713 0.891 3.00 1.125 1.500 1.875 0.563 0.750 0.938 3.30 1.238 1.650 2.063 0.619 0.825 1.032 OUTPUT 1.75 1.80 85 1.90 2.50 2.80 2.85 VSHORT(V) NOMINAL 86 3.00 3.30 XCL205/206/207A,B,C ●Soft Start Time (XCL20xB, XCL20xG) NOMINAL OUTPUT VOLTAGE tSS(ms) TYP MAX 0.8V≦VOUT(T)≦1.75V 0.25 0.4 1.8V≦VOUT(T)≦4.0V 0.32 0.5 10/27 XCL205/206/207G XCL205/XCL206/XCL207 Series ■TEST CIRCUITS < Circuit No.1 > Wave Form Measure Point L2 A L1 VIN L2 A Lx CE/MODE CIN < Circuit No.2 > V VOUT CL VSS L1 VIN 1μF Lx CE/MODE VOUT/FB VSS ※ E xt ernal Component s CIN : 4.7μF(ceram ic)    CL : 10μF(ceram ic) < Circuit No.3 > < Circuit No.4 > L2 Wave Form Measure Point L1 VIN CE/MODE 1μF L2 Lx L1 VIN Rpulldown 200Ω VOUT/FB 1μF Lx CE/MODE VSS V VOUT/FB VSS 100mA ON resistance = (V IN-V Lx)/100mA < Circuit No.5 > < Circuit No.6 > L1L1 L2 VIN 1μF ICE H A ILeakH Lx CE/MODE VOUT/FB A VIN ILeakL 1μF L2 L1 CE/MODE VSS Wave Form Measure P oint L1 Lx V VOUT/FB VSS ILI M ICE L < Circuit No.7 > < Circuit No.8 > L2 L1 VIN 1μF Wave Form Measure Point Lx CE/MODE VOUT/FB Lx CE/MODE 1uF VOUT/FB < Circuit No.10 > L2 L1 VIN A Lx CE/MODE VOUT/FB CIN VSS A VSS Rpulldown 1Ω < Circuit No.9 > CIN L1 VIN Il at VSS A ILx L2 Wave Form Measure Point L2 L L1 VIN Lx CE/MODE V VOUT CL VSS ※ E xt ernal Component s L : 1.5uH(S elect) CIN : 4.7μF(ceram ic)    CL : 10μF(ceram ic) < Circuit No.11 > < Circuit No.12 > Wave Form Measure Point Wave Form Measure Point V OUT V OUT CFB A VIN L2 L1 Lx R1 CL R2 CIN ※ E xt ernal Component s CIN : 4.7μF(ceram ic)    CL : 10μF(ceram ic) R1 : 150kΩ   R2  : 300kΩ   CFB : 100pF(ceram ic)   ※V OUT(T)=1.2V CE/MODE VSS FB CFB V A VIN L2 L1 L Lx R1 CL R2 CIN CE/MODE FB V VSS ※ E xt ernal Component s L : 1.5uH(S elect) CIN : 4.7μF(ceram ic)    CL : 10μF(ceram ic) R1 : 150kΩ   R2  : 300kΩ   CFB : 100pF(ceram ic)   ※V OUT(T)=1.2V 11/27 XCL205/XCL206/XCL207 Series ■TYPICAL APPLICATION CIRCUIT ●XCL205/XCL206/XCL207 Series A/B/C/G Types ●External Components L1 V LX VIN VSS VSS CIN : 10V/4.7μF (Ceramic) VIN C CL : 6.3V/10μF (Ceramic) NOTE CIN VOUT The Inductor can be used only for this DC/DC converter. Please do not use this inductor for the other reasons. CL VOUT Please use B, X5R, and X7R grades in temperature characteristics CE/MODE for CIN and CL capacitors. These grade ceramic capacitors minimize capacitance-loss as a L2 function of voltage stress. ●XCL205/XCL206/XCL207 Series F Type ● External Components CIN : 10V/4.7μF(Ceramic) CL : 6.3V/10μF(Ceramic) 7 L1 1 Lx R1 : 300kΩ VIN 6 R2 : 240kΩ CFB : 150pF CIN Vss 5 2 Vss R2 CL 3 FB R1 CFB NOTE CE/MODE 4 The Inductor can be used only for this DC/DC converter. L2 8 Please do not use this inductor for the other reasons. Please use B, X5R, and X7R grades in temperature characteristics for VOUT CIN and CL capacitors. These grade ceramic capacitors minimize capacitance-loss as a function of voltage stress. The output voltage can be set by adding external dividing resistors. The output voltage is determined by R1 and R2 in the equation below. The sum of R1 and R2 is normally kept 1MΩor less. The output voltage range can be set from 0.9V to 6.0V based on the 0.8V ±2.0% reference voltage source. Note that when the input voltage (VIN) is less than or equal to the set output voltage, an output voltage (VOUT) higher than the input voltage (VIN) cannot be output. VOUT=0.8× (R1+R2)/R2 Adjust the value of the phase compensation speedup capacitor CFB so that fzfb=1/ (2×π×CFB×R1) is 10 kHz or less. It is optimum to adjust to a value from 1kHz to 20kHbased on the components used and the board layout. [Calculation example] When R1=470kΩ, R2=150kΩ, VOUT=0.8× (470k+150k)/150k=3.3V 12/27 ●VOUT setting example