UPC3236TK NEC | Alldatasheet

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Technical content

DESCRIPTION

The μPC3236TK is a silicon germanium carbon (SiGe:C) monolithic integrated circ uit designed as IF amplifier for DBS LNB. This device exhibits low noise figure and high power gain characteristics. This IC is manufactured using our UHS4 (Ultra High Speed Process) SiGe:C bipolar process.

FEATURES

  • Low current : I CC = 24.0 mA TYP.  Medium output power : P O (sat) = +15.5 dBm TYP. @ f = 1.0 GHz : P O (sat) = +10.5 dBm TYP. @ f = 2.2 GHz  High linearity : P O (1dB) = +11 dBm TYP. @ f = 1.0 GHz : P O (1dB) = +7.5 dBm TYP. @ f = 2.2 GHz  Power gain : G P = 38 dB TYP. @ f = 1.0 GHz : G P = 38 dB TYP. @ f = 2.2 GHz  Gain flatness : ΔGP = 1.0 dB TYP. @ f = 1.0 to 2.2 GHz  Noise Figure : NF = 2.6 dB TYP. @ f = 1.0 GHz : NF = 2.6 dB TYP. @ f = 2.2 GHz  Supply voltage : V CC = 4.5 to 5.5 V  Port impedance : input/output 50 Ω

APPLICATIONS

 IF amplifiers in DBS LNB, other L-band amplifiers, etc.

ORDERING INFORMATION

Part Number Order Number Package Marking Supplying Form μPC3236TK-E2 μPC3236TK-E2-A 6-pin lead-less minimold (1511 PKG) (Pb-Free) 6U • Embossed tape 8 mm wide

  • Pin 1, 6 face the perforation side of the tape
  • Qty 5 kpcs/reel Remark To order evaluation samples, please contact your nearby sales office Part number for sample order: μPC3236TK DATA SHEET Caution Observe precautions when handling because these devices are sensitive to electrostatic discharge. The information in this document is subject to change without notice. Before using this document, please confirm that this is the latest version. Not all products and/or types are available in every country. Please check with an NEC Electronics sales representative for availability and additional information.

5 V, SILICON GERMANIUM MMIC

MEDIUM OUTPUT POWER AMPLIFIER Document No. PU10734EJ01V0DS (1st edition) Date Published December 2008 NS Printed in Japan BIPOLAR ANALOG INTEGRATED CIRCUIT μPC3236TK

PIN CONNECTIONS AND INTERNAL BLOCK DIAGRAM Pin No. Pin Name

1 V CC

2 GND

3 OUTPUT

4 GND

5 GND

(Top View) (Bottom View) (Top View)

6 INPUT

PRODUCT LINE-UP OF 5 V-BIAS SILICON MMIC MEDIUM OUTPUT POWER AMPLIFIER (TA = +25°C, f = 1 GHz, VCC = Vout = 5.0 V, ZS = ZL = 50 Ω) Part No. ICC (mA) GP (dB) NF (dB) PO (1dB) (dBm) PO (sat) (dBm) Package Marking μPC2708TB 26 15.0 6.5 − +10.0 6-pin super minimold C1D μPC2709TB 25 23.0 5.0 − +11.5 C1E μPC2710TB 22 33.0 3.5 − +13.5 C1F μPC2776TB 25 23.0 6.0 − +8.5 C2L μPC3223TB 19 23.0 4.5 +6.5 +12.0 C3J μPC3225TB 24.5 32.5 Note 3.7 Note Note +15.5 Note C3M μPC3232TB 26 32.8 4.0 +11 +15.5 C3S μPC3236TK 24 38 2.6 +11 +15.5 6-pin lead-less minimold (1511 PKG) 6U Note μPC3225TB is f = 0.95 GHz Remark Typical performance. Please refer to ELECTRICAL CHARACTERISTICS in detail. Data Sheet PU10734EJ01V0DS 2 μPC3236TK

Parameter Symbol Conditions Ratings Unit Supply Voltage V CC T A = +25°C, pin 1 and 3 6.0 V Power Dissipation P D T A = +85°C Note 232 mW Operating Ambient Temperature T A −40 to +85 °C Storage Temperature T stg −55 to +150 °C Input Power P in T A = +25°C 0 dBm Note Mounted on double-sided copper-clad 50 × 50 × 1.6 mm epoxy glass PWB RECOMMENDED OPERATING RANGE Parameter Symbol Conditions MIN. TYP. MAX. Unit Supply Voltage V CC The same voltage should be applied to pin 1 and 3. 4.5 5.0 5.5 V Operating Ambient Temperature T A −40 +25 +85 °C Data Sheet PU10734EJ01V0DS 3 μPC3236TK

