ADL5357-EVALZ

ADL5357-EVALZ

  • 厂商:

    AD(亚德诺)

  • 封装:

    -

  • 描述:

    EVALBOARDFORADL5357

  • 数据手册
  • 价格&库存
ADL5357-EVALZ 数据手册
500 MHz to 1700 MHz Balanced Mixer, LO Buffer, IF Amplifier, and RF Balun ADL5357 Data Sheet FEATURES FUNCTIONAL BLOCK DIAGRAM APPLICATIONS Cellular base station receivers Transmit observation receivers Radio link downconverters IFGM IFOP IFON PWDN LEXT 20 19 18 17 16 ADL5357 VPIF 1 15 LOI2 RFIN 2 14 VPSW 13 VGS1 RFCT 3 BIAS GENERATOR COMM 4 12 VGS0 COMM 5 11 LOI1 6 7 8 9 10 VLO3 LGM3 VLO2 LOSW NC 08081-001 RF frequency range of 500 MHz to 1700 MHz IF frequency range of 30 MHz to 450 MHz Power conversion gain: 8.6 dB SSB noise figure of 9.1 dB SSB noise figure with 5 dBm blocker of 19.5 dB Input IP3 of 26.6 dBm Input P1dB of 10.2 dBm Typical LO drive of 0 dBm Single-ended, 50 Ω RF and LO input ports High isolation SPDT LO input switch Single-supply operation: 3.3 V to 5 V Exposed paddle 5 mm × 5 mm, 20-lead LFCSP 1500 V HBM/500 V FICDM ESD performance NC = NO CONNECT Figure 1. GENERAL DESCRIPTION The ADL5357 uses a highly linear, doubly balanced passive mixer core along with integrated RF and LO balancing circuitry to allow for single-ended operation. The ADL5357 incorporates an RF balun, allowing for optimal performance over a 500 MHz to 1700 MHz RF input frequency range using high-side LO injection for RF frequencies from 500 MHz to 1200 MHz and low-side injection for frequencies from 900 MHz to 1700 MHz. The balanced passive mixer arrangement provides good LO-to-RF leakage, typically better than −46 dBm, and excellent intermodulation performance. The balanced mixer core also provides extremely high input linearity, allowing the device to be used in demanding cellular applications where in-band blocking signals may otherwise result in the degradation of dynamic performance. A high linearity IF buffer amplifier follows the passive mixer core to yield a typical power conversion gain of 8.6 dB and can be used with a wide range of output impedances. Rev. A The ADL5357 provides two switched LO paths that can be used in TDD applications where it is desirable to rapidly switch between two local oscillators. LO current can be externally set using a resistor to minimize dc current commensurate with the desired level of performance. For low voltage applications, the ADL5357 is capable of operation at voltages down to 3.3 V with substantially reduced current. Under low voltage operation, an additional logic pin is provided to power down (20 dB over a limited bandwidth Typ Unit 1700 dB Ω MHz 450 5.5 Ω||pF MHz V 19 50 500 Differential impedance, f = 200 MHz Externally generated Max 240||0.4 30 3.3 −6 5.0 0 12 50 730 +10 1670 1.0 0.4 1.4 Device enabled, IF output to 90% of its final level Device disabled, supply current < 5 mA Device enabled Device disabled Apply the supply voltage from the external circuit through the choke inductors. The PWDN function