VOUT(V) R1(kΩ) R2(kΩ) CFB(pF) 0.9 100 820 150 1.2 150 300 100 1.5 130 150 220 1.8 300 240 150 2.5 510 240 100 3.0 330 120 150 3.3 470 150 100 4.0 120 30 470 XCL205/XCL206/XCL207 Series ■OPERATIONAL DESCRIPTION The XCL205/XCL/206/XCL207 series consists of a reference voltage source, ramp wave circuit, error amplifier, PWM comparator, phase compensation circuit, output voltage adjustment resistors, P-channel MOSFET driver transistor, N-channel MOSFET switching transistor for the synchronous switch, current limiter circuit, UVLO circuit with control IC, and an inductor. (See the block diagram above.) Using the error amplifier, the voltage of the internal voltage reference source is compared with the feedback voltage from the VOUT pin through split resistors, R1 and R2. Phase compensation is performed on the resulting error amplifier output, to input a signal to the PWM comparator to determine the turn-on time during PWM operation. The PWM comparator compares, in terms of voltage level, the signal from the error amplifier with the ramp wave from the ramp wave circuit, and delivers the resulting output to the buffer driver circuit to cause the Lx pin to output a switching duty cycle. This process is continuously performed to ensure stable output voltage. The current feedback circuit monitors the P-channel MOS driver transistor current for each switching operation, and modulates the error amplifier output signal to provide multiple feedback signals. This enables a stable feedback loop even when a low ESR capacitor such as a ceramic capacitor is used ensuring stable output voltage. The reference voltage source provides the reference voltage to ensure stable output voltage of the DC/DC converter. The ramp wave circuit determines switching frequency. The frequency is fixed internally 3.0MHz. Clock pulses generated in this circuit are used to produce ramp waveforms needed for PWM operation, and to synchronize all the internal circuits. The error amplifier is designed to monitor output voltage. The amplifier compares the reference voltage with the feedback voltage divided by the internal split resistors, R1 and R2. When a feedback voltage is lower than the reference voltage, the output voltage of the error amplifier is increased. The gain and frequency characteristics of the error amplifier output are fixed internally to deliver an optimized signal to the mixer. The current limiter circuit of the XCL205/XCL206/XCL207 series monitors the current flowing through the P-channel MOS driver transistor connected to the Lx pin, and features a combination of the current limit mode and the operation suspension mode. ① When the driver current is greater than a specific level, the current limit function operates to turn off the pulses from the Lx pin at any given timing. ② When the driver transistor is turned off, the limiter circuit is then released from the current limit detection state. ③ At the next pulse, the driver transistor is turned on. However, the transistor is immediately turned off in the case of an over current state. ④ When the over current state is eliminated, the IC resumes its normal operation. The IC waits for the over current state to end by repeating the steps ① through ③. If an over current state continues for a few milliseconds and the above three steps are repeatedly performed, the IC performs the function of latching the OFF state of the driver transistor, and goes into operation suspension state. Once the IC is in suspension state, operations can be resumed by either turning the IC off via the CE/MODE pin, or by restoring power to the VIN pin. The suspension state does not mean a complete