UPC3220GR CEL | Alldatasheet

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Technical content

NEC's LOW DISTORTION DOWN-CONVERTER IC FOR DIGITAL CATV California Eastern Laboratories

  • LOW DISTORTION: IIP3 = +1.0 dBm TYP.
  • WIDE AGC DYNAMIC RANGE: GCRtotal = 45.5 dB TYP.
  • ON CHIP VIDEO AMPLIFIER
  • SUPPLY VOLTAGE: 5 V
  • PACKAGED IN A 16-PIN SSOP SUITABLE FOR HIGH- DENSITY SURFACE MOUNTING

FEATURES

NEC's UPC3220GR is a silicon monolithic IC de- signed for use as IF down-converter for digital CATV. This IC consists of AGC amplifier, mixer and video amplifier. NEC's UPC3220GR is packaged in a 16-pin SSOP (Shrink Small Outline Package) suitable for surface mount. This IC is manufactured using our 10 GHz fT NESAT II AL silicon bipolar process. This process uses silicon nitride passivation film. This material can protect chip surface from external pol- lution and prevent corrosion/migration. Thus, this IC has excellent performance, uniformly and reliability.

DESCRIPTION

  • Digital CATV Receivers APPLICATION

ORDERING INFORMATION

PART NUMBER ORDER NUMBER PACKAGE MARKING SUPPLYING FORM UPC3220GR-E1-A UPC3220GR-E1-A 16-pin plastic SSOP (5.72 mm (225)) (Pb-Free) Note C3220 • Embossed tape 12 mm wide

  • Pin 1 indicates pull-out direction of tape
  • Qty 2.5 kpcs/reel Note With regards to terminal solder (the solder contains lead) plated products (conventionally plated), contact your nearby sales office. Remark To order evaluation samples, contact your nearby sales office. Part number for sample order: μPC3220GR Caution Observe precautions when handling because these devices are sensitive to electrostatic discharge.

INTERNAL BLOCK DIAGRAM AND PIN CONFIGURATION (Top View) RF IN1 RF IN2 VAGC GND OSC IN1 OSC IN2 VCC1 VCC2 GND MIX OUT2 MIX OUT1 AMP IN1 AMP IN2 GND AMP OUT1 AMP OUT2 Video Amp. AGC Amp. Mixer OSC OUT Buffer Amp.

PIN NO. SYMBOL PIN VOLTAGE (V, TYP.) EXPLANATION EQUIVALENT CIRCUIT 1 RF IN1 1.46 Input pin of IF signal. 1-pin is same phase and 2-pin is opposite phase at balance input. In case of single input, 1-pin or 2-pin should be grounded through capacitor (example 10 nF). AGC Control 1 2 2 RF IN2 1.46 3 VAGC 0 to 3.5 Automatic gain control pin. This pins bias govern the AGC output level. Minimum gain at VAGC = 0 V Maximum gain at VAGC = 3.5 V AGC Control 4 GND 0.0 Ground pin. Must be connected to the system ground with minimum inductance. Ground pattern on the board should be formed as wide as possible. 5 OSC IN1 2.6 Input pin of Oscillator signal. 5-pin is same phase and 6-pin is opposite phase at balance input. In case of single input, 5-pin or 6-pin should be grounded through capacitor (ex. 10 nF). 5 6 6 OSC IN2 2.6 7 VCC1 5.0 Power supply pin of IF down convertor block. Must be connected bypass capacitor to minimize ground impedance. 8 VCC2 5.0 Power supply pin of video amplifier. Must be connected bypass capacitor to minimize ground impedance.

NO. SYMBOL PIN VOLTAGE (V, TYP.) EXPLANATION EQUIVALENT CIRCUIT

9 AMP

2.5 Output pin of video amplifier. OUT1 and IN1 are same phase. OUT2 and IN2 are same phase.

10 AMP

2.5 11 GND 0.0 Ground pin. Must be connected to the system ground with minimum inductance. Ground pattern on the board should be formed as wide as possible. 12 AMP IN2 1.45 Signal input pin of video amplifier. This pin is high impedance. 12 13 13 AMP IN1 1.45 14 GND 0.0 Ground pin. Must be connected to the system ground with minimum inductance. Ground pattern on the board should be formed as wide as possible. 15 MIX OUT1 3.7 Output pin of mixer. This output pin features low-impedance because of its emitter-follower output port. 16 MIX OUT2 3.7

PARAMETER SYMBOL CONDITIONS RATINGS UNIT Supply Voltage VCC TA = +25°C 6.0 V Power Dissipation PD TA = +85°C Note 433 mW Operating Ambient Temperature TA −40 to +85 °C Storage Temperature Tstg −55 to +150 °C RECOMMENDED OPERATING RANGE PARAMETER SYMBOL CONDITIONS MIN. TYP. MAX. UNIT Supply Voltage VCC 4.5 5.0 5.5 V Operating Ambient Temperature TA VCC = 4.5 to 5.5 V −40 +25 +85 °C Gain Control Voltage Range VAGC 0 − VCC V Note Mounted on double-sided copper-clad 50 x 50 x 1.6 mm epoxy glass PWB

