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MP2344GJ-Z

MP2344GJ-Z

  • 厂商:

    MPS(美国芯源)

  • 封装:

    SOT23-6

  • 描述:

    26V, 2A, 600KHZ, HIGH-EFFICIENCY

  • 数据手册
  • 价格&库存
MP2344GJ-Z 数据手册
MP2344 26V, 2A, 600kHz, High-Efficiency, Synchronous Step-Down Converter DESCRIPTION FEATURES The MP2344 is a high-efficiency, synchronous, rectified, step-down, switch-mode converter with built-in internal power MOSFETs. It offers a very compact solution that achieves 2A of continuous output current with excellent load and line regulation over a wide input supply range.    The MP2344’s switching edge is optimized for low EMI. SW anti-ringing is employed to address high-frequency radiation EMI issues. Full protection features include over-current protection (OCP) and thermal shutdown. The MP2344 requires a minimal number of readily available, standard, external components and is available in a space-saving, 6-pin TSOT23 package.          Wide 7.5V to 26V Operating Input Range 2A Load Current 95mΩ/45mΩ Low RDS(ON) Internal Power MOSFETs Internal Power-Save Mode for Light Load 600kHz Fixed Switching Frequency at CCM Optimized for Low EMI Internal Soft Start Over-Current Protection (OCP) and Hiccup Mode Thermal Shutdown Output Adjustable from 3.3V Available in a TSOT23-6 Package The MPL-AL-5050 Inductor Series Matches Best Performance APPLICATIONS     RF-Enabled Devices Stand-By Power Supply White Goods Flat-Panel Television and Monitors All MPS parts are lead-free, halogen-free, and adhere to the RoHS directive. For MPS green status, please visit the MPS website under Quality Assurance. “MPS”, the MPS logo, and “Simple, Easy Solutions” are registered trademarks of Monolithic Power Systems, Inc. or its subsidiaries. TYPICAL APPLICATION Efficiency vs. Output Current EFFICIENCY (%) VOUT = 5V 100 95 90 85 80 75 70 65 60 55 50 0.01 Vin=12V Vin=7V Vin=26V 0.1 1 10 LOAD CURRENT (A) MP2344 Rev. 1.1 6/9/2020 www.MonolithicPower.com MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited. © 2020 MPS. All Rights Reserved. 1 MP2344 – 26V, 2A, SYNCHRONOUS STEP-DOWN CONVERTER ORDERING INFORMATION Part Number* MP2344GJ Package TSOT23-6 Top Marking See Below MSL Rating 1 * For Tape & Reel, add suffix –Z (e.g. MP2344GJ–Z). TOP MARKING BGT: Product code of MP2344GJ Y: Year code PACKAGE REFERENCE TOP VIEW IN 1 6 FB SW 2 5 VCC GND 3 4 BST TSOT23-6 PIN FUNCTIONS Pin # Name 1 IN 2 SW 3 GND 4 BST 5 VCC 6 FB MP2344 Rev. 1.1 6/9/2020 Description Supply voltage. The MP2344 operates from a +7.5V to +26V input rail. C1 is needed to decouple the input rail. Connect using wide PCB traces. Switch output. Connect using wide PCB traces. System ground. GND is the reference ground of the regulated output voltage. GND requires special consideration during PCB layout. Connect GND with copper traces and vias. Bootstrap. Connect a capacitor between SW and BST to form a floating supply across the high-side switch driver. Internal LDO output. Decouple VCC with a 0.1μF to 0.22μF capacitor. VCC can be biased by an external 5V output voltage through a diode. Feedback. An external resistor divider from the output to GND tapped to FB sets the output voltage. To prevent a current-limit runaway during a short-circuit fault condition, the frequency foldback comparator lowers the oscillator frequency when the FB voltage is below 396mV. www.MonolithicPower.com MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited. © 2020 MPS. All Rights Reserved. 