shutdown, but a state in which pulse output is suspended; therefore, the internal circuitry remains in operation. The current limit of the XCL205/XCL206/XCL207 series can be set at 1050mA at typical. Depending on the state of the PC Board, latch time may become longer and latch operation may not work. In order to avoid the effect of noise, an input capacitor is placed as close to the IC as possible. Limit < # ms Limit > # ms Current Limit LEVEL ILx V 0mA OU Vss Lx V CE Restart V IN 13/27 XCL205/XCL206/XCL207 Series ■OPERATIONAL DESCRIPTION (Continued) The short-circuit protection circuit monitors the internal R1 and R2 divider voltage from the VOUT pin (refer to FB point in the block diagram shown in the previous page). In case where output is accidentally shorted to the Ground and when the FB point voltage decreases less than half of the reference voltage (Vref) and a current more than the ILIM flows to the driver transistor, the short-circuit protection quickly operates to turn off and to latch the driver transistor. For the G/F series, it does not matter how much the current limit, once the FB voltage become less than the quarter of reference voltage (VREF), the short-circuit protection operates to latch the Pch MOS driver transistor In the latch state, the operation can be resumed by either turning the IC off and on via the CE/MODE pin, or by restoring power supply to the VIN pin. When sharp load transient happens, a voltage drop at the VOUT is propagated to the FB point through CFB, as a result, short circuit protection may operate in the voltage higher than 1/2 VOUT voltage. When the VIN pin voltage becomes 1.4V or lower, the P-channel output driver transistor is forced OFF to prevent false pulse output caused by unstable operation of the internal circuitry. When the VIN pin voltage becomes 1.8V or higher, switching operation takes place. By releasing the UVLO function, the IC performs the soft start function to initiate output startup operation. The soft start function operates even when the VIN pin voltage falls momentarily below the UVLO operating voltage. The UVLO circuit does not cause a complete shutdown of the IC, but causes pulse output to be suspended; therefore, the internal circuitry remains in operation. In PFM control operation, until coil current reaches to a specified level (IPFM), the IC keeps the P-ch MOSFET on. In this case, on-time (tON) that the P-ch MOSFET is kept on can be given by the following formula. tON = L×IPFM / (VIN-VOUT) →IPFM① In the PFM control operation, the PFM Duty Limit (DTYLIMIT_PFM) is set to 200% (TYP.). Therefore, under the condition that the duty increases (e.g. the condition that the step-down ratio is small), it’s possible for P-ch MOSFET to be turned off even when coil current doesn’t reach to IPFM. →IPFM② Maximum IPFM Limit tON Lx Lx fOSC IPFM ILx 0mA IPFM① 14/27 IPFM ILx 0mA IPFM② XCL205/XCL206/XCL207 Series ■OPERATIONAL DESCRIPTION (Continued) <CL High Speed Discharge> The XCL205B(C,G,F)/ XCL206B(C,G,F)/ XCL207B(C,G,F) series can quickly discharge the electric charge at the output capacitor (CL) when a low signal to the CE pin which enables a whole IC circuit put into OFF state, is inputted via the N-channel transistor located between the LX pin and the VSS pin. When the IC is disabled, electric charge at the output capacitor (CL) is quickly discharged so that it may avoid application malfunction. Discharge time of the output capacitor (CL) is set by the CL autodischarge resistance (R) and the output capacitor (CL). By setting time constant of a CL auto-discharge resistance value [R] and an output capacitor value (CL) as τ(τ=C x R), discharge time of