ELECTRICAL CHARACTERISTICS (TA = +25ºC, VCC = 5 V) PARAMETER SYMBOL TEST CONDITIONS MIN. TYP. MAX. UNIT DC Characteristics Circuit Current 1 (Total Block) ICC1 No input signal, VCC1 = VCC2 = 5 V Note 4 33.0 42.0 53.5 mA Circuit Current 2 (AGC Amplifier Block + Mixer Block) ICC2 No input signal, VCC1 = 5 V Note 4 15.0 20.0 25.5 mA Circuit Current 3 (Video Amplifier Block) ICC3 No input signal, VCC2 = 5 V Note 4 18.0 22.0 28.0 mA AGC Voltage High Level VAGC (H) @ Maximum gain Note 1 3.0 − VCC V AGC Voltage Low Level VAGC (L) @ Minimum gain Note 1 0 − 0.5 V RF Characteristics (AGC Amplifier Block + Mixer Block: fRF = 84 MHz, fLO = 134 MHz, PLO = −15 dBm, fIF = 50 MHz, ZS = 50 Ω, ZL = 1 kΩ) RF Input Frequency Range fRF fIF = 50 MHz constant Note 1 30 − 250 MHz IF Output Frequency Range fIF fRF = 84 MHz constant Note 1 0.1 − 150 MHz Maximum Conversion Gain CGMAX VAGC = 3.0 V, Pin = −50 dBm Note 1 30.5 33.0 35.5 dB Minimum Conversion Gain CGMIN VAGC = 0.5 V, Pin = −20 dBm Note 1 −18.0 −12.5 −3.5 dB AGC Dynamic Range GCRAGC VAGC = 0.5 to 3.0 V Note 1 36.0 45.5 − dB Noise Figure NF DSB, VAGC = 3.0 V (@ Maximum gain) Note 2 − 7.0 8.5 dB 3rd Order Intermodulaion Distortion IM3 Vout = 0.236 Vp-p × 2 tone, (single-ended output), Pin −30 dBm/tone fRF1 = 84 MHz, fRF2 = 85 MHz Note 1 24.0 26.5 − dBc RF Characteristics (Video Amplifier Block: f = 50 MHz, ZS = 50 Ω, ZL = 1 kΩ) Differential Gain Gdiff Pin = −55 dBm Note 3 48.0 50.5 53.5 dB Maximum Output Voltage 2 Voclip2 Pin = −25 dBm Note 3 2.95 3.70 − Vp-p Notes 1. By measurement circuit 1 2. By measurement circuit 2 3. By measurement circuit 4 4. By measurement circuit 6

Remark The graphs indicate nominal characteristics. STANDARD CHARACTERISTICS (TA = +25ºC, VCC = 5 V, ZS = 50 Ω) PARAMETER SYMBOL TEST CONDITIONS REFERENCE VALUE UNIT AGC Amplifier Block + Mixer Block (fRF = 84 MHz, fLO = 134 MHz, PLO = −15 dBm, fIF = 50 MHz, ZS = 50 Ω, ZL = 1 kΩ) Input 3rd Order Distortion Intercept Point IIP3 VAGC = 0.5 V (@ Minimum gain) fRF1 = 84 MHz, fRF2 = 85 MHz Note 1 +1.0 dBm Maximum Output Voltage1 Voclip1 VAGC = 3.0 V, Pin = −20 dBm Note 1 0.65 Vp-p RF IN Impedance ZRFin VAGC = 3.0 V, f = 84 MHz Note 2 440 − j1100 Ω OSC IN Impedance ZOSCin VAGC = 3.0 V, f = 134 MHz Note 2 280 − j810 Ω MIXER OUT Impedance ZMIXout VAGC = 3.0 V, f = 50 MHz Note 2 30.2 + j2.5 Ω Video Amplifier Block (f = 50 MHz, ZS = 50 Ω, ZL = 1 kΩ) Frequency Range fBW Pin = −55 dBm, G (f = 10 MHz) −1 dB Note 3

60 MHz

Input Impedance ZAMPin f = 50 MHz Note 4 330 − j480 Ω Output Impedance ZAMPout f = 50 MHz Note 4 21.9 + j22.6 Ω 3rd Order Intermodulaion Distortion IM3 Vout = 0.7 Vp-p × 2 tone, fin1 = 49 MHz, fin2 = 50 MHz Note 3 55.0 dBc Total Block (fRF = 84 MHz, fLO = 134 MHz, PLO = −15 dBm, fIF = 50 MHz, ZS = 50 Ω, ZL = 1 kΩ) Maximum Conversion Gain CGMAX VAGC = 3.0 V, Pin = −70 dBm Note 5 67.5 dB Minimum Conversion Gain CGMIN VAGC = 0.5 V, Pin = −40 dBm Note 5 22.0 dB Total Dynamic Range GCR VAGC = 0.5 to 3.0 V Note 5 45.5 dB Noise Figure NF DSB, VAGC = 3.0 V (@ Maximum gain) Note 6 7.0 dB Maximum Output Voltage Voclip VAGC = 3.0 V (@ Minimum gain) Note 5

3.7 Vp-p

Input 3rd Order Distortion Intercept Point IIP3total VAGC = 0.5 V (@ Minimum gain) fRF1 = 84 MHz, fRF2 = 85 MHz Note 5 +1.0 dBm 3rd Order Intermodulaion Distortion IM3total Vout = 0.7 Vp-p × 2 tone, Pin −40 dBm/tone fRF1 = 84 MHz, fRF2 = 85 MHz Note 5 51.0 dBc Notes 1. By measurement circuit 1 2. By measurement circuit 3 3. By measurement circuit 4 4. By measurement circuit 5 5. By measurement circuit 6 6. By measurement circuit 7

50 Ω 51 Ω 1 kΩ50 Ω 50 Ω RF1 LO VAGC VCC1 RF2 50 Ω 1 Fµ 1 Fµ 1 kΩ1 Fµ 1 Fµ 0.1 Fµ

0.1 F//20 pFµ

0.1 Fµ 0.1 Fµ 0.1 Fµ 0.1 Fµ Video Amp. AGC Amp. Mixer OSC OUT Buffer Amp. IF MEASUREMENT CIRCUIT 2 Note Balun Transformer : TOKO 617DB-1010 B4F (Double balanced type) Note Balun Transformer : TOKO 617DB-1010 B4F (Double balanced type) Note 51 Ω 1 kΩ 50 Ω LO RF VAGC VCC1 1 Fµ 1 Fµ 1 kΩ1 Fµ 1 Fµ 0.1 Fµ 0.1 Fµ 0.1 Fµ 50 ΩNoise Source 0.1 Fµ Noise Figure Meter Video Amp. AGC Amp. Mixer OSC OUT Buffer Amp. 0.1 Fµ IF

51 Ω LO RF IF VAGC VCC1 1 Fµ 1 Fµ 1 Fµ 1 Fµ 0.1 Fµ 0.1 Fµ 0.1 Fµ 50 Ω50 Ω LO Port Input Impedance IF Port Input Impedance RF Port Input Impedance Network Analyzer 0.1 Fµ 0.1 Fµ Video Amp. AGC Amp. Mixer OSC OUT Buffer Amp. VCC2 1 Fµ 1 Fµ 1 Fµ 1 Fµ