is intended for use with VPOS ≤ 3.6 V only. Rev. A | Page 3 of 23 160 220 0.0 70 dBm dB Ω MHz V V V ns ns µA µA ADL5357 Data Sheet 5 V PERFORMANCE VPOS = 5 V, IS = 190 mA, TA = 25°C, fRF = 900 MHz, fLO = 1103 MHz, LO power = 0 dBm, VGS0 = VGS1 = 0 V, and ZO = 50 Ω, unless otherwise noted. Table 3. Parameter DYNAMIC PERFORMANCE Power Conversion Gain Voltage Conversion Gain SSB Noise Figure SSB Noise Figure Under Blocking Input Third-Order Intercept (IIP3) Input Second-Order Intercept (IIP2) Input 1 dB Compression Point (IP1dB) LO-to-IF Leakage LO-to-RF Leakage RF-to-IF Isolation IF/2 Spurious IF/3 Spurious POWER SUPPLY Positive Supply Voltage Quiescent Current Total Quiescent Current Conditions Min Typ Max Unit Including 4:1 IF port transformer and PCB loss ZSOURCE = 50 Ω, differential ZLOAD = 200 Ω differential 7 8.6 14.9 9.1 19.5 9.5 dB dB dB dB 22 26.6 dBm 62.8 dBm 10.2 −7 −46.7 −35 −69.2 −83.4 dBm dBm dBm dBc dBc dBc 5 dBm blocker present ±10 MHz from wanted RF input, LO source filtered fRF1 = 899.5 MHz, fRF2 = 900.5 MHz, fLO = 1103 MHz, each RF tone at −10 dBm fRF1 = 950 MHz, fRF2 = 900 MHz, fLO = 1103 MHz, each RF tone at −10 dBm Unfiltered IF output −10 dBm input power −10 dBm input power 4.5 LO supply, resistor programmable IF supply, resistor programmable VPOS = 5 V 5 100 90 190 5.5 V mA mA mA 3.3 V PERFORMANCE VPOS = 3.3 V, IS = 125 mA, TA = 25°C, fRF = 900 MHz, fLO = 1103 MHz, LO power = 0 dBm, R9 = 226 Ω, R14 = 604 Ω, VGS0 = VGS1 = 0 V, and ZO = 50 Ω, unless otherwise noted. Table 4. Parameter DYNAMIC PERFORMANCE Power Conversion Gain Voltage Conversion Gain SSB Noise Figure Input Third-Order Intercept (IIP3) Input Second-Order Intercept (IIP2) Input 1 dB Compression Point (IP1dB) POWER INTERFACE Supply Voltage Quiescent Current Power-Down Current Conditions Min Including 4:1 IF port transformer and PCB loss ZSOURCE = 50 Ω, differential ZLOAD = 200 Ω differential fRF1 = 899.5 MHz, fRF2 = 900.5 MHz, fLO = 1103 MHz, each RF tone at −10 dBm fRF1 = 950 MHz, fRF2 = 900 MHz, fLO = 1103 MHz, each RF tone at −10 dBm 3.0 Resistor programmable Device disabled Rev. A | Page 4 of 23 Typ Max Unit 8.8 15.1 9.0 21.4 dB dB dB dBm 55.7 dBm 7.1 dBm 3.3 125 150 3.6 V mA µA Data Sheet ADL5357 ABSOLUTE MAXIMUM RATINGS Table 5. Parameter Supply Voltage, VPOS RF Input Level LO Input Level IFOP, IFON Bias Voltage VGS0, VGS1, LOSW, PWDN Internal Power Dissipation θJA Maximum Junction Temperature Operating Temperature Range Storage Temperature Range Lead Temperature Range (Soldering, 60 sec) Rating 5.5 V 20 dBm 13 dBm 6.0 V 5.5 V 1.2 W 25°C/W 150°C −40°C to +85°C −65°C to +150°C 260°C Stresses at or above those listed under Absolute Maximum Ratings may cause permanent damage to the product. This is a stress rating only; functional operation of the product at these or any other conditions above those indicated in the operational section of this specification is not implied. Operation beyond the maximum operating conditions for extended periods may affect product reliability. ESD CAUTION Rev. A | Page 5 of 23 ADL5357 Data Sheet 20 19 18 17 16 IFGM IFOP IFON PWDN LEXT PIN CONFIGURATION AND FUNCTION DESCRIPTIONS 1 2 3 4 5 ADL5357 TOP VIEW (Not to Scale) 15 14 13 12 11 LOI2 VPSW VGS1 VGS0 LOI1 NOTES 1. NC = NO CONNECT. 