ELECTRICAL CHARACTERISTICS (TA = +25°C, VCC = Vout = 5.0 V, ZS = ZL = 50 Ω) Parameter Symbol Test Conditions MIN. TYP. MAX. Unit Circuit Current I CC No input signal 19 24 31 mA Power Gain 1 G P1 f = 0.25 GHz, P in = −40 dBm 34 37 39 dB Power Gain 2 G P2 f = 1.0 GHz, P in = −40 dBm 35.5 38 40.5 Power Gain 3 G P3 f = 1.8 GHz, P in = −40 dBm 36 39 42 Power Gain 4 G P4 f = 2.2 GHz, P in = −40 dBm 35 38 41 Saturated Output Power 1 P O (sat) 1 f = 1.0 GHz, P in = 0 dBm +13.5 +15.5 − dBm Saturated Output Power 2 P O (sat) 2 f = 2.2 GHz, P in = −5 dBm +8.5 +10.5 − Gain 1 dB Compression Output Power 1 PO (1 dB) 1 f = 1.0 GHz +8 +11 − dBm Gain 1 dB Compression Output Power 2 P O (1 dB) 2 f = 2.2 GHz +5 +7.5 − Noise Figure 1 NF1 f = 1.0 GHz − 2.6 3.5 dB Noise Figure 2 NF2 f = 2.2 GHz − 2.6 3.5 Isolation 1 ISL1 f = 1.0 GHz, P in = −40 dBm 43 50 − dB Isolation 2 ISL2 f = 2.2 GHz, P in = −40 dBm 43 50 − Input Return Loss 1 RL in1 f = 1.0 GHz, P in = −40 dBm 6 9 − dB Input Return Loss 2 RL in2 f = 2.2 GHz, P in = −40 dBm 6.5 9.5 − Output Return Loss 1 RL out1 f = 1.0 GHz, P in = −40 dBm 8 11 − dB Output Return Loss 2 RL out2 f = 2.2 GHz, P in = −40 dBm 7 10 − STANDARD CHARACTERISTICS FOR REFERENCE A = +25°C, VCC = Vout = 5.0 V, ZS = ZL = 50 Ω, unless otherwise specified) Parameter Symbol Test Conditions Reference Value Unit Power Gain 5 G P5 f = 2.6 GHz, P in = −40 dBm 36 dB Power Gain 6 G P6 f = 3.0 GHz, P in = −40 dBm 32.5 Gain Flatness ΔGP f = 1.0 to 2.2 GHz, P in = −40 dBm 1.0 dB K factor 1 K1 f = 1.0 GHz, P in = −40 dBm 1.6 − K factor 2 K2 f = 2.2 GHz, P in = −40 dBm 1.6 − Output 3rd Order Intercept Point 1 OIP 31 f1 = 1 000 MHz, f2 = 1 001 MHz 23 dBm Output 3rd Order Intercept Point 2 OIP 32 f1 = 2 200 MHz, f2 = 2 201 MHz 16.5 2nd Order Intermodulation Distortion IM 2 f1 = 1 000 MHz, f2 = 1 001 MHz, Pout = −5 dBm/tone 45 dBc 2nd Harmonic 2f0 f0 = 1.0 GHz, P out = −15 dBm 58 dBc Data Sheet PU10734EJ01V0DS 4 μPC3236TK

2, 4, 5 OUT GND 560 Ω 56 nH 2.2 nH Microstrip Line Microstrip Line (W = 0.2 mm, L = 2.9 mm) 1 000 pF 1 000 pF 1 000 pF 100 pF The application circuits and their parameters are for reference only and are not intended for use in actual design-ins. COMPONENTS OF TEST CIRCUIT FOR MEASURING