1 Fµ 50 Ω

51 Ω 1 kΩ 1 kΩ 51 Ω 50 Ω 51 Ω 51 Ω Spectrum Analyzer Vin Vout VOUT 0.1 Fµ Video Amp. AGC Amp. Mixer OSC OUT Buffer Amp. Remarks 1. Voltage Gain (Single Ended) = 20 log (VOUT/Vin) (dB) 2. Differential Gain (Differential-out) = 20 log (2 × VOUT/Vin) (dB) 3. VOUT = Vout (Measured Value) × (1 050/50)

VCC2 1 Fµ 1 Fµ 1 Fµ 1 Fµ 1 Fµ 50 Ω 50 Ω 51 Ω 51 Ω0.1 Fµ Video Amp. AGC Amp. Mixer OSC OUT Buffer Amp. Output Impedance Input Impedance Network Analyzer Note Spectrum Analyzer 50 Ω 51 Ω 1 kΩ 1 kΩ 1 kΩ 50 Ω 50 Ω RF LO VAGC VCC1 1 Fµ 1 Fµ 1 Fµ 1 Fµ 1 kΩ1 Fµ1 Fµ 0.1 Fµ VCC2 1 Fµ 0.1 Fµ 0.1 Fµ 0.1 Fµ 0.1 Fµ Loss 10 dB @50 MHz0.1 Fµ Video Amp. AGC Amp. Mixer OSC OUT Buffer Amp. Note Balun Transformer : TOKO 617DB-1010 B4F (Double balanced type) UPC3220GR UPC3220GR

51 Ω 1 kΩ 1 kΩ 1 kΩ 50 Ω LO VAGC VCC1 1 Fµ 1 Fµ 1 Fµ 1 Fµ 1 kΩ1 Fµ1 Fµ 0.1 Fµ VCC2 1 Fµ 0.1 Fµ 0.1 Fµ 0.1 Fµ RF 0.1 Fµ 50 ΩNoise Figure MeterNoise Source 0.1 Fµ Video Amp. AGC Amp. Mixer OSC OUT Buffer Amp. Note Balun Transformer : TOKO 617DB-1010 B4F (Double balanced type) The application circuits and their parameters are for reference only and are not intended for use in actual design-ins.

ILLUSTRATION OF THE MEASUREMENT CIRCUIT1, 2 ASSEMBLED ON EVALUATION BOARD PC3220GRµ Note 1 kΩ 1 kΩ 51 Ω 1 Fµ 0.1 Fµ 0.1 Fµ 20 pF 0.1 Fµ 1 Fµ 0.1 Fµ 1 Fµ 0.1 Fµ VAGC LOinRF1, RF2in IFout VCC1 (AGC + MIX) Remarks 1. Back side: GND pattern 2. Solder plated on pattern 3. : Through hole 4. : Represents cutout Note Balun Transformer

ILLUSTRATION OF THE MEASUREMENT CIRCUIT3 ASSEMBLED ON EVALUATION BOARD PC3220GRµ 51 Ω 1 Fµ 0.1 Fµ 0.1 Fµ 20 pF 0.1 Fµ 1 Fµ 0.1 Fµ 1 Fµ 0.1 Fµ VAGC LOinRFin IFout VCC1 (AGC + MIX) 1 Fµ Remarks 1. Back side: GND pattern 2. Solder plated on pattern 3. : Through hole 4. : Represents cutout 5. : Represents short-circuit strip

ILLUSTRATION OF THE MEASUREMENT CIRCUIT4 ASSEMBLED ON EVALUATION BOARD PC3220GRµ 1 kΩ 1 Fµ 1 Fµ 1 kΩ 1 Fµ 1 Fµ 51 Ω 0.1 Fµ 1 Fµ VCC2 (Video) VoutVin 51 Ω Remarks 1. Back side: GND pattern 2. Solder plated on pattern 3. : Through hole 4. : Represents short-circuit strip

ILLUSTRATION OF THE MEASUREMENT CIRCUIT5 ASSEMBLED ON EVALUATION BOARD PC3220GRµ 1 Fµ

1 Fµ1 Fµ

1 Fµ 0.1 Fµ 1 Fµ VCC2 (Video) Input Impedance Output Impedance 51 Ω 51 Ω Remarks 1. Back side: GND pattern 2. Solder plated on pattern 3. : Through hole 4. : Represents short-circuit strip

ILLUSTRATION OF THE MEASUREMENT CIRCUIT6, 7 ASSEMBLED ON EVALUATION BOARD PC3220GRµ Note 1 kΩ 1 Fµ 1 Fµ 1 kΩ 1 Fµ 1 Fµ 1 kΩ 0.1 Fµ 0.1 Fµ 20 pF 0.1 Fµ 1 Fµ 0.1 Fµ 1 Fµ 0.1 Fµ 1 Fµ VAGC VCC1 (VGC + MIX) VCC2 (Video) Vout LOinRFin 51 Ω Remarks 1. Back side: GND pattern 2. Solder plated on pattern 3. : Through hole 4. : Represents cutout 5. : Represents short-circuit strip Note Balun Transformer

TYPICAL CHARACTERISTICS (TA = +25ºC, unless otherwise specified) CIRCUIT CURRENT1 (TOTAL BLOCK) vs. SUPPLY VOLTAGE Circuit Current1 (Total Block) ICC1 (mA) Supply Voltage VCC1, 2 (V) 0 1 2 3 4 5 6 VAGC = 0 V No Singnal Measurement Cuicuit6 TA = -40°C TA = +25°C TA = +85°C CIRCUIT CURRENT2 (AGC AMPLIFIER + MIXER BLOCK) vs. SUPPLY VOLTAGE Circuit Current2 (AGC Amplifier + Mixer Block) ICC2 (mA) Supply Voltage VCC1 (V) 0 1 2 3 4 5 6 TA = -40°CTA = +85°C TA = +25°C CIRCUIT CURRENT3 (VIDEO AMPLIFIER BLOCK) vs. SUPPLY VOLTAGE Circuit Current3 (Video Amplifier Block) ICC3 (mA)30 Supply Voltage VCC2 (V) 0 1 2 3 4 5 6 TA = -40°C TA = +85°C TA = +25°C VCC2 = VAGC = 0 V No Singnal Measurement Cuicuit6 VCC1 = VAGC = 0 V No Singnal Measurement Cuicuit6 Remark The graphs indicate nominal characteristics.