2. EXPOSED PAD. MUST BE SOLDERED TO GROUND. 08081-002 VLO3 6 LGM3 7 VLO2 8 LOSW 9 NC 10 VPIF RFIN RFCT COMM COMM Figure 2. Pin Configuration Table 6. Pin Function Descriptions Pin No. 1 2 3 4, 5 6, 8 7 9 10 11, 15 12, 13 14 16 17 18, 19 20 Mnemonic VPIF RFIN RFCT COMM VLO3, VLO2 LGM3 LOSW NC LOI1, LOI2 VGS0, VGS1 VPSW LEXT PWDN IFON, IFOP IFGM EPAD (EP) Description Positive Supply Voltage for IF Amplifier. RF Input. Must be ac-coupled. RF Balun Center Tap (AC Ground). Device Common (DC Ground). Positive Supply Voltages for LO Amplifier. LO Amplifier Bias Control. LO Switch. LOI1 selected for 0 V, and LOI2 selected for 3 V. No Connect. LO Inputs. Must be ac-coupled. Mixer Gate Bias Controls. 3 V logic. Ground these pins for nominal setting. Positive Supply Voltage for LO Switch. IF Return. This pin must be grounded. Power Down. Connect this pin to ground for normal operation and connect this pin to 3.0 V for disable mode. Differential IF Outputs (Open Collectors). Each requires an external dc bias. IF Amplifier Bias Control. Exposed pad. Must be soldered to ground. Rev. A | Page 6 of 23 Data Sheet ADL5357 TYPICAL PERFORMANCE CHARACTERISTICS 5 V PERFORMANCE 220 80 210 70 TA = +25°C TA = –40°C 60 200 INPUT IP2 (dBm) TA = –40°C 190 180 TA = +25°C TA = +85°C TA = +85°C 50 40 30 170 20 160 750 800 850 900 950 1000 1050 1100 1150 1200 RF FREQUENCY (MHz) 0 700 08081-034 150 700 10 750 800 850 900 950 1000 1050 1100 1150 1200 RF FREQUENCY (MHz) 08081-019 SUPPLY CURRENT (mA) VPOS = 5 V, IS = 190 mA, TA = 25°C, fRF = 900 MHz, fLO = 1103 MHz, LO power = 0 dBm, R14 = 910 Ω, VGS0 = VGS1 = 0 V, and ZO = 50 Ω, unless otherwise noted. Figure 6. Input IP2 vs. RF Frequency Figure 3. Supply Current vs. RF Frequency 14 12 13 TA = +25°C TA = –40°C 12 INPUT P1dB (dBm) 8 TA = +85°C 6 4 TA = +25°C 11 TA = +85°C 10 TA = –40°C 9 8 2 750 800 850 900 950 1000 1050 1100 1150 1200 RF FREQUENCY (MHz) 6 700 08081-015 0 700 7 750 850 900 950 1000 1050 1100 1150 1200 RF FREQUENCY (MHz) Figure 4. Power Conversion Gain vs. RF Frequency Figure 7. Input P1dB vs. RF Frequency 35 30 800 08081-024 CONVERSION GAIN (dB) 10 20 TA = –40°C TA = +25°C 18 16 SSB NOISE FIGURE (dB) TA = +85°C 20 15 10 14 12 TA = +25°C TA = +85°C 10 8 TA = –40°C 6 4 5 750 800 850 900 950 1000 1050 1100 1150 1200 RF FREQUENCY (MHz) Figure 5. Input IP3 vs. RF Frequency 0 700 750 800 850 900 950 1000 1050 1100 1150 1200 RF FREQUENCY (MHz) Figure 8. SSB Noise Figure vs. RF Frequency Rev. A | Page 7 of 23 08081-027 2 0 700 08081-021 INPUT IP3 (dBm) 25 ADL5357 Data Sheet 80 250 VPOS = 5.0V 70 VPOS = 5.25V VPOS = 5.25V 60 VPOS = 