ELECTRICAL CHARACTERISTICS

R1 Chip Resistance 560 Ω L1 Chip Inductor 56 nH L2 Chip Inductor 2.2 nH C1, C2 Chip Capacitor 100 pF C3, C4 Chip Capacitor 1 000 pF C5 Feed-through Capacitor 1 000 pF INDUCTOR FOR THE OUTPUT PIN The internal output transistor of this IC, to output medium power. To suppl y current for output transistor, connect an inductor between the VCC pin (pin 1) and output pin (pin 3). Select inductance, as the value listed above. The inductor has both DC and AC effects. In terms of DC, the inductor biases the out put transistor with minimum voltage drop to output enable high level. In terms of AC, the inductor ma kes output-port impedance higher to get enough gain. In this case, large inductance and Q is suitable (Refer to the following page). CAPACITORS FOR THE VCC, INPUT AND OUTPUT PINS Capacitors of 1 000 pF are recommendable as the bypass capacitor for the V CC pin and the coupling capacitors for the input and output pins. The bypass capacitor connected to the VCC pin is used to minimize ground impedance of V CC pin. So, stable bias can be supplied against VCC fluctuation. The coupling capacitors, connec ted to the input and output pins, are used to cut the DC and minimize RF serial impedance. Their capacitances are therefore selected as lower impedance against a 50 Ω load. The capacitors thus perform as high pass filters, suppressing low frequencies to DC. To obtain a flat gain from 100 MHz upwar ds, 1 000 pF capacitors are used in the test circuit. In the case of under 10 MHz operation, increase the value of coupling capacitor such as 10 000 pF. Because the coupling capacitors are determined by equation, C = 1/(2 πRfc). Data Sheet PU10734EJ01V0DS 5 μPC3236TK

ILLUSTRATION OF THE TEST CIRCUIT ASSEMBLED ON EVALUATION BOARD C5: Feed-through Capacitor C2L2 2.50 0.80 0.20 1.20 1.70 1.28 0.80 1.30 0.60 (Unit: mm) The surface GND pattern of these area should be separated to make stability. Notes 1. 19 × 21.46 × 0.51 mm double sided 18 μ m copper clad RO4003C (Rogers) board. 2. Back side: GND pattern 3. Au plated on pattern 4. : Through holes ( φ 0.40, φ 0.30) 5. L1, L2: FDK’s products COMPONENT LIST Value Size R1 560 Ω 1005 L1 56 nH 1005 L2 2.2 nH 1005 C1, C2 100 pF 1608 C3 1 000 pF 1005 C4 1 000 pF 1608 C5 1 000 pF Feed-through Capacitor Data Sheet PU10734EJ01V0DS 6 μPC3236TK

TYPICAL CHARACTERISTICS (TA = +25°C, VCC = Vout = 5.0 V, ZS = ZL = 50 Ω, unless otherwise specified) CIRCUIT CURRENT vs. SUPPLY VOLTAGECircuit Current ICC (mA) Supply Voltage VCC (V) 01 3 24 5 6 CURCUIT CURRENT vs. OPERATING AMBIENT TEMPERATURE Circuit Current ICC (mA) Operating Ambient Temperature TA (°C) –50 –30 –10 10 70 9030 50 No Input Signal No Input Signal POWER GAIN vs. FREQUENCY Frequency f (GHz) Power Gain GP (dB) 0.0 1.0 2.0 5.0 45.0 43.0 41.0 39.0 37.0 35.0 33.0 31.0 29.0 27.0 25.0 4.03.0 ISOLATION vs. FREQUENCY Frequency f (GHz) Isolation ISL (dB) INPUT RETURN LOSS vs. FREQUENCY Frequency f (GHz) Input Return Loss RLin (dB) OUTPUT RETURN LOSS vs. FREQUENCY Frequency f (GHz) Output Return Loss RLout (dB) TA = +85°C +25°C –40°C VCC = 5.5 V 4.5 V 5.0 V Pin = –40 dBm 0.0 1.0 2.0 5.0 0.0 –2.0 –4.0 –6.0 –8.0 –10.0 –12.0 –14.0 –16.0 –18.0 –20.0 4.03.0 VCC = 5.5 V 4.5 V 5.0 V Pin = –40 dBm 0.0 1.0 2.0 5.0 0.0 –2.0 –4.0 –6.0 –8.0 –10.0 –12.0 –14.0 –16.0 –18.0 –20.0 4.03.0 VCC = 5.5 V 4.5 V 5.0 V Pin = –40 dBm 0.0 1.0 2.0 5.0 0.0 –10.0 –20.0 –30.0 –40.0 –50.0 –60.0 –70.0 –80.0 4.03.0 Pin = –40 dBm Remark The graphs indicate nominal characteristics. Data Sheet PU10734EJ01V0DS 7 μPC3236TK