VOLTAGE GAIN vs. RF INPUT FREQUENCY RANGE Voltage Gain (dB) -10 -15 -20 RF Input Frequency Range fRF (MHz) 0 5 0 100 150 200 250 TA = -40°C TA = +85°C TA = +25°C VOLTAGE GAIN vs. RF INPUT FREQUENCY RANGE Voltage Gain (dB) -10 -15 RF Input Frequency Range fRF (MHz) 0 5 0 100 150 200 250 VCC1 = 5.5 V 5.0 V 4.5 V VOLTAGE GAIN vs. RF INPUT FREQUENCY RANGE Voltage Gain (dB) -10 -15 RF Input Frequency Range fRF (MHz) 0 5 0 100 150 200 250 VCC1 = 5.5 V 5.0 V 4.5 V VAGC = 1.5 V Pin = -50 dBm fLO = 60 to 290 MHz PLO = -15 dBm fIF = 50 MHz Measurement Cuicuit1 VAGC = 3.0 V Pin = -50 dBm fLO = 60 to 290 MHz PLO =-15 dBm fIF = 50 MHz Measurement Cuicuit1 VAGC = 1.5 V VCC = 5.0 V Pin = -50 dBm fLO = 60 to 290 MHz PLO = -15 dBm fIF = 50 MHz Measurement Cuicuit1 VOLTAGE GAIN vs. RF INPUT FREQUENCY RANGE Voltage Gain (dB) -10 -15 RF Input Frequency Range fRF (MHz) 0 5 0 100 150 200 250 VAGC = 0.5 V Pin = -20 dBm fLO = 60 to 290 MHz PLO = -15 dBm fIF = 50 MHz Measurement Cuicuit1 VCC1 = 4.5 V 5.0 V 5.5 V VOLTAGE GAIN vs. RF INPUT FREQUENCY RANGE Voltage Gain (dB) -10 -15 -20 RF Input Frequency Range fRF (MHz) 0 5 0 100 150 200 250 TA = -40°CTA = +85°C TA = +25°C VAGC = 3.0 V VCC = 5.0 V Pin = -50 dBm fLO = 60 to 290 MHz PLO = -15 dBm fIF = 50 MHz Measurement Cuicuit1 VOLTAGE GAIN vs. RF INPUT FREQUENCY RANGE Voltage Gain (dB) -10 -15 -20 RF Input Frequency Range fRF (MHz) 0 5 0 100 150 200 250 TA = -40°C TA = +85°C TA = +25°C VAGC = 0.5 V VCC = 5.0 V Pin = -20 dBm fLO = 60 to 290 MHz PLO = -15 dBm fIF = 50 MHz Measurement Cuicuit1 Remark The graphs indicate nominal characteristics.

VOLTAGE GAIN vs. IF OUTPUT FREQUENCY RANGE Voltage Gain (dB) -10 -15 -20 IF Output Frequency Range fIF (MHz) 0 2 0 6 0 80 140 160 VOLTAGE GAIN vs. IF OUTPUT FREQUENCY RANGE Voltage Gain (dB) -10 -15 -20 IF Output Frequency Range fIF (MHz) 0 2 0 4 0 100 140 160 TA = +25°C VOLTAGE GAIN vs. IF OUTPUT FREQUENCY RANGE Voltage Gain (dB) -10 -15 -20 IF Output Frequency Range fIF (MHz) 0 20 6 0 120 140 160 12060 80 TA = -40°C 1008040 TA = -40°CTA = +25°C TA = +85°C TA = +85°C 40 100 120 TA = +85°C TA = +25°C TA = -40°C VOLTAGE GAIN vs. IF OUTPUT FREQUENCY RANGE Voltage Gain (dB) -10 -15 IF Output Frequency Range fIF (MHz) 0 20 6 0 100 140 16040 80 120 VCC1 = 5.5 V 5.0 V 4.5 V VOLTAGE GAIN vs. IF OUTPUT FREQUENCY RANGE Voltage Gain (dB) -10 -15 IF Output Frequency Range fIF (MHz) 0 20 6 0 100 140 16040 80 120 VCC1 = 4.5 V 5.0 V 5.5 V VOLTAGE GAIN vs. IF OUTPUT FREQUENCY RANGE Voltage Gain (dB) -10 -15 IF Output Frequency Range fIF (MHz) 0 20 6 0 100 140 16040 80 120 VCC1 = 4.5 V 5.0 V 5.5 V VAGC = 0.5 V Pin = -20 dBm fLO = 94 to 234 MHz PLO = -15 dBm fRF = 84 MHz Measurement Cuicuit1 VAGC = 1.5 V Pin = -50 dBm fLO = 94 to 234 MHz PLO = -15 dBm fRF = 84 MHz Measurement Cuicuit1 VAGC = 3.0 V Pin = -50 dBm fLO = 94 to 234 MHz PLO = -15 dBm fRF = 84 MHz Measurement Cuicuit1 VAGC = 0.5 V VCC1 = 5.0 V Pin = -20 dBm fLO = 94 to 234 MHz PLO = -15 dBm fRF = 84 MHz Measurement Cuicuit1 VAGC = 1.5 V VCC1 = 5.0 V Pin = -50 dBm fLO = 94 to 234 MHz PLO = -15 dBm fRF = 84 MHz Measurement Cuicuit1 VAGC = 3.0 V VCC1 = 5.0 V Pin = -50 dBm fLO = 94 to 234 MHz PLO = -15 dBm fRF = 84 MHz Measurement Cuicuit1 Remark The graphs indicate nominal characteristics.