4.75V VPOS = 4.75V INPUT IP2 (dBm) SUPPLY CURRENT (mA) 200 VPOS = 5V 150 100 50 40 30 20 50 –20 0 20 60 40 80 TEMPERATURE (°C) 0 –40 08081-035 0 –40 0 40 20 60 80 TEMPERATURE (°C) Figure 12. Input IP2 vs. Temperature Figure 9. Supply Current vs. Temperature 14 10 VPOS = 4.75V VPOS = 5.0V VPOS = 5.25V 9 13 12 VPOS = 5.0V INPUT P1dB (dBm) CONVERSION GAIN (dB) –20 08081-047 10 8 7 6 VPOS = 5.25V 11 10 9 VPOS = 4.75V 8 7 6 5 0 20 40 60 80 TEMPERATURE (°C) 4 –40 08081-046 –20 –20 0 20 40 60 80 TEMPERATURE (°C) Figure 10. Power Conversion Gain vs. Temperature 08081-049 5 4 –40 Figure 13. Input P1dB vs. Temperature 35 12 33 11 VPOS = 5.0V 29 VPOS = 5.25V 27 25 VPOS = 4.75V 23 21 VPOS = 5.0V 10 VPOS = 5.25V 9 8 VPOS = 4.75V 19 7 15 –40 –20 0 20 40 TEMPERATURE (°C) 60 80 6 –40 –20 0 20 40 60 TEMPERATURE (°C) Figure 11. Input IP3 vs. Temperature Figure 14. SSB Noise Figure vs. Temperature Rev. A | Page 8 of 23 80 08081-028 17 08081-048 INPUT IP3 (dBm) SSB NOISE FIGURE (dB) 31 ADL5357 220 80 210 70 60 200 TA = –40°C 190 TA = +85°C 180 TA = +25°C 170 TA = +85°C 50 40 30 20 160 10 180 230 280 330 380 430 IF FREQUENCY (MHz) 0 30 80 180 280 330 380 430 380 430 Figure 18. Input IP2 vs. IF Frequency 12 12 TA = –40°C 10 TA = +85°C 10 TA = +25°C TA = –40°C INPUT P1dB (dBm) 8 TA = +85°C 6 4 TA = +25°C 8 6 4 2 2 80 130 180 230 280 330 380 430 IF FREQUENCY (MHz) 0 30 08081-013 0 30 230 IF FREQUENCY (MHz) Figure 15. Supply Current vs. IF Frequency CONVERSION GAIN (dB) 130 08081-017 130 08081-022 80 08081-031 150 30 TA = +25°C TA = –40°C INPUT IP2 (dBm) SUPPLY CURRENT (mA) Data Sheet 80 130 180 230 280 330 IF FREQUENCY (MHz) Figure 16. Power Conversion Gain vs. IF Frequency Figure 19. Input P1dB vs. IF Frequency 35 15 TA = –40°C 30 14 TA = +25°C TA = +85°C 20 15 10 12 11 10 9 8 7 5 80 130 180 230 280 330 IF FREQUENCY (MHz) 380 430 5 30 80 130 180 230 280 330 380 IF FREQUENCY (MHz) Figure 17. Input IP3 vs. IF Frequency Figure 20. SSB Noise Figure vs. IF Frequency Rev. A | Page 9 of 23 430 08081-011 6 0 30 08081-020 INPUT IP3 (dBm) SSB NOISE FIGURE (dB) 13 25 ADL5357 Data Sheet 12 12 TA = +85°C TA = +25°C TA = –40°C 10 TA = –40°C TA = +25°C INPUT P1dB (dBm) 8 TA = +85°C 6 4 8 6 4 2 –6 –4 –2 0 2 4 6 8 10 LO POWER LEVEL (dBm) 0 –6 08081-014 0 0 4 6 8 10 Figure 24. Input P1dB vs. LO Power 30 0 TA = –40°C –10 TA = +85°C –20 IF/2 SPURIOUS (dBc) TA = +25°C 20 15 10 –30 –40 –50 –60 TA = –40°C –70 5 TA = +85°C –80 6 4 2 0 2 4 6 8 10 LO POWER LEVEL (dBm) –90 700 08081-016 0 TA = +25°C 750 800 850 900 950 1000 1050 1100 1150 1200 RF FREQUENCY (MHz) Figure 22. Input IP3 vs. LO Power 08081-007 25 Figure 25. IF/2 Spurious vs. RF Frequency 80 0 TA = +25°C 70 –10 TA = –40°C –20 60 IF/3 SPURIOUS (dBc) TA = +85°C 50 40 30 20 –30 –40 –50 –60 –70 TA = +25°C –80 10 –90 0 –6 –4 –2 0 2 4 6 LO POWER (dBm) 8 10 08081-018 INPUT IP2 (dBm) 2 LO POWER (dBm) Figure 21. Power Conversion Gain vs. LO Power INPUT IP3 (dBm) –2 –4 08081-023 