2 MP2344 – 26V, 2A, SYNCHRONOUS STEP-DOWN CONVERTER ABSOLUTE MAXIMUM RATINGS (1) VIN .................................................. -0.3V to +28V VSW .....-0.6V (-5V < 10ns) to +28V (30V < 10ns) VBST....................................................... VSW + 6V All other pins ................................... -0.3V to +6V Continuous power dissipation (TA = +25°C) (2) (4) ................................................................... 1.25W Junction temperature ................................ 150°C Lead temperature...................................... 260°C Storage temperature ................... -65°C to 150°C ESD Rating Human-body model (HBM) ..................... ±2000V Charged-device model (CDM)............... ±1000V Recommended Operating Conditions (3) Supply voltage (VIN) ......................... 7.5V to 26V Output voltage (VOUT) ..............3.3V to VIN x DMAX Operating junction temp (TJ). ....-40°C to +125°C MP2344 Rev. 1.1 6/9/2020 Thermal Resistance θJA θJC TSOT23-6 EV2344-J-00A (5)…………….62…....24......°C/W JESD51-7 (6)………………...100……55.....°C/W NOTES: 1) Exceeding these ratings may damage the device. 2) The maximum allowable power dissipation is a function of the maximum junction temperature TJ (MAX), the junction-toambient thermal resistance θJA, and the ambient temperature TA. The maximum allowable continuous power dissipation at any ambient temperature is calculated by PD (MAX) = (TJ (MAX) - TA) / θJA. Exceeding the maximum allowable power dissipation produces an excessive die temperature, causing the regulator to go into thermal shutdown. Internal thermal shutdown circuitry protects the device from permanent damage. 3) The device is not guaranteed to function outside of its operating conditions. 4) Measured on JESD51-7, 4-layer PCB. 5) Measured on EV2344-J-00A, 2-layer PCB, 64mmx48mm. 6) The value of θJA given in this table is only valid for comparison with other packages and cannot be used for design purposes. These values were calculated in accordance with JESD51-7, and simulated on a specified JEDEC board. They do not represent the performance obtained in an actual application. www.MonolithicPower.com MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited. © 2020 MPS. All Rights Reserved. 3 MP2344 – 26V, 2A, SYNCHRONOUS STEP-DOWN CONVERTER ELECTRICAL CHARACTERISTICS VIN = 12V, TJ = -40°C to 125°C value when TJ = 25°C. Parameter Supply current (quiescent) HS switch on resistance LS switch on resistance Switch leakage Current limit Oscillator frequency Foldback frequency Maximum duty cycle Minimum on time (8) Feedback voltage Feedback current VIN under-voltage lockout threshold rising VIN under-voltage lockout threshold hysteresis VCC regulator VCC load regulation Soft-start period (7) , unless otherwise noted. Typical value is based on the average Symbol Iq HSRDS-ON LSRDS-ON SWLKG ILIMIT fSW fFB DMAX TON_MIN VFB IFB Thermal hysteresis (8) Min Typ 170 95 45 Max 600 0.2 93 90 791 10 807 50 Units μA mΩ mΩ μA A kHz fSW % ns mV nA 6.3 7.5 V 1 Duty cycle = 40%, TJ = 25°C VFB = 750mV VFB = 200mV VFB = 750mV 3 500 775 VFB = 820mV 5.2 INUVVth 700 INUVHYS 470 mV VCC 4 1.5 V % ICC = 5mA TSS Thermal shutdown (8) Condition VFB = 1V VBST-SW = 4V VCC = 4V 10% to 90% 0.8 1.5 2.2 ms TSD 150 °C TSD_HYS 20 °C NOTES: 7) Not tested in production, and guaranteed by over-temperature correlation. 8) Guaranteed by design and characterization test. MP2344 Rev. 1.1 6/9/2020 www.MonolithicPower.com MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited. © 2020 MPS. All Rights Reserved. 