POWER GAIN vs. FREQUENCY Frequency f (GHz) Power Gain GP (dB) 0.0 1.0 2.0 5.0 45.0 43.0 41.0 39.0 37.0 35.0 33.0 31.0 29.0 27.0 25.0 4.03.0 ISOLATION vs. FREQUENCY Frequency f (GHz) Isolation ISL (dB) INPUT RETURN LOSS vs. FREQUENCY Frequency f (GHz) Input Return Loss RLin (dB) OUTPUT RETURN LOSS vs. FREQUENCY Frequency f (GHz) Output Return Loss RLout (dB) Pin = –40 dBm 0.0 1.0 2.0 5.0 0.0 –2.0 –4.0 –6.0 –8.0 –10.0 –12.0 –14.0 –16.0 –18.0 –20.0 4.03.0 TA = +85°C –40°C +25°C Pin = –40 dBm 0.0 1.0 2.0 5.0 0.0 –2.0 –4.0 –6.0 –8.0 –10.0 –12.0 –14.0 –16.0 –18.0 –20.0 4.03.0 Pin = –40 dBm 0.0 1.0 2.0 5.0 0.0 –10.0 –20.0 –30.0 –40.0 –50.0 –60.0 –70.0 –80.0 –10 –15 –20 4.03.0 Pin = –40 dBm TA = +85°C +25°C –40°C OUTPUT POWER vs. INPUT POWER Output Power Pout (dBm) Input Power Pin (dBm) f = 1.0 GHz –10 –15 –20 OUTPUT POWER vs. INPUT POWER Output Power Pout (dBm) Input Power Pin (dBm) f = 2.2 GHz VCC = 5.5 V 5.0 V 4.5 V VCC = 5.5 V 5.0 V 4.5 V Remark The graphs indicate nominal characteristics. Data Sheet PU10734EJ01V0DS 8 μPC3236TK

–10 –15 –20 f = 1.0 GHz OUTPUT POWER vs. INPUT POWER Output Power Pout (dBm) Input Power Pin (dBm) 5.0 4.5 4.0 3.5 3.0 2.5 2.0 1.5 1.0 0.5 0.0 NOISE FIGURE vs. FREQUENCY Frequency f (GHz) Noise Figure NF (dB) NOISE FIGURE vs. FREQUENCY Frequency f (GHz) Noise Figure NF (dB) +25°C TA = +85°C TA = +85°C –10 –15 –20 f = 2.2 GHz OUTPUT POWER vs. INPUT POWER Output Power Pout (dBm) Input Power Pin (dBm) –40°C +25°C –40°C +25°C TA = +85°C 5.0 4.5 4.0 3.5 3.0 2.5 2.0 1.5 1.0 0.5 0.0 Remark The graphs indicate nominal characteristics. Data Sheet PU10734EJ01V0DS 9 μPC3236TK

VCC = 5.0 V f1 = 1 000 MHz f2 = 1 001 MHz V CC = 5.0 V f1 = 2 200 MHz f2 = 2 201 MHz V CC = 5.5 V f1 = 2 200 MHz f2 = 2 201 MHz OUTPUT POWER, IM3 vs. INPUT POWER Output Power Pout (1 tone) (dBm) 3rd Order Intermodulation Distortion IM3 (1 tone) (dBm) Input Power Pin (1 tone) (dBm) OUTPUT POWER, IM3 vs. INPUT POWER Output Power Pout (1 tone) (dBm) 3rd Order Intermodulation Distortion IM3 (1 tone) (dBm) Input Power Pin (1 tone) (dBm) VCC = 5.5 V f1 = 1 000 MHz f2 = 1 001 MHz OUTPUT POWER, IM3 vs. INPUT POWER Output Power Pout (1 tone) (dBm) 3rd Order Intermodulation Distortion IM3 (1 tone) (dBm) Input Power Pin (1 tone) (dBm) OUTPUT POWER, IM3 vs. INPUT POWER Output Power Pout (1 tone) (dBm) 3rd Order Intermodulation Distortion IM3 (1 tone) (dBm) Input Power Pin (1 tone) (dBm) Pout IM3 VCC = 4.5 V f1 = 1 000 MHz f2 = 1 001 MHz –10 –20 –30 –40 –50 –60 –70 –80 –90 OUTPUT POWER, IM3 vs. INPUT POWER Output Power Pout (1 tone) (dBm) 3rd Order Intermodulation Distortion IM3 (1 tone) (dBm) Input Power Pin (1 tone) (dBm) VCC = 4.5 V f1 = 2 200 MHz f2 = 2 201 MHz OUTPUT POWER, IM3 vs. INPUT POWER Output Power Pout (1 tone) (dBm) 3rd Order Intermodulation Distortion IM3 (1 tone) (dBm) Input Power Pin (1 tone) (dBm) Pout IM3 –10 –20 –30 –40 –50 –60 –70 –80 –90 Pout IM3 –10 –20 –30 –40 –50 –60 –70 –80 –90 Pout IM3 –10 –20 –30 –40 –50 –60 –70 –80 –90 Pout IM3 –10 –20 –30 –40 –50 –60 –70 –80 –90 Pout IM3 –10 –20 –30 –40 –50 –60 –70 –80 –90 OIP3 = +23.6 dBm OIP3 = +16.9 dBm IIP3 = –14.6 dBm IIP3 = –21.8 dBm Remark The graphs indicate nominal characteristics. Data Sheet PU10734EJ01V0DS 10 μPC3236TK