VOLTAGE GAIN vs. GAIN CONTROL VOLTAGE RANGE Voltage Gain (dB) -10 -15 -20 Gain Control Voltage Range VAGC (V) 0 0.5 1.5 3.0 3.5 fRF = 84 MHz Pin = -50 dBm fLO = 134 MHz PLO = -15 dBm fIF = 50 MHz Measurement Cuicuit1 1.0 2.0 2.5 VCC1 = 4.5 V 5.0 V 5.5 V VOLTAGE GAIN vs. GAIN CONTROL VOLTAGE RANGE Voltage Gain (dB) -10 -15 -20 Gain Control Voltage Range VAGC (V) TA = -40°C +25°C +85°C NOISE FIGURE vs. GAIN CONTROL VOLTAGE RANGE Noise Figure NF (dB) Gain Control Voltage Range VAGC (V) VCC1 = 5.5 V 5.0 V 4.5 V fLO = 134 MHz PLO = -15 dBm fIF = 50 MHz Measurement Cuicuit2 NOISE FIGURE vs. GAIN CONTROL VOLTAGE RANGE Noise Figure NF (dB) Gain Control Voltage Range VAGC (V) TA = +85°C +25°C -40°C VCC1 = 5.0 V fRF = 84 MHz Pin = -50 dBm fLO = 134 MHz PLO = -15 dBm fIF = 50 MHz Measurement Cuicuit1 VCC1 = 5.0 V fLO = 134 MHz PLO = -15 dBm fIF = 50 MHz Measurement Cuicuit2 Remark The graphs indicate nominal characteristics.

OUTPUT POWER vs. INPUT POWER Output Power Pout (50 Ω/1 050 Ω) (dBm) -15 -20 -25 -30 -35 -40 -45 -50 -55 Input Power Pin (dBm) VCC1 = 5.5 V 5.0 V 4.5 V

2 TONE OUTPUT POWER

vs. INPUT POWER 2 tone Output Power Pout (50 Ω/1 050 Ω) (dBm) Input Power Pin (dBm) -20 -30 -40 -50 -60 -70 -80 -90 VAGC = 3.0 V fRF1 = 84 MHz fRF2 = 85 MHz fLO = 134 MHz PLO = -15 dBm fIF = 50, 49 MHz Measurement Cuicuit1 vs. INPUT POWER 2 tone Output Power Pout (50 Ω/1 050 Ω) (dBm) Input Power Pin (dBm) -35 OUTPUT POWER vs. INPUT POWER Output Power Pout (50 Ω/1 050 Ω) (dBm) -15 -20 -25 -30 -35 -40 -45 -50 -55 Input Power Pin (dBm) TA = +25°C -35 -40°C +85°CVAGC = 3.0 V fRF = 84 MHz fLO = 134 MHz PLO = -15 dBm fIF = 50 MHz Measurement Cuicuit1 VCC1 = 4.5 V 5.0 V 5.5 V -20 -30 -40 -50 -60 -70 -80 -90 -100 -60 -50 -20-40 -30 TA = -40°C +25°C +85°C vs. INPUT POWER 2 tone Output Power Pout (50 Ω/1 050 Ω) (dBm) Input Power Pin (dBm) -20 -30 -40 -50 -60 -70 -80 -90 VAGC = 2.1 V fRF1 = 84 MHz fRF2 = 85 MHz fLO = 134 MHz PLO = -15 dBm fIF = 50, 49 MHz Measurement Cuicuit1 VCC1 = 4.5 V 5.0 V 5.5 V vs. INPUT POWER 2 tone Output Power Pout (50 Ω/1 050 Ω) (dBm) Input Power Pin (dBm) -20 -30 -40 -50 -60 -70 -80 -90 VCC1 = 5.0 V VAGC = 3.0 V fRF = 84 MHz fLO = 134 MHz PLO = -15 dBm fIF = 50 MHz Measurement Cuicuit1 VCC1 = 5.0 V VAGC = 3.0 V fRF1 = 84 MHz fRF2 = 85 MHz fLO = 134 MHz PLO = -15 dBm fIF = 50, 49 MHz Measurement Cuicuit1 TA = -40°C +25°C +85°C VCC1 = 5.0 V VAGC = 2.1 V fRF1 = 84 MHz fRF2 = 85 MHz fLO = 134 MHz PLO = -15 dBm fIF = 50, 49 MHz Measurement Cuicuit1 Remark The graphs indicate nominal characteristics.

vs. INPUT POWER 2 tone Output Power Pout (50 Ω/1 050 Ω) (dBm) Input Power Pin (dBm) -20 -30 -40 -50 -60 -70 -80 -90 -100 -30 -20 10-10 0 VAGC = 0.5 V fRF1 = 84 MHz fRF2 = 85 MHz fLO = 134 MHz PLO = -15 dBm fIF = 50, 49 MHz Measurement Cuicuit1 vs. INPUT POWER 2 tone Output Power Pout (50 Ω/1 050 Ω) (dBm) Input Power Pin (dBm) VCC1 = 4.5 V 5.0 V 5.5 V -20 -30 -40 -50 -60 -70 -80 -90 -100 -30 -20 10-10 0 vs. INPUT POWER 2 tone Output Power Pout (50 Ω/1 050 Ω) (dBm) Input Power Pin (dBm) -20 -30 -40 -50 -60 -70 -80 -90 -100 -30 -20 10-10 0 VAGC = 1.5 V fRF1 = 84 MHz fRF2 = 85 MHz fLO = 134 MHz PLO = -15 dBm fIF = 50, 49 MHz Measurement Cuicuit1 VCC1 = 4.5 V 5.0 V 5.5 V vs. INPUT POWER 2 tone Output Power Pout (50 Ω/1 050 Ω) (dBm) Input Power Pin (dBm) -20 -30 -40 -50 -60 -70 -80 -90 -100 -30 -20 10-10 0 TA = -40°C +25°C +85°C VCC1 = 5.0 V VAGC = 1.5 V fRF1 = 84 MHz fRF2 = 85 MHz fLO = 134 MHz PLO = -15 dBm fIF = 50, 49 MHz Measurement Cuicuit1 TA = -40°C +25°C +85°C VCC1 = 5.0 V VAGC = 0.5 V fRF1 = 84 MHz fRF2 = 85 MHz fLO = 134 MHz PLO = -15 dBm fIF = 50, 49 MHz Measurement Cuicuit1 Remark The graphs indicate nominal characteristics.