the output voltage after discharge via the N channel transistor is calculated by the following formula. V = VOUT(T) x e –t/τ or t=τln (VOUT(T) / V) V : Output voltage after discharge VOUT(T) : Output voltage t: Discharge time, τ: C x R C= Capacitance of Output capacitor (CL) R= CL auto-discharge resistance Output Voltage Discharge Characteristics RDCHG=300Ω(TYP.) 100 CL=10uF CL=20uF CL=50uF Output Voltage (Relative Value) 100 = Setting Voltage Value 80 60 40 20 0 0 20 40 60 80 100 Discharge Time t(ms) 15/27 XCL205/XCL206/XCL207 Series ■OPERATIONAL DESCRIPTION (Continued) The operation of the XCL205/XCL206/ XCL207 series will enter into the stand-by mode when a low level signal is input to the CE/MODE pin. During the stand-by mode, the current consumption of the IC becomes 0μA (TYP.), with a state of high impedance at the Lx pin and VOUT pin. The IC starts its operation by inputting a high level signal to the CE/MODE pin. The input to the CE/MODE pin is a CMOS input and the sink current is 0μA (TYP.). ●XCL205/XCL206 series - Examples of how to use CE/MODE pin V IN V DD V IN V DD (A) SW_CE CE/MODE CE/MODE STATUS ON Stand-by OFF Operation SW_CE R1 SELECTED (B) SW_CE R2 SW_CE < IC inside > < IC inside > (A) SELECTED STATUS ON Operation OFF Stand-by (B) ●XCL207 series - Examples of how to use CE/MODE pin V IN V DD SW_PWM/PFM RM1 V IN V DD SW_CE RM1 SW_CE CE/MODE RM2 (A) CE/MODE SELECTED STATUS PWM/PFM ON RM2 SW_PWM/PFM SW_PWM/PFM * Automatic Switching Control SW_CE OFF ON PWM Control OFF OFF Stand-by < IC inside > < IC inside > (B) (A) (B) Intermediate voltage can be generated by RM1 and RM2. Please set the value of each R1, R2, RM1, RM2 from few hundreds kΩ to few hundreds MΩ. For switches, CPU open-drain I/O port and transistor can be used. SW_CE SW_PWM/PFM SELECTED STATUS ON * Stand-by OFF ON PWM Control OFF OFF PWM/PFM Automatic Switching Control 16/27 XCL205/XCL206/XCL207 Series ■OPERATIONAL DESCRIPTION (Continued) The XCL205/XCL206/XCL207 series (A, C type) provide 0.9ms (TYP). The XCL205/XCL206/XCL207 series (B, G, F type) provide 0.32ms (TYP) however, when VOUT is less than 1.8V, provide 0.25ms (TYP.). Soft start time is defined as the time to reach 90% of the output nominal voltage when the CE pin is turned on. tSS VCEH 0V 90% of setting voltage VOUT 0V ■FUNCTION CHART CE/MODE VOLTAGE LEVEL OPERATIONAL STATES XCL205 XCL206 XCL207 H Level (*1) Synchronous PWM Fixed Control Synchronous PWM/PFM Automatic Switching M Level (*2) - - Stand-by Stand-by Synchronous PWM/PFM Automatic Switching Synchronous PWM Fixed Control Stand-by L Level (*2) Note on CE/MODE pin voltage level range (*1) H level: 0.65V < H level < 6V (for XCL205/XCL206) H level: VIN – 0.25V < H level < VIN (for XCL207) (*2) M level: 0.65V < M level < VIN - 1.0V (for XCL207) (*3) L level: 0V < L level < 0.25V 17/27 XCL205/XCL206/XCL207 Series ■NOTE ON USE 1. The XCL205/XCL206/XCL207 series is designed for use with ceramic output capacitors. If, however, the potential difference is too large between the input voltage and the output voltage, a ceramic capacitor may fail to absorb the resulting high switching energy and oscillation could occur on the output. If the input-output potential difference is large, connect an electrolytic capacitor in parallel to compensate for insufficient capacitance. 2. Spike noise and ripple voltage arise in a switching regulator as with a DC/DC converter. These are greatly influenced by external component selection, such as the coil inductance, capacitance values, and board layout of external components. Once the design has been completed, verification with actual components should be done. 3. Depending on the input-output voltage differential, or load current, some pulses may be skipped, and the ripple voltage may increase. 