VCC = 5.0 V TA = –40°C f1 = 1 000 MHz f2 = 1 001 MHz V CC = 5.0 V TA = –40°C f1 = 2 200 MHz f2 = 2 201 MHz V CC = 5.5 V TA = –40°C f1 = 2 200 MHz f2 = 2 201 MHz OUTPUT POWER, IM3 vs. INPUT POWER Output Power Pout (1 tone) (dBm) 3rd Order Intermodulation Distortion IM3 (1 tone) (dBm) Input Power Pin (1 tone) (dBm) OUTPUT POWER, IM3 vs. INPUT POWER Output Power Pout (1 tone) (dBm) 3rd Order Intermodulation Distortion IM3 (1 tone) (dBm) Input Power Pin (1 tone) (dBm) VCC = 5.5 V TA = –40°C f1 = 1 000 MHz f2 = 1 001 MHz OUTPUT POWER, IM3 vs. INPUT POWER Output Power Pout (1 tone) (dBm) 3rd Order Intermodulation Distortion IM3 (1 tone) (dBm) Input Power Pin (1 tone) (dBm) OUTPUT POWER, IM3 vs. INPUT POWER Output Power Pout (1 tone) (dBm) 3rd Order Intermodulation Distortion IM3 (1 tone) (dBm) Input Power Pin (1 tone) (dBm) Pout IM3 VCC = 4.5 V TA = –40°C f1 = 1 000 MHz f2 = 1 001 MHz –10 –20 –30 –40 –50 –60 –70 –80 –90 OUTPUT POWER, IM3 vs. INPUT POWER Output Power Pout (1 tone) (dBm) 3rd Order Intermodulation Distortion IM3 (1 tone) (dBm) Input Power Pin (1 tone) (dBm) VCC = 4.5 V TA = –40°C f1 = 2 200 MHz f2 = 2 201 MHz OUTPUT POWER, IM3 vs. INPUT POWER Output Power Pout (1 tone) (dBm) 3rd Order Intermodulation Distortion IM3 (1 tone) (dBm) Input Power Pin (1 tone) (dBm) Pout IM3 –10 –20 –30 –40 –50 –60 –70 –80 –90 Pout IM3 –10 –20 –30 –40 –50 –60 –70 –80 –90 Pout IM3 –10 –20 –30 –40 –50 –60 –70 –80 –90 Pout IM3 –10 –20 –30 –40 –50 –60 –70 –80 –90 Pout IM3 –10 –20 –30 –40 –50 –60 –70 –80 –90 Remark The graphs indicate nominal characteristics. Data Sheet PU10734EJ01V0DS 11 μPC3236TK