4 MP2344 – 26V, 2A, SYNCHRONOUS STEP-DOWN CONVERTER TYPICAL PERFORMANCE CHARACTERISTICS Efficiency vs. Output Current Efficiency vs. Output Current VOUT = 5V VOUT = 3.3V 100 95 90 85 80 75 70 65 60 55 50 0.01 100 95 Vin=12V Vin=7V Vin=26V 0.1 1 90 EFFICIENCY (%) EFFICIENCY (%) VIN = 12V, VOUT = 5V, L = 10μH, DCR = 35mΩ, TA = 25°C, unless otherwise noted. 85 80 75 70 65 Vin=12V Vin=7V Vin=26V 60 55 50 0.01 10 0.1 1 LOAD CURRENT (A) LOAD CURRENT (A) Load Regulation 10 Line Regulation IOUT = 0.1A 0.3 0.4 LINE REGULATION (%) LOAD REGULATION (%) 0.5 0.3 0.2 0.1 0 Vin=12V Vin=7V Vin=26V -0.1 -0.2 -0.3 0 1 0.2 0.1 0 -0.1 Io=0.1A Io=1A Io=2A -0.2 -0.3 2 7.5 12.5 LOAD CURRENT (A) 22.5 INPUT VOLTAGE (V) Case Temperature Enable Supply Current vs. Input Voltage 50 175 40 ENABLED SUPPLY CURRENT(μA) TEMPERATURE RISE (OC) 17.5 30 20 10 0 -0.5 MP2344 Rev. 1.1 6/9/2020 0.5 1.5 LOAD CURRENT (A) 2.5 170 165 160 4 6 8 10 12 14 INPUT VOLTAGE(V) www.MonolithicPower.com MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited. © 2020 MPS. All Rights Reserved. 16 18 5 MP2344 – 26V, 2A, SYNCHRONOUS STEP-DOWN CONVERTER TYPICAL PERFORMANCE CHARACTERISTICS (continued) VIN = 12V, VOUT = 5V, L = 10μH, DCR = 35mΩ, TA = 25°C, unless otherwise noted. Input/Output Ripple Input/Output Ripple IOUT = 0A IOUT = 2A CH1: VOUT/AC 10mV/div. CH2: VIN 50mV/div. CH1: VOUT/AC 10mV/div. CH2: VIN 10mV/div. CH3: VSW 5V/div. CH3: VSW 10V/div. CH4: IOUT 200mA/div. CH4: IOUT 1A/div. 1μs/div. 1μs/div. Start-Up through Input Voltage Start-Up through Input Voltage IOUT = 0A IOUT = 2A CH1: VOUT 2V/div. CH2: VIN 10V/div. CH1: VOUT 2V/div. CH2: VIN 10V/div. CH3: VSW 10V/div. CH3: VSW 10V/div. CH4: IL 2A/div. CH4: IL 2A/div. 1ms/div. 1μs/div. Shutdown through Input Voltage Shutdown through Input Voltage IOUT = 0A IOUT = 2A CH1: VOUT 2V/div. CH2: VIN 10V/div. CH1: VOUT 2V/div. CH2: VIN 10V/div. CH3: VSW 10V/div. CH3: VSW 10V/div. CH4: IL 2A/div. CH4: IL 2A/div. 20ms/div. MP2344 Rev. 1.1 6/9/2020 1ms/div. www.MonolithicPower.com MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited. © 2020 MPS. All Rights Reserved. 6 MP2344 – 26V, 2A, SYNCHRONOUS STEP-DOWN CONVERTER TYPICAL PERFORMANCE CHARACTERISTICS (continued) VIN = 12V, VOUT = 5V, L = 10μH, DCR = 35mΩ, TA = 25°C, unless otherwise noted. OCP Recovery OCP Entry IOUT = 0A CH1: VOUT 5V/div. CH1: VOUT 5V/div. CH2: VIN 10V/div. CH2: VIN 10V/div. CH3: VSW 10V/div. CH3: VSW 10V/div. CH4: IL 5A/div. CH4: IL 5A/div. 4ms/div. 4ms/div. Load Transient Response 1A-2A CH1: VOUT/AC 100mV/div. CH4: IL 1A/div. 100μs/div. MP2344 Rev. 1.1 6/9/2020 www.MonolithicPower.com MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited. © 2020 MPS. All Rights Reserved. 7 MP2344 – 26V, 2A, SYNCHRONOUS STEP-DOWN CONVERTER FUNCTIONAL BLOCK DIAGRAM Figure 1: Functional Block Diagram MP2344 Rev. 1.1 6/9/2020 www.MonolithicPower.com MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited. © 2020 MPS. All Rights Reserved. 