VOLTAGE GAIN (SINGLE-ENDED) vs. INPUT FREQUENCY Voltage Gain (Single-ended) (dB) Input Frequency fin (MHz) 10 10050 VCC2 = 4.5 V 5.0 V 5.5 V VOLTAGE GAIN (SINGLE-ENDED) vs. INPUT FREQUENCY Voltage Gain (Single-ended) (dB) Input Frequency fin (MHz) 10 10050 TA = -40°C +25°C +85°C VCC2 = 5 V Pin = -55 dBm Measurement Cuicuit4 OUTPUT POWER vs. INPUT POWER Output Power Pout (50 Ω/1 050 Ω) (dBm) Input Power Pin (dBm) -10 -15 -20 -25 -30 -35 -40 -50 -45 -15-25 -20 fIF = 50 MHz Measurement Cuicuit4 VCC2 = 4.5 V 5.0 V 5.5 V -40 -35 -30 OUTPUT POWER vs. INPUT POWER Output Power Pout (50 Ω/1 050 Ω) (dBm) Input Power Pin (dBm) -10 -15 -20 -25 -30 -35 -40 -50 -45 -15-25 -20 VCC2 = 5 V fIF = 50 MHz Measurement Cuicuit4 TA = -40°C +25°C +85°C -40 -35 -30 vs. INPUT POWER 2 tone Output Power Pout (50 Ω/1 050 Ω) (dBm) Input Power Pin (dBm) -10 -20 -30 -40 -50 -60 -70 -80 -90-60 -20-30 fIF1 = 50 MHz fIF2 = 49 MHz Measurement Cuicuit4 VCC2 = 4.5 V 5.0 V 5.5 V -50 -40 vs. INPUT POWER 2 tone Output Power Pout (50 Ω/1 050 Ω) (dBm) Input Power Pin (dBm) -10 -20 -30 -40 -50 -60 -70 -80 -90-60 -20-30 VCC2 = 5 V fIF1 = 50 MHz fIF2 = 49 MHz Measurement Cuicuit4 TA = -40°C +25°C +85°C -50 -40 Pin = -55 dBm Measurement Cuicuit4 Remark The graphs indicate nominal characteristics. –Video Amplifier Block–

vs. RF INPUT FREQUENCY RANGE Voltage Gain (dB) RF Input Frequency Range fRF (MHz) 00 25050 VCC1, 2 = 4.5 V 5.0 V 5.5 V 100 150 200 VOLTAGE GAIN vs. RF INPUT FREQUENCY RANGE Voltage Gain (dB) RF Input Frequency Range fRF (MHz) 0 25050 TA = -40°C +25°C +85°C 100 150 200 VCC1, 2 = 5 V fLO = 60 to 290 MHz VAGC = 3.0 V (Pin = -70 dBm) VAGC = 1.5 V (Pin = -40 dBm) VAGC = 0.5 V (Pin = -40 dBm) VAGC = 3.0 V (Pin = -70 dBm) VAGC = 1.5 V (Pin = -40 dBm) VAGC = 0.5 V (Pin = -40 dBm) VOLTAGE GAIN vs. IF OUTPUT FREQUENCY RANGE Voltage Gain (dB) IF Output Frequency Range fIF (MHz) 0 16020 VCC1, 2 = 4.5 V5.0 V5.5 V 100 120 140 VOLTAGE GAIN vs. IF OUTPUT FREQUENCY RANGE Voltage Gain (dB) IF Output Frequency Range fIF (MHz) 00 16020 TA = -40°C +25°C +85°C 60 100 140 VCC1, 2 = 5 V fLO = 94 to 234 MHz PLO = -15 dBm fRF = 84 MHz VAGC = 3.0 V (Pin = -70 dBm) VAGC = 1.5 V (Pin = ñ40 dBm) VAGC = 0.5 V (Pin = -40 dBm) VAGC = 3.0 V (Pin = -70 dBm) VAGC = 1.5 V (Pin = -40 dBm) VAGC = 0.5 V (Pin = -40 dBm) 40 60 80 VOLTAGE GAIN vs. GAIN CONTROL VOLTAGE RANGE Voltage Gain (dB) Gain Control Voltage Range VAGC (V) 0 0.5 1.5 3.0 3.5 fRF = 84 MHz Pin = -70 dBm fLO = 134 MHz PLO = -15 dBm Measurement Cuicuit6 1.0 2.0 2.5 VCC1, 2 = 4.5 V 5.0 V 5.5 V Voltage Gain (dB) Gain Control Voltage Range VAGC (V) 0 0.5 1.5 3.0 3.5 VCC1, 2 = 5 V fRF = 84 MHz Pin = -70 dBm fLO = 134 MHz PLO = -15 dBm Measurement Cuicuit6 1.0 2.0 2.5 TA = -40°C +25°C +85°C 40 80 120 fLO = 60 to 290 MHz PLO = -15 dBm fIF = 50 MHz Measurement Cuicuit6 PLO = -15 dBm fIF = 50 MHz Measurement Cuicuit6 fLO = 94 to 234 MHz PLO = -15 dBm fRF = 84 MHz Measurement Cuicuit6 Measurement Cuicuit6 VOLTAGE GAIN vs. GAIN CONTROL VOLTAGE RANGE Remark The graphs indicate nominal characteristics. –Total Block–