4. When the difference between VIN and VOUT is large in PWM control, very narrow pulses will be outputted, and there is the possibility that some cycles may be skipped completely. 5. When the difference between VIN and VOUT is small, and the load current is heavy, very wide pulses will be outputted and there is the possibility that some cycles may be skipped completely. 6. With the IC, the peak current of the coil is controlled by the current limit circuit. Since the peak current increases when dropout voltage or load current is high, current limit starts operation, and this can lead to instability. When peak current becomes high, please adjust the coil inductance value and fully check the circuit operation. In addition, please calculate the peak current according to the following formula: Ipk = (VIN - VOUT) x OnDuty / (2 x L x fOSC) + IOUT L: Coil Inductance Value fOSC: Oscillation Frequency 7. When the peak current which exceeds limit current flows within the specified time, the built-in P-ch driver transistor turns off. During the time until it detects limit current and before the built-in transistor can be turned off, the current for limit current flows; therefore, care must be taken when selecting the rating for the external components such as a coil. 8. When VIN is less than 2.4V, limit current may not be reached because voltage falls caused by ON resistance. 9. Depending on the state of the PC Board, latch time may become longer and latch operation may not work. In order to avoid the effect of noise, the board should be laid out so that input capacitors are placed as close to the IC as possible. 10. Use of the IC at voltages below the recommended voltage range may lead to instability. 11. This IC should be used within the stated absolute maximum ratings in order to prevent damage to the device. 12. When the IC is used in high temperature, output voltage may increase up to input voltage level at no load because of the leak current of the driver transistor. 13. The current limit is set to 1350mA (MAX.) at typical. However, the current of 1350mA or more may flow. In case that the current limit functions while the VOUT pin is shorted to the GND pin, when P-ch MOSFET is ON, the potential difference for input voltage will occur at both ends of a coil. For this, the time rate of coil current becomes large. By contrast, when N-ch MOSFET is ON, there is almost no potential difference at both ends of the coil since the VOUT pin is shorted to the GND pin. Consequently, the time rate of coil current becomes quite small. According to the repetition of this operation, and the delay time of the circuit, coil current will be converged on a certain current value, exceeding the amount of current, which is supposed to be limited originally. Even in this case, however, after the over current state continues for several ms, the circuit will be latched. A coil should be used within the stated absolute maximum rating in order to prevent damage to the device. ①Current flows into P-ch MOSFET to reach the current limit (ILIM). ②The current of ILIM or more flows since the delay time of the circuit occurs during from the detection of the current limit to OFF of P-ch MOSFET. ③Because of no potential difference at both ends of the coil, the time rate of coil current becomes quite small. ④Lx oscillates very narrow pulses by the current limit for several ms. ⑤The circuit is latched, stopping its operation. ② ① ③ Delay Lx ILIM ILx 18/27 ④ Limit > # ms ⑤ XCL205/XCL206/XCL207 Series ■NOTE ON USE (Continued) 14. In order to stabilize VIN voltage level and oscillation frequency, we recommend that a by-pass capacitor (CIN) be connected as close as possible to the VIN & VSS pins. 15. High step-down ratio and very light load may lead an intermittent oscillation when PWM mode. 16. Please use within the power dissipation range below. Please also note that the power dissipation may change by test conditions. The power dissipation figure shown is PCB mounted. 