8 MP2344 – 26V, 2A, SYNCHRONOUS STEP-DOWN CONVERTER OPERATION The MP2344 is a high-frequency, synchronous, rectified, step-down, switch-mode converter with built-in internal power MOSFETs. It offers a very compact solution that achieves 2A of continuous output current with excellent load and line regulation over a wide input supply range. The MP2344 operates in a fixed-frequency, peak-current-control mode to regulate the output voltage. The internal clock initiates a pulse-width modulation (PWM) cycle. The integrated high-side power MOSFET (HS-FET) turns on and remains on until its current reaches the value set by the COMP voltage (VCOMP). When the power switch is off, it remains off until the next clock cycle begins. If the current in the power MOSFET does not reach the current value set by COMP within 93% of one PWM period, the power MOSFET is forced off. Internal VCC Regulator Most of the internal circuitries are powered by the internal VCC regulator. This regulator takes the VIN input and operates in the full VIN range. When VIN is greater than its UVLO rising threshold, the output of the regulator is in full regulation. When VIN is lower than its UVLO falling threshold, the internal VCC regulator shuts off. A 0.1µF ceramic capacitor is required for decoupling. Error Amplifier (EA) The error amplifier compares the FB voltage with the internal 0.791V reference (REF) and outputs a COMP voltage, which is used to control the power MOSFET current. The optimized internal compensation network minimizes the external component counts and simplifies the control loop design. AAM Operation The MP2344 uses advanced asynchronous modulation (AAM) power-save mode for light loads. The AAM voltage is set internally at 0.4V. Under heavy-load conditions, VCOMP is higher than VAAM. When the clock goes high, HS-FET turns on and remains on until VILsense reaches the value set by VCOMP. The internal clock resets whenever VCOMP is higher than VAAM. MP2344 Rev. 1.1 6/9/2020 Under light-load conditions, the value of VCOMP is low. When VCOMP is less than VAAM, and VFB is less than VREF, VCOMP ramps up until it exceeds VAAM. During this time, the internal clock is blocked, and the MP2344 skips some pulses for pulse frequency modulation (PFM) mode, achieving light-load power save. Figure 2: Simplified AAM Control Logic Under-Voltage Lockout (UVLO) Under-voltage lockout (UVLO) is implemented to protect the chip from operating at an insufficient supply voltage. The UVLO comparator monitors the input voltage. When the input voltage is higher than the UVLO rising threshold, the MP2344 powers up. It shuts off when the input voltage is lower than the UVLO falling threshold. It also has non-latch protection. Internal Soft Start (SS) Soft start (SS) is implemented to prevent the converter output voltage from overshooting during start-up. When the chip starts up, the internal circuitry generates a soft-start voltage that ramps up from 0V. The soft-start period lasts until the voltage on the soft-start capacitor exceeds the 0.791V reference voltage. At this point, the reference voltage takes over. The soft-start time is set internally to be about 1.5ms from 10% to 90% of VOUT. Over-Current Protection (OCP) and Hiccup Mode The MP2344 employs a cycle-by-cycle overcurrent limit when the inductor current peak value exceeds the set current-limit threshold. Meanwhile, the output voltage drops until FB is below the under-voltage (UV) threshold, typically 50% below the reference. Once UV is triggered, the MP2344 enters hiccup mode to restart the part periodically. This protection mode is especially useful when the output dead-shorts to ground. The average shortcircuit current is greatly reduced to alleviate thermal issues and to protect the regulator. The www.MonolithicPower.com MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited. © 2020 MPS. All Rights Reserved. 