NOISE FIGURE vs. GAIN CONTROL VOLTAGE RANGE Noise Figure NF (dB) Gain Control Voltage Range VAGC (V) 1.0 1.5 3.0 3.5 fIF = 50 MHz fLO = 134 MHz PLO = -15 dBm Measurement Cuicuit7 2.0 2.5 VCC1, 2 = 4.5 V 5.0 V 5.5 V NOISE FIGURE vs. GAIN CONTROL VOLTAGE RANGE Noise Figure NF (dB) Gain Control Voltage Range VAGC (V) 1.0 1.5 3.0 3.5 VCC1, 2 = 5 V fIF = 50 MHz fLO = 134 MHz PLO = ñ15 dBm Measurement Cuicuit7 2.0 2.5 TA = -40°C +25°C +85°C OUTPUT POWER vs. INPUT POWER Output Power Pout (50 Ω/1 050 Ω) (dBm) -10 -15 -20 -25 -30 -35 -40 Input Power Pin (dBm) VCC1, 2 = 5.5 V 5.0 V 4.5 V -55 VAGC = 3.0 V fRF = 84 MHz fLO = 134 MHz PLO = -15 dBm fIF = 50 MHz Measurement Cuicuit6 OUTPUT POWER vs. INPUT POWER Output Power Pout (50 Ω/1 050 Ω) (dBm) -10 -15 -20 -25 -30 -35 -40 Input Power Pin (dBm) TA = +25°C -55 -40°C +85°C vs. INPUT POWER 2 tone Output Power Pout (50 Ω/1 050 Ω) (dBm) Input Power Pin (dBm) -10 -20 -30 -40 -50 -60 -70 -80 -80 -70 -40-60 -50 VAGC = 3.0 V fRF1 = 84 MHz fRF2 = 85 MHz fLO = 134 MHz PLO = -15 dBm fIF = 50, 49 MHz Measurement Cuicuit6 VCC1, 2 = 4.5 V 5.0 V 5.5 V vs. INPUT POWER 2 tone Output Power Pout (50 Ω/1 050 Ω) (dBm) Input Power Pin (dBm) -10 -20 -30 -40 -50 -60 -70 -80 -80 -70 -40-60 -50 VCC1, 2 = 5.0 V VAGC = 3.0 V fRF1 = 84 MHz fRF2 = 85 MHz fLO = 134 MHz PLO = -15 dBm fIF = 50, 49 MHz Measurement Cuicuit6 TA = -40°C +25°C +85°C VCC1, 2 = 5.0 V VAGC = 3.0 V fRF = 84 MHz fLO = 134 MHz PLO = -15 dBm fIF = 50 MHz Measurement Cuicuit6 Remark The graphs indicate nominal characteristics.

vs. INPUT POWER 2 tone Output Power Pout (50 Ω/1 050 Ω) (dBm) Input Power Pin (dBm) -10 -20 -30 -40 -50 -60 -70 -80 -50 -40 -10-30 -20 VAGC = 1.5 V fRF1 = 84 MHz fRF2 = 85 MHz fLO = 134 MHz PLO = -15 dBm fIF = 50, 49 MHz Measurement Cuicuit6 VCC1, 2 = 4.5 V 5.0 V 5.5 V vs. INPUT POWER 2 tone Output Power Pout (50 Ω/1 050 Ω) (dBm) Input Power Pin (dBm) -10 -20 -30 -40 -50 -60 -70 -80 -50 -40 -10-30 -20 VCC1, 2 = 5 V VAGC = 1.5 V fRF1 = 84 MHz fRF2 = 85 MHz fLO = 134 MHz PLO = -15 dBm fIF = 50, 49 MHz Measurement Cuicuit6 TA = -40°C +25°C +85°C vs. INPUT POWER 2 tone Output Power Pout (50 Ω/1 050 Ω) (dBm) Input Power Pin (dBm) -10 -20 -30 -40 -50 -60 -70 -80 -35 -25 5-15 -5 VAGC = 0.5 V fRF1 = 84 MHz fRF2 = 85 MHz fLO = 134 MHz PLO = -15 dBm fIF = 50, 49 MHz Measurement Cuicuit6 VCC1, 2 = 4.5 V 5.0 V 5.5 V vs. INPUT POWER 2 tone Output Power Pout (50 Ω/1 050 Ω) (dBm) Input Power Pin (dBm) -10 -20 -30 -40 -50 -60 -70 -80 -35 -25 5-15 -5 VCC1, 2 = 5.0 V VAGC = 0.5 V fRF1 = 84 MHz fRF2 = 85 MHz fLO = 134 MHz PLO = -15 dBm fIF = 50, 49 MHz Measurement Cuicuit6 TA = -40°C +25°C +85°C Remark The graphs indicate nominal characteristics.

IM3, 2 TONE OUTPUT POWER, GAIN CONTROL VOLTAGE vs. INPUT POWER 2 tone Output Power Pout (50 Ω/1 050 Ω) (dBm) Input Power Pin (dBm) -20 -30 -40 -50 -60 -70 -80 -90 -80 - 60 0-40 -20 Conditions fRF1 = 84 MHz fRF2 = 85 MHz fLO = 134 MHz PLO = -15 dBm fIF = 50, 49 MHz @Vout = 0.7 Vp-p/tone Measurement Cuicuit6 VCC1, 2 = 4.5 V 5.0 V 5.5 V Gain Control Voltage Range VAGC (V) -70 -50 -30 -10 4.0 3.5 3.0 2.5 2.0 1.5 1.0 0.5 IM3, 2 TONE OUTPUT POWER, GAIN CONTROL VOLTAGE vs. INPUT POWER 2 tone Output Power Pout (50 Ω/1 050 Ω) (dBm) Input Power Pin (dBm) -20 -30 -40 -50 -60 -70 -80 -90 -80 - 60 0-40 -20 TA = -40°C +25°C +85°C -70 -50 -30 -10 Gain Control Voltage Range VAGC (V)4.0 3.5 3.0 2.5 2.0 1.5 1.0 0.5 VAGC Pout 3rd Order Intermoduration Distortion IM3 (dBc)3rd Order Intermoduration Distortion IM3 (dBc) IM3 VAGC Pout IM3 Conditions fRF1 = 84 MHz fRF2 = 85 MHz fLO = 134 MHz PLO = -15 dBm fIF = 50, 49 MHz @Vout = 0.7 Vp-p/tone Measurement Cuicuit6 Remark The graphs indicate nominal characteristics.