VCC = 5.0 V TA = +85°C f1 = 1 000 MHz f2 = 1 001 MHz V CC = 5.0 V TA = +85°C f1 = 2 200 MHz f2 = 2 201 MHz V CC = 5.5 V TA = +85°C f1 = 2 200 MHz f2 = 2 201 MHz OUTPUT POWER, IM3 vs. INPUT POWER Output Power Pout (1 tone) (dBm) 3rd Order Intermodulation Distortion IM3 (1 tone) (dBm) Input Power Pin (1 tone) (dBm) OUTPUT POWER, IM3 vs. INPUT POWER Output Power Pout (1 tone) (dBm) 3rd Order Intermodulation Distortion IM3 (1 tone) (dBm) Input Power Pin (1 tone) (dBm) VCC = 5.5 V TA = +85°C f1 = 1 000 MHz f2 = 1 001 MHz OUTPUT POWER, IM3 vs. INPUT POWER Output Power Pout (1 tone) (dBm) 3rd Order Intermodulation Distortion IM3 (1 tone) (dBm) Input Power Pin (1 tone) (dBm) OUTPUT POWER, IM3 vs. INPUT POWER Output Power Pout (1 tone) (dBm) 3rd Order Intermodulation Distortion IM3 (1 tone) (dBm) Input Power Pin (1 tone) (dBm) Pout IM3 VCC = 4.5 V TA = +85°C f1 = 1 000 MHz f2 = 1 001 MHz –10 –20 –30 –40 –50 –60 –70 –80 –90 OUTPUT POWER, IM3 vs. INPUT POWER Output Power Pout (1 tone) (dBm) 3rd Order Intermodulation Distortion IM3 (1 tone) (dBm) Input Power Pin (1 tone) (dBm) VCC = 4.5 V TA = +85°C f1 = 2 200 MHz f2 = 2 201 MHz OUTPUT POWER, IM3 vs. INPUT POWER Output Power Pout (1 tone) (dBm) 3rd Order Intermodulation Distortion IM3 (1 tone) (dBm) Input Power Pin (1 tone) (dBm) Pout IM3 –10 –20 –30 –40 –50 –60 –70 –80 –90 Pout IM3 –10 –20 –30 –40 –50 –60 –70 –80 –90 Pout IM3 –10 –20 –30 –40 –50 –60 –70 –80 –90 Pout IM3 –10 –20 –30 –40 –50 –60 –70 –80 –90 Pout IM3 –10 –20 –30 –40 –50 –60 –70 –80 –90 Remark The graphs indicate nominal characteristics. Data Sheet PU10734EJ01V0DS 12 μPC3236TK

VCC = 4.5 V f1 = 1 000 MHz f2 = 1 001 MHz –10 –20 –30 –40 –50 –60 –70 OUTPUT POWER, IM2 vs. INPUT POWER Output Power Pout (1 tone) (dBm) 2nd Order Intermodulation Distortion IM2 (2 tone) (dBm) Input Power Pin (1 tone) (dBm) VCC = 4.5 V f1 = 1 000 MHz f2 = 1 001 MHz IM2 vs. INPUT POWER 2nd Order Intermodulation Distortion IM2 (dBc) Input Power Pin (1 tone) (dBm) VCC = 5.0 V f1 = 1 000 MHz f2 = 1 001 MHz OUTPUT POWER, IM2 vs. INPUT POWER Output Power Pout (1 tone) (dBm) 2nd Order Intermodulation Distortion IM2 (2 tone) (dBm) Input Power Pin (1 tone) (dBm) VCC = 5.0 V f1 = 1 000 MHz f2 = 1 001 MHz IM2 vs. INPUT POWER 2nd Order Intermodulation Distortion IM2 (dBc) Input Power Pin (1 tone) (dBm) VCC = 5.5 V f1 = 1 000 MHz f2 = 1 001 MHz OUTPUT POWER, IM2 vs. INPUT POWER Output Power Pout (1 tone) (dBm) 2nd Order Intermodulation Distortion IM2 (2 tone) (dBm) Input Power Pin (1 tone) (dBm) VCC = 5.5 V f1 = 1 000 MHz f2 = 1 001 MHz IM2 vs. INPUT POWER 2nd Order Intermodulation Distortion IM2 (dBc) Input Power Pin (1 tone) (dBm) Pout IM2 –10 –20 –30 –40 –50 –60 Pout IM2 –10 –20 –30 –40 –50 –60 Remark The graphs indicate nominal characteristics. Data Sheet PU10734EJ01V0DS 13 μPC3236TK

VCC = 4.5 V TA = –40°C f1 = 1 000 MHz f2 = 1 001 MHz –10 –20 –30 –40 –50 –60 –70 OUTPUT POWER, IM2 vs. INPUT POWER Output Power Pout (1 tone) (dBm) 2nd Order Intermodulation Distortion IM2 (2 tone) (dBm) Input Power Pin (1 tone) (dBm) VCC = 4.5 V TA = –40°C f1 = 1 000 MHz f2 = 1 001 MHz IM2 vs. INPUT POWER 2nd Order Intermodulation Distortion IM2 (dBc) Input Power Pin (1 tone) (dBm) VCC = 5.0 V TA = –40°C f1 = 1 000 MHz f2 = 1 001 MHz OUTPUT POWER, IM2 vs. INPUT POWER Output Power Pout (1 tone) (dBm) 2nd Order Intermodulation Distortion IM2 (2 tone) (dBm) Input Power Pin (1 tone) (dBm) VCC = 5.0 V TA = –40°C f1 = 1 000 MHz f2 = 1 001 MHz IM2 vs. INPUT POWER 2nd Order