9 MP2344 – 26V, 2A, SYNCHRONOUS STEP-DOWN CONVERTER MP2344 exits hiccup mode once the overcurrent condition is removed. Thermal Shutdown Thermal shutdown prevents the chip from operating at exceedingly high temperatures. When the silicon die temperature is higher than 150°C, the entire chip shuts down. When the temperature is below its lower threshold (typically 130°C), the chip is enabled again. Floating Driver and Bootstrap Charging The floating power MOSFET driver is powered by an external bootstrap capacitor. This floating driver has its own UVLO protection. This UVLO’s rising threshold is 2.2V, with a hysteresis of 150mV. The bootstrap capacitor voltage is regulated internally by VIN through D1, C3, L1, and C2 (see Figure 3). If VIN - VSW is more than 4V, U2 regulates M3 to maintain a 4V BST voltage across C3. Circuit Start-Up and Shutdown If VIN is higher than its UVLO threshold, the chip starts up. The reference block starts first, generating a stable reference voltage and current, and then the internal regulator is enabled. The regulator provides a stable supply for the remaining circuitries. In the shutdown procedure, the signaling path is first blocked to prevent any fault triggering. VCOMP and the internal supply rail are then pulled down. The floating driver is not subject to this shutdown command. C3 Figure 3: Internal Bootstrap Charging MP2344 Rev. 1.1 6/9/2020 www.MonolithicPower.com MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited. © 2020 MPS. All Rights Reserved. 10 MP2344 – 26V, 2A, SYNCHRONOUS STEP-DOWN CONVERTER Table 2: Power Inductor Selection APPLICATION INFORMATION Setting the Output Voltage The external resistor divider is used to set the output voltage (see Typical Application on page 1). The feedback resistor (R1) also sets the feedback loop bandwidth with the external compensation capacitor. Calculate R2 with Equation (1): R1 R2  Table 1 lists the recommended resistor values for common output voltages. Table 1: Resistor Selection for Common Output Voltages VOUT (V) R1 (kΩ) R2 (kΩ) Lo (µH) 3.3 80.6 25.5 10 5 80.6 15 10 Selecting the Inductor A 1µH to 22µH inductor with a DC current rating at least 25% percent higher than the maximum load current is recommended for most applications. For highest efficiency, the inductor DC resistance should be less than 30mΩ. For most designs, the inductance value can be derived from Equation (2): Manufacturer 10µH MPS 10μH MPS Select family series (MPL-AL) MPL-AL5050-100 Visit MonolithicPower.com under Products > Inductors for more information. VOUT  (VIN  VOUT ) VIN  IL  fOSC (2) Selecting the Input Capacitor The step-down converter has a discontinuous input current, and requires a capacitor to supply AC current to the converter while maintaining the DC input voltage. For best performance, use low-ESR capacitors. Ceramic capacitors with X5R or X7R dielectrics are highly recommended because of their low ESR and small temperature coefficients. For most applications, a 22µF capacitor is sufficient. Since the input capacitor (C1) absorbs the input switching current, it requires an adequate ripple current rating. The RMS current in the input capacitor can be estimated with Equation (4): IC1  ILOAD  Set the inductor current to be approximately 30% of the maximum load current. The maximum inductor peak current can be calculated with Equation (3): IL(MAX )  ILOAD  IL 2 (3) Under light-load conditions below 100mA, a larger inductance is recommended for improved efficiency. MPS inductors are optimized and tested for use with our complete line of integrated circuits. Table 2 lists our power