17. The proper position of mounting is based on the coil terminal Pd vs Operating Temperature Package Body Temperature vs Operating Temperature The power loss of micro DC/DC according to the following formula: power loss = VOUT×IOUT×((100/EFFI) – 1) (W) VOUT:Output Voltage (V) IOUT :Output Current (A) EFFI:Conversion Efficiency (%) 19/27 XCL205/XCL206/XCL207 Series ■NOTE ON USE (Continued) 18. Instructions of pattern layouts (1) In order to stabilize VIN voltage level, we recommend that a by-pass capacitor (CIN) be connected as close as possible to the VIN (No.6) & VSS (No.5) pins. (2) Please mount each external component as close to the IC as possible. (3) Wire external components as close to the IC as possible and use thick, short connecting traces to reduce the circuit impedance. (4) Make sure that the PCB GND traces are as thick as possible, as variations in ground potential caused by high ground currents at the time of switching may result in instability of the IC. (5) This series’ internal driver transistors bring on heat because of the output current and ON resistance of driver transistors. (6) Please connect Lx (No.1) pin and L1 (No.7) pin by wiring on the PCB. (7) Please connect VOUT (No.3) pin and L2 (No.8) pin by wiring on the PCB. ・A/B/C/G types ・F type 20/27 XCL205/XCL206/XCL207 Series ■TYPICAL PERFORMANCE CHARACTERISTICS (1) Efficiency vs. Output Current (2) Output Voltage vs. Output Current XCL205A183AR/XCL206A183AR/XCL207A183AR 100 2.1 XCL206/XCL207(PWM/PFM) Output Voltage:V OUT(V) 80 Efficency:EFFI(%) XCL205A183AR/XCL206A183AR/XCL207A183AR 60 2.4V     3.6V VIN= 4.2V 40 XCL205/XCL207 (PWM) 20 XCL/206/XCL207 (PWM/PFM) VIN=4.2V,3.6V,2.4V 2.0 1.9 1.8 1.7 XCL205/XCL207 (PWM) 1.6 1.5 0 0.1 1 10 100 0.1 1000 1 1000 (4) Oscillation Frequency vs. Ambient Temperature (3) Ripple Voltage vs. Output Current XCL205A183AR/XCL206A183AR/XCL207A183AR XCL205A183AR/XCL206A183AR/XCL207A183A 100 3.5 Oscillation Frequency : fosc(MHz) Ripple Voltage:Vr(mV) 100 Output Current:IOUT (mA) Output Current:IOUT (mA) 80 60 XCL206/XCL207 (PWM/PFM) VIN=4.2V 3.6V 2.4V XCL205/XCL207 (PWM) VIN=4.2V,3.6V,2.4V 40 20 0 0.1 1 10 100 3.4 3.3 3.2 3.1 VIN=3.6V 3.0 2.9 2.8 2.7 2.6 2.5 -50 1000 -25 Output Current:IOUT (mA) 25 50 75 100 (6) Output Voltage vs. Ambient Temperature XCL205A183AR/XCL206A183AR/XCL207A183AR XCL206A183AR/XCL207A183AR 40 2.1 VIN=6.0V 35 Output Voltage : V OUT (V) 4.0V 30 25 20 15 2.0V 10 5 0 -50 0 Ambient Temperature: Ta (℃) (5) Supply Current vs. Ambient Temperature Supply Current : IDD (μA) 10 -25 0 25 50 Ambient Temperature: Ta (℃) 75 100 2.0 1.9 VIN=3.6V 1.8 1.7 1.6 1.5 -50 -25 0 25 50 75 100 Ambient Temperature: Ta (℃) 21/27 XCL205/XCL206/XCL207 Series ■TYPICAL PERFORMANCE CHARACTERISTICS (Continued) (7) UVLO Voltage vs. Ambient Temperature (8) CE "H" Voltage vs. Ambient Temperature XCL205A183AR/XCL206A183AR/XCL207A183AR XCL205A183AR/XCL206A183AR/XCL207A183AR 1.0 CE=VIN 1.5 0.9 CE "H" Voltage : VCEH (V) UVLO Voltage : UVLO (V) 1.8 1.2 0.9 0.6 0.3 0.8 VIN=5.0V 0.7 3.6V 0.6 0.5 0.4 0.3 2.4V 0.2 0.1 0.0 0.0 -50 -25 0 25 50 75 -50 100 -25 Ambient Temperature: Ta (℃) 0 25 50 75 100 Ambient Temperature: Ta (℃) (10) Soft Start Time vs. Ambient Temperature (9) CE "L" Voltage vs. Ambient Temperature XCL205A183AR/XCL206A183AR/XCL207A183AR XCL205A183AR/XCL206A183AR/XCL207A183AR 5.0 1.0 0.8 Soft Start Time : tss (ms) CE "L" Voltage : VCEL (V) 0.9 VIN=5.0V 0.7 3.6V 0.6 0.5 0.4 0.3 2.4V 0.2 4.0 3.0 2.0 VIN=3.6V 1.0 0.1 0.0 0.0 -50 -25 0 25 50 75 -50 100 -25 Ambient Temperature: Ta (℃) 25 XCL205B333AR/XCL206B333AR/XCL207B333AR XCL205A183AR/XCL206A183AR/XCL207A183AR 0.9 XCL206B333 VIN=5.0V IOUT=1.0mA 0.8 Nch on Resistance 0.6 0.5 2ch 0.4 VOUT 0.3 Pch on Resistance 0.2 0.1 1ch CE:0.0V⇒1.0V 0.0 0 1 2 3 4 Input Voltage : VIN (V) 22/27 75 (12) Rise Wave Form 1.0 0.7 50 Ambient Temperature: Ta (℃) (11) "Pch / Nch" Driver on Resistance vs. Input Voltage Lx SW ON Resistance:RLxH,RLxL (Ω) 0 5 6 1ch:1V/div 2ch:1V/div Time: 100μs /div Time:100μs/div 100 XCL205/XCL206/XCL207 Series ■TYPICAL PERFORMANCE CHARACTERISTICS (Continued) (14) CL Discharge Resistance vs. Ambient Temperature (13) Soft-Start Time vs. Ambient Temperature XCL205B333AR/XCL206B333AR/XCL207B333AR XCL205B333AR/XCL206B333AR/XCL207B333AR 600 400 CL Discharge Resistance: (Ω) Soft Start Time : tss (μs) 500 VIN=5.0V IOUT=1.0mA 300 200 100 0 -50 -25 0 25 50 75 100 XCL207B333 500 400 2.0V VIN=6.0V 300 200 100 -50 4.0V -25 0 25 50 75 100 Ambient Temperature: Ta (℃) Ambient Temperature: Ta (℃) (15) Load Transient Response 1 MODE:PWM/PFM Automatic Switching Control XCL206A183AR/XCL207A183AR XCL206A183AR/XCL207A183AR VIN=3.6V,VOUT=1.8V VIN=3.6V,VOUT=1.8V IOUT=1mA ⇒ 300mA IOUT=1mA ⇒ 100mA 1ch 1ch VOUT VOUT 2ch 2ch 1ch:100mA/div 2ch:50mV/div 1ch:100mA/div 2ch:50mV/div Time:100μs/div Time: 100μs /div Time:100μs/div Time: 100μs /div XCL206A183AR/XCL207A183AR XCL206A183AR/XCL207A183AR VIN=3.6V,VOUT=1.8V VIN=3.6V,VOUT=1.8V IOUT=300mA ⇒ 1mA IOUT=100mA ⇒ 1mA 1ch 1ch 2ch 2ch VOUT VOUT 1ch:100mA/div 2ch:50mV/div 1ch:100mA/div 2ch:50mV/div Time:100μs/div Time: 100μs /div Time:100μs/div Time: 100μs /div 23/27 XCL205/XCL206/XCL207 Series ■TYPICAL PERFORMANCE CHARACTERISTICS (Continued) (16) Load Transient Response 2 MODE:PWM Control XCL205A183AR/XCL207A183AR XCL205A183AR/XCL207A183AR VIN=3.6V,VOUT=1.8V VIN=3.6V,VOUT=1.8V IOUT=1mA ⇒ 300mA IOUT=1mA ⇒ 100mA 1ch 1ch 2ch 2ch 1ch:100mA/div 2ch:50mV/div 1ch:100mA/div 2ch:50mV/div Time:100μs/div Time: 100μs /div Time:100μs/div Time: 100μs /div XCL205A183AR/XCL207A183AR XCL205A183AR/XCL207A183AR VIN=3.6V,VOUT=1.8V VIN=3.6V,VOUT=1.8V 1ch IOUT=300mA ⇒ 1mA IOUT=100mA ⇒ 1mA 1ch 2ch 2ch 1ch:100mA/div 2ch:50mV/div Time:100μs/div Time: 100μs /div 24/27 1ch:100mA/div 2ch:50mV/div Time:100μs/div Time: 100μs /div XCL205/XCL206/XCL207 Series ■PACKAGING INFORMATION For the latest package information go to, www.torexsemi.com/technical-support/packages PACKAGE OUTLINE / LAND PATTERN THERMAL CHARACTERISTICS CL-2025 CL-2025 PKG CL-2025 Power Dissipation CL-2025-02 CL-2025-02 PKG CL-2025-02 Power Dissipation 25/27 XCL205/XCL206/XCL207 Series ■MARKING RULE ●CL-2025/CL-2025-02 ① represents products series MARK PRODUCT SERIES XCL205A*****-G 4 1 ① ② ③ ⑤ 3 ④ 2 6 XCL205F*****-G XCL205B*****-G C 5 K 4 5 XCL205G*****-G XCL205C*****-G XCL206A*****-G XCL206F*****-G XCL206B*****-G D XCL206G*****-G L XCL206C*****-G XCL207A*****-G 6 XCL207F*****-G XCL207B*****-G E XCL207G*****-G M XCL207C*****-G ② represents type of DC/DC converters MARK OUTPUT VOLTAGE (V) XCL20*A/B/C***** XCL20*G/F***** 0.x 1.x 2.x 3.x 4.x F H K L M U V X Y Z ③ represents the decimal part of output voltage OUTPUT VOLTAGE (V) MARK PRODUCT SERIES X.0 X.05 X.1 X.15 X.2 X.25 X.3 X.35 X.4 X.45 X.5 X.55 X.6 X.65 X.7 X.75 X.8 X.85 X.9 X.95 0 A 1 B 2 C 3 D 4 E 5 F 6 H 7 K 8 L 9 M XCL20***0***-G XCL20***A***-G XCL20***1***-G XCL20***B***-G XCL20***2***-G XCL20***C***-G