2 Figure 23. Input IP2 vs. LO Power –100 700 TA = –40°C 750 800 850 900 950 TA = +85°C 1000 1050 1100 1150 1200 RF FREQUENCY (MHz) Figure 26. IF/3 Spurious vs. RF Frequency Rev. A | Page 10 of 23 08081-008 CONVERSION GAIN (dB) 10 Data Sheet ADL5357 100 500 10 400 8 300 6 200 4 100 2 40 20 0 8.3 8.4 8.5 8.6 8.7 8.8 8.9 CONVERSION GAIN (dB) 0 30 0 80 130 230 280 330 380 430 IF FREQUENCY (MHz) Figure 30. IF Port Return Loss Figure 27. Power Conversion Gain Distribution 100 180 CAPACITANCE (pF) 60 08081-050 RESISTANCE (Ω) 80 08081-044 DISTRIBUTION PERCENTAGE (%) MEAN: 8.59 SD: 0.14% 0 MEAN: 26.57 SD: 0.39% RF RETURN LOSS (dB) DISTRIBUTION PERCENTAGE (%) 5 80 60 40 10 15 20 25 30 20 26 25 29 28 27 INPUT IP3 (dBm) 40 700 08081-043 0 24 750 800 850 900 950 1000 1050 1100 1150 1200 RF FREQUENCY (MHz) Figure 28. Input IP3 Distribution 08081-029 35 Figure 31. RF Port Return Loss, Fixed IF 0 100 5 LO RETURN LOSS (dB) 80 60 40 20 10 SELECTED 15 UNSELECTED 20 0 9.6 9.9 10.2 10.5 INPUT P1dB (dBm) 10.8 Figure 29. Input P1dB Distribution 30 900 950 1000 1050 1100 1150 1200 1250 1300 1350 1400 LO FREQUENCY (MHz) Figure 32. LO Return Loss, Selected and Unselected Rev. A | Page 11 of 23 08081-038 25 08081-045 DISTRIBUTION PERCENTAGE (%) MEAN: 10.22 SD: 0.50% Data Sheet 70 0 65 –10 LO-TO-RF LEAKAGE (dBm) TA = +25°C 60 TA = +85°C TA = –40°C 55 50 45 –30 TA = +85°C –40 1000 1050 1100 1150 1200 1250 1300 1350 1400 –60 900 LO FREQUENCY (MHz) –5 –5 –10 –10 2LO LEAKAGE (dBm) 0 –15 –20 –25 TA = +25°C TA = +85°C –15 2LO TO RF –20 2LO TO IF –25 –30 –35 TA = –40°C –40 –40 750 800 850 900 950 1000 1050 1100 1150 1200 RF FREQUENCY (MHz) –45 900 08081-030 RF-TO-IF ISOLATION (dBc) 0 –45 700 1000 1050 1100 1150 1200 1250 1300 1350 1400 Figure 36. LO-to-RF Leakage vs. LO Frequency Figure 33. LO Switch Isolation vs. LO Frequency –30 TA = +25°C 950 08081-026 950 LO FREQUENCY (MHz) –35 TA = –40°C –50 08081-041 40 900 –20 950 1000 1050 1100 1150 1200 1250 1300 1350 1400 LO FREQUENCY (MHz) Figure 34. RF-to-IF Isolation vs. RF Frequency 08081-039 LO SWITCH ISOLATION (dB) ADL5357 Figure 37. 2LO Leakage vs. LO Frequency 0 0 TA = –40°C –10 TA = +25°C 3LO LEAKAGE (dBm) TA = +85°C –10 –15 –20 –25 –30 3LO TO RF 3LO TO IF –40 950 1000 1050 1100 1150 1200 1250 1300 1350 1400 LO FREQUENCY (MHz) Figure 35. LO-to-IF Leakage vs. LO Frequency –60 900 950 1000 1050 1100 1150 1200 1250 1300 1350 1400 LO FREQUENCY (MHz) Figure 38. 3LO Leakage vs. LO Frequency Rev. A | Page 12 of 23 08081-040 –30 900 –20 –50 08081-025 LO-TO-IF LEAKAGE (dBm) –5 Data Sheet ADL5357 10 15 9 14 140 120 12 6 11 10 4 9 3 8 2 VGS = 00 VGS = 01 VGS = 10 VGS = 11 1 0 700 750 800 850 900 950 100 80 R14 IF SET RESISTOR 60 40 7 20 6 5 1000 1050 1100 1150 1200 RF FREQUENCY (MHz) 0 600 1400 1600 1800 Figure 42. IF Supply Current vs. IF Bias Resistor Value 24 12 22 INPUT P1dB 10 20 8 18 750 800 850 900 950 16 1000 1050 1100 1150 1200 08081-036 6 700 RF FREQUENCY (MHz) 