inductor recommendations. Select a part number based on your design requirements. VOUT  VOUT   1 VIN  VIN  (4) The worst-case condition occurs at VIN = 2VOUT, calculated using Equation (5): Where ∆IL is the inductor ripple current. MP2344 Rev. 1.1 6/9/2020 Inductor Value (1) V OUT  1 0.791V L1  Part Number I C1  ILOAD 2 (5) For simplification, choose an input capacitor with an RMS current rating greater than half of the maximum load current. The input capacitor can be electrolytic, tantalum, or ceramic. When using electrolytic or tantalum capacitors, a small, high-quality ceramic capacitor (e.g. 1μF) should be placed as close to the IC as possible. When using ceramic capacitors, ensure that they have enough capacitance to provide a sufficient charge to prevent excessive voltage ripple at the input. The input voltage ripple caused by capacitance can be estimated with Equation (6): VIN    ILOAD V V  OUT   1  OUT  fS  C1 VIN  VIN  www.MonolithicPower.com MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited. © 2020 MPS. All Rights Reserved. (6) 11 MP2344 – 26V, 2A, SYNCHRONOUS STEP-DOWN CONVERTER Selecting the Output Capacitor The output capacitor (C2) maintains the DC output voltage. Ceramic, tantalum, or low-ESR electrolytic capacitors are recommended. For best results, use low-ESR capacitors to keep the output voltage ripple low. The output voltage ripple can be estimated with Equation (7): VOUT   (7) VOUT  VOUT   1  1      RESR  fS  L1  VIN   8  fS  C2  Where L1 is the inductor value and RESR is the equivalent series resistance (ESR) value of the output capacitor. For ceramic capacitors, the capacitance dominates the impedance at the switching frequency, and causes the output voltage ripple. For simplification, the output voltage ripple can be estimated with Equation (8): ∆VOUT   V  VOUT   1  OUT  VIN  8  fS  L1  C2  2 VOUT  V  1  OUT fS  L1  VIN    RESR  External VCC Diode When VOUT is 5V, an optional external diode from VOUT to VCC may enhance the efficiency of the regulator (see Figure 5). 1N4148 C4 0.1µF (8) In the case of tantalum or electrolytic capacitors, the ESR dominates the impedance at the switching frequency. For simplification, the output ripple can be approximated with Equation (9): ∆VOUT  Figure 4: Optional External Bootstrap Diode Added to Enhance Efficiency Figure 5: Optional External Diode Added to Enhance Efficiency (9) The characteristics of the output capacitor also affect the stability of the regulation system. The MP2344 can be optimized for a wide range of capacitance and ESR values. External Bootstrap Diode An optional external diode may enhance the efficiency of the regulator. The conditions of the external diode are applied when the output voltage is 5V. In this case, it is recommended to connect an external BST diode from VOUT to BST (see Figure 4). MP2344 Rev. 1.1 6/9/2020 www.MonolithicPower.com MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited. © 2020 MPS. All Rights Reserved. 12 MP2344 – 26V, 2A, SYNCHRONOUS STEP-DOWN CONVERTER PCB Layout Guidelines (7) Efficient PCB layout is critical for stable operation. For best results, refer to Figure 6 and follow the guidelines below: 1. Keep the connection of the input ground and GND as short and wide as possible. 2. Connect the ground of the VCC capacitor to the IC’s GND through multiple vias or wide traces. 