XCL20***3***-G XCL20***D***-G XCL20***4***-G XCL20***E***-G XCL20***5***-G XCL20***F***-G XCL20***6***-G XCL20***H***-G XCL20***7***-G XCL20***K***-G XCL20***8***-G XCL20***L***-G XCL20***9***-G XCL20***M***-G ④,⑤ represents production lot number 01~09、0A~0Z、11~9Z、A1~A9、AA~AZ、B1~ZZ in order. (G, I, J, O, Q, W excluded) Note: No character inversion used. 26/27 XCL205/XCL206/XCL207 Series 1. The product and product specifications contained herein are subject to change without notice to improve performance characteristics. Consult us, or our representatives before use, to confirm that the information in this datasheet is up to date. 2. The information in this datasheet is intended to illustrate the operation and characteristics of our products. We neither make warranties or representations with respect to the accuracy or completeness of the information contained in this datasheet nor grant any license to any intellectual property rights of ours or any third party concerning with the information in this datasheet. 3. Applicable export control laws and regulations should be complied and the procedures required by such laws and regulations should also be followed, when the product or any information contained in this datasheet is exported. 4. The product is neither intended nor warranted for use in equipment of systems which require extremely high levels of quality and/or reliability and/or a malfunction or failure which may cause loss of human life, bodily injury, serious property damage including but not limited to devices or equipment used in 1) nuclear facilities, 2) aerospace industry, 3) medical facilities, 4) automobile industry and other transportation industry and 5) safety devices and safety equipment to control combustions and explosions. Do not use the product for the above use unless agreed by us in writing in advance. 5. Although we make continuous efforts to improve the quality and reliability of our products; nevertheless Semiconductors are likely to fail with a certain probability. So in order to prevent personal injury and/or property damage resulting from such failure, customers are required to incorporate adequate safety measures in their designs, such as system fail safes, redundancy and fire prevention features. 6. Our products are not designed to be Radiation-resistant. 7. Please use the product listed in this datasheet within the specified ranges. 8. We assume no responsibility for damage or loss due to abnormal use. 9. All rights reserved. No part of this datasheet may be copied or reproduced unless agreed by Torex Semiconductor Ltd in writing in advance. TOREX SEMICONDUCTOR LTD. 27/27
XCL207A323CR-G
物料型号: - 型号包括XCL205、XCL206和XCL207系列。

器件简介: - 这些系列是同步降压微直流/直流转换器,将电感和控制IC集成在一个小巧的封装内(2.5mm×2.0mm,高度1.0mm)。仅需两个外部连接的电容器即可配置输出电流为600mA的稳定电源。

引脚分配: - 引脚包括Lx(开关输出)、Vss(地)、Vout/FB(固定输出电压引脚或输出电压感测引脚)、CE/MODE(芯片使能和模式切换)、VIN(电源输入)和L1、L2(电感电极)。

参数特性: - 工作电压范围从2.0V至6.0V(XCL20xG系列为1.8V至6.0V)。 - 输出电压内部设定在0.8V至4.0V范围内,以0.05V为增量。 - 设备以3.0MHz频率运行。 - 包括0.42Ω P沟道驱动晶体管和0.52Ω N沟道开关晶体管。 - XCL205系列采用PWM控制,XCL206系列采用自动PWM/PFM切换控制,XCL207系列可以手动在PWM控制模式和自动PWM/PFM切换控制模式之间切换。

功能详解: - 设备在待机时关闭以降低电流消耗至1.0μA或更低。 - 内置UVLO(欠压锁定)功能,在输入电压降至1.4V或更低时强制关闭内部驱动晶体管。 - 某些系列提供软启动功能,内部设定在0.25ms内启动。 - 某些系列集成了CL自动放电功能,允许存储在输出电容器CL上的电荷通过位于LX和VSS引脚之间的内部自动放电开关放电。

应用信息: - 适用于移动电话、智能手机、蓝牙耳机、WiMAX PDA、MID、UMPC、便携式游戏控制台、数码相机、摄像机、电子词典等。

封装信息: - 提供多种封装选项,包括CL-2025和CL-2025-02等。

电气特性: - 输出电压、工作电压范围、最大输出电流、UVLO电压、供电电流、待机电流、振荡频率、PFM切换电流、PFM占空比限制、最大占空比、最小占空比、效率、Lx开关"H"和"L"导通电阻、Lx开关泄漏电流、电流限制、输出电压温度特性、CE"H"和"L"电压、PWM"H"和"L"电平电压、CE"H"和"L"电流、软启动时间、锁定时间、短路保护阈值电压、C放电、电感值和允许的电感电流等参数均有详细说明。
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