–AGC Amplifier Block + Mixer Block (Vcc1 = 5.0 V, VAGC = 3.0 V, by measurement circuit 3) MIXER RF Input Impedance 1 : 30 MHz 1.830 kΩ -1.603 kΩ 3.309 pF 2 : 84 MHz 443.0 Ω -1.096 kΩ 1.730 pF 3 : 150 MHz 207.4 Ω - 728.7 Ω 1.456 pF 4 : 250 MHz 109.7 Ω - 454.1 Ω 1.402 pF MIXER RF Output Impedance 1 : 10 MHz 29.48 Ω 634.6 mΩ 10.07 nH 2 : 36 MHz 29.98 Ω 1.908 Ω 8.431 nH 3 : 50 MHz 30.17 Ω 2.476 Ω 7 .884 nH 4 : 100 MHz 30.79 Ω 4.171 Ω 6.638 nH 1 4

1 : 30 MHz 1.820 kΩ -1.823 kΩ 2.911 pF 2 : 100 MHz 415.5 Ω -1.010 Ω 1.575 pF 3 : 134 MHz 284.6 Ω -813.1 Ω 1.461 pF 4 : 250 MHz 133.4 Ω -487.0 Ω 1.307 pF

–Video Amplifier Block (Vcc2 = 5.0 V, by measurement circuit 5) Video Amplifier Input Impedance 1 : 10 MHz 1.187 kΩ -1.177 kΩ 13.54 pF 2 : 36 MHz 389.8 Ω -588.3 Ω 7.516 pF 3 : 50 MHz 333.4 Ω -481.1 Ω 6.617 pF 4 : 100 MHz 245.5 Ω -369.7 Ω 4.304 pF Video Amplifier Output Impedance 1 4 1 : 10 MHz 10.04 Ω 5 .225 Ω 8 3.16 nH 2 : 36 MHz 15.86 Ω 17.70 Ω 78.25 nH 3 : 50 MHz 21.54 Ω 22.61 Ω 7 1.96 nH 4 : 100 MHz 45.48 Ω 23.89 Ω 38.02 nH

16--PIN PLASTIC SSOP (5.72 mm (225))(UNIT:mm) detail of lead end 5º± 5º 16 9 1 8 5.2±0.3 6.4±0.2 4.4±0.2 0.5±0.2 1.0±0.2 0.17+0.08 -0.07 0.10 S 1.8 MAX. 1.5±0.1 0.475 MAX. S 0.22+0.10 -0.05 0.125±0.075 0.10 M 0.65

(1) Observe precautions for handling because of electro-static sensitive devices. (2) Form a ground pattern as widely as possible to minimize ground impedance (to prevent undesired oscillation). All the ground pins must be connected together with wide ground pattern to decrease impedance difference. (3) The bypass capacitor should be attached to V CC line. RECOMMENDED SOLDERING CONDITIONS This product should be soldered and mounted under the following recommended conditions. For soldering methods and conditions other than those recommended below, contact your nearby sales office. Soldering Method Soldering Conditions Condition Symbol Infrared Reflow Peak temperature (package surface temperature) : 260 °C or below Time at peak temperature : 10 seconds or less Time at temperature of 220°C or higher : 60 seconds or less Preheating time at 120 to 180°C : 120±30 seconds Maximum number of reflow processes : 3 times Maximum chlorine content of rosin flux (% mass) : 0.2%(Wt.) or below IR260 Wave Soldering Peak temperature (molten solder temperature) : 260 °C or below Time at peak temperature : 10 seconds or less Preheating temperature (package surface temperature) : 120 °C or below Maximum number of flow processes : 1 time Maximum chlorine content of rosin flux (% mass) : 0.2%(Wt.) or below WS260 Partial Heating Peak temperature (pin temperature) : 350°C or below Soldering time (per side of device) : 3 seconds or less Maximum chlorine content of rosin flux (% mass) : 0.2%(Wt.) or below HS350 Caution Do not use different soldering methods together (except for partial heating). Life Support Applications These NEC products are not intended for use in life support devices, appliances, or systems where the malfunction of these products can reasonably be expected to result in personal injury. The customers of CEL using or selling these products for use in such applications do so at their own risk and agree to fully indemnify CEL for all damages resulting from such improper use or sale. A Business Partner of NEC Compound Semiconductor Devices, Ltd. 04/25/2005

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Santa Clara, CA 95054-1817 Telephone: (408) 919-2500 Facsimile: (408) 988-0279 Subject: Compliance with EU Directives CEL certifies, to its knowledge, that semiconductor and laser products detailed below are compliant with the requirements of European Union (EU) Directive 2002/95/EC Restriction on Use of Hazardous Substances in electrical and electronic equipment (RoHS) and the requirements of EU Directive 2003/11/EC Restriction on Penta and Octa BDE. CEL Pb-free products have the same base part number with a suffix added. The suffix –A indicates that the device is Pb-free. The –AZ suffix is used to designate devices containing Pb which are exempted from the requirement of RoHS directive (*). In all cases the devices have Pb-free terminals. All devices with these suffixes meet the requirements of the RoHS directive. This status is based on CEL’s understanding of the EU Directives and knowledge of the materials that go into its products as of the date of disclosure of this information. Restricted Substance per RoHS Concentration Limit per RoHS (values are not yet fixed) Concentration contained in CEL devices -A -AZLead (Pb) < 1000 PPM Not Detected (*) Mercury < 1000 PPM Not Detected Cadmium < 100 PPM Not Detected Hexavalent Chromium < 1000 PPM Not Detected PBB < 1000 PPM Not Detected PBDE < 1000 PPM Not Detected If you should have any additional questions regarding our devices and compliance to environmental standards, please do not hesitate to contact your local representative. Important Information and Disclaimer: Information provided by CEL on its website or in other communications concerting the substance content of its products represents knowledge and belief as of the date that it is provided. CEL bases its knowledge and belief on information provided by third parties and makes no representation or warranty as to the accuracy of such information. Efforts are underway to better integrate information from third parties. CEL has taken and continues to take reasonable steps to provide representative and ac curate information but may not have conducted destructive testing or chemical analysis on incoming materials and chemicals. CEL and CEL suppliers consider certain information to be proprietary, and thus CAS numbers and other limited information may not be available for release. In no event shall CEL’s liability arising out of such information exceed the total purchase price of the CEL part(s) at issue sold by CEL to customer on an annual basis. See CEL Terms and Conditions for additional clarification of warranties and liability.