3. Keep the connection between the input capacitor and IN as short and wide as possible. Design Example Table 3 is a design example following the application guidelines for these specifications: Table 3: Design Example 12V VIN 5V VOUT 2A IO Figure 7 and Figure 8 show the detailed application schematics. The typical performance and circuit waveforms are shown in the Typical Performance Characteristics section on page 5. For more device applications, see the related evaluation board datasheets. 4. Ensure that all feedback connections are short and direct. 5. Place the feedback resistors and compensation components as close to the chip as possible. 6. Route SW away from sensitive analog areas, such as FB. NOTE: 9) The recommended layout is based on Typical Application Circuits (see Figure 7 and Figure 8). Top Layer Bottom Layer Figure 6: Recommended PCB Layout MP2344 Rev. 1.1 6/9/2020 www.MonolithicPower.com MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited. © 2020 MPS. All Rights Reserved. 13 MP2344 – 26V, 2A, SYNCHRONOUS STEP-DOWN CONVERTER TYPICAL APPLICATION CIRCUITS 7.5V-26V 1 C1A 10µF C1 0.1µF 4 MP 2344 C3 0.1µF L1 10µH 2 5V/2A C2 22µF 5 C4 0.1µF C2A 22µF C2B NS R1 80.6kΩ 6 R3 15kΩ 3 R2 15kΩ C5 10 pF Figure 7: 5V/2A Output 1 12V C1B 10µF C1A 10µF C1 0.1µF D1 1N 4148 4 MP2344 C3 0.1µF 2 L1 10µH 3.3V/ 2A C2 10µF 5 C4 0.1µF C2B 100µF R1 80.4kΩ 6 3 C2A NS R2 25.5k Ω C5 15pF Figure 8: 3.3V/2A Output MP2344 Rev. 1.1 6/9/2020 www.MonolithicPower.com MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited. © 2020 MPS. All Rights Reserved. 14 MP2344 – 26V, 2A, SYNCHRONOUS STEP-DOWN CONVERTER PACKAGE INFORMATION TSOT23-6 See note 7 EXAMPLE TOP MARK PIN 1 ID IAAAA RECOMMENDED LAND PATTERN TOP VIEW SEATING PLANE SEE DETAIL''A'' FRONT VIEW SIDE VIEW NOTE: DETAIL "A" MP2344 Rev. 1.1 6/9/2020 1) ALL DIMENSIONS ARE IN MILLIMETERS . 2) PACKAGE LENGTH DOES NOT INCLUDE MOLD FLASH , PROTRUSION OR GATE BURR. 3) PACKAGE WIDTH DOES NOT INCLUDE INTERLEAD FLASH OR PROTRUSION. 4) LEAD COPLANARITY(BOTTOM OF LEADS AFTER FORMING) SHALL BE 0.10 MILLIMETERS MAX. 5) DRAWING CONFORMS TO JEDEC MO-193, VARIATION AB. 6) DRAWING IS NOT TO SCALE. 7) PIN 1 IS LOWER LEFT PIN WHEN READING TOP MARK FROM LEFT TO RIGHT, (SEE EXAMPLE TOP MARK) www.MonolithicPower.com MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited. © 2020 MPS. All Rights Reserved. 15 MP2344 – 26V, 2A, SYNCHRONOUS STEP-DOWN CONVERTER CARRIER INFORMATION ABCD Pin1 ABCD 1 ABCD ABCD 1 1 1 Feed Direction  Part Number Package Description Quantity/ Reel Quantity/ Tray Quantity/ Tube Reel Diameter Carrier Tape Width Carrier Tape Pitch MP2344GJ– Z TSOT23-6 3000 N/A N/A 7 in. 8 mm 4 mm MP2344 Rev. 1.1 6/9/2020 www.MonolithicPower.com MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited. © 2020 MPS. All Rights Reserved. 16 MP2344 – 26V, 2A, SYNCHRONOUS STEP-DOWN CONVERTER Revision History Revision # R1.1 Revision date 5/22/2020 Description Pages Updated update the JESD51-7 (6) …………..…100…..55........°C/W Page 3 Add ESD Rating Page 3 Add MSL Rating Page 2 Add Carrier information Page 16 Add the MPS inductor information Page1 Page11 NOTICE: The information in this document is subject to change without notice. Users should warrant and guarantee that thirdparty Intellectual Property rights are not infringed upon when integrating MPS products into any application. MPS will not assume any legal responsibility for any said applications. MP2344 Rev. 1.1 6/9/2020 www.MonolithicPower.com MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited. © 2020 MPS. All Rights Reserved. 17
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