25 20 15 10 –15 –10 –5 0 5 10 BLOCKER POWER (dBm) 08081-042 5 –20 25 20 10 SSB NOISE FIGURE 9 15 CONVERSION GAIN 8 10 7 5 6 0 0.6 0.7 0.8 0.9 1.0 1.1 1.2 1.3 1.4 1.5 Figure 43. Power Conversion Gain, SSB Noise Figure, and Input IP3 vs. IF Bias Resistor Value 30 –25 INPUT IP3 11 IF BIAS RESISTOR VALUE (kΩ) Figure 40. Input P1dB and Input IP3 vs. RF Frequency 0 –30 30 Figure 41. SSB Noise Figure vs.10 MHz Offset Blocker Level Rev. A | Page 13 of 23 INPUT IP3 (dBm) 14 12 08081-059 26 INPUT IP3 CONVERSION GAIN AND SSB NOISE FIGURE (dB) 28 INPUT IP3 (dBm) 16 INPUT P1dB (dBm) 1200 30 VGS = 00 VGS = 01 VGS = 10 VGS = 11 18 NOISE FIGURE (dB) 1000 BIAS RESISTOR VALUE (Ω) Figure 39. Power Conversion Gain and SSB Noise Figure vs. RF Frequency 20 800 08081-033 SSB NOISE FIGURE 5 SUPPLY CURRENT (mA) 7 SSB NOISE FIGURE (dB) 13 CONVERSION GAIN 08081-037 CONVERSION GAIN (dB) 8 ADL5357 Data Sheet 3.3 V PERFORMANCE VPOS = 3.3 V, IS = 125 mA, TA = 25°C, fRF = 900 MHz, fLO = 1103 MHz, LO power = 0 dBm, R9 = 226 Ω, R14 = 604 Ω, VGS0 = VGS1 = 0 V, and ZO = 50 Ω, unless otherwise noted. 160 80 150 TA = +25°C 140 TA = +25°C TA = –40°C 60 130 INPUT IP2 (dBm) SUPPLY CURRENT (mA) TA = +85°C 70 TA = +85°C 120 110 100 90 50 TA = –40°C 40 30 20 80 10 750 800 850 900 950 1000 1050 1100 1150 1200 RF FREQUENCY (MHz) 0 700 08081-064 60 700 750 800 850 900 950 1000 1050 1100 1150 1200 RF FREQUENCY (MHz) 08081-061 70 Figure 47. Input IP2 vs. RF Frequency at 3.3 V Figure 44. Supply Current vs. RF Frequency at 3.3 V 12 12 10 TA = +25°C TA = –40°C INPUT P1dB (dBm) CONVERSION GAIN (dB) 10 8 TA = +85°C 6 TA = +25°C TA = +85°C 8 6 TA = –40°C 4 4 2 750 800 850 900 950 1000 1050 1100 1150 1200 RF FREQUENCY (MHz) 0 700 08081-060 0 700 750 800 850 900 950 1000 1050 1100 1150 1200 RF FREQUENCY (MHz) 08081-063 2 Figure 48. Input P1dB vs. RF Frequency at 3.3 V Figure 45. Power Conversion Gain vs. RF Frequency at 3.3 V 14 25 TA = +25°C TA = –40°C TA = +85°C 15 10 TA = +25°C 8 TA = –40°C 6 750 800 850 900 950 1000 1050 1100 1150 1200 RF FREQUENCY (MHz) Figure 46. Input IP3 vs. RF Frequency at 3.3 V Rev. A | Page 14 of 23 2 700 750 800 850 900 950 1000 1050 1100 1150 1200 RF FREQUENCY (MHz) Figure 49. SSB Noise Figure vs. RF Frequency at 3.3 V 08081-051 0 700 TA = +85°C 10 4 5 08081-062 INPUT IP3 (dBm) SSB NOISE FIGURE (dB) 12 20 Data Sheet ADL5357 SPUR TABLES All spur tables are (N × fRF) − (M × fLO) and were measured using the standard evaluation board. Mixer spurious products are measured in dBc from the IF output power level. Data was only measured for frequencies less than 6 GHz. Typical noise floor of the measurement system = −100 dBm. 5 V Performance VPOS = 5 V, IS = 190 mA, TA = 25°C, fRF = 900 MHz, fLO = 1103 MHz, LO power = 0 dBm, VGS0 = VGS1 = 0 V, and ZO = 50 Ω, unless otherwise noted. Table 7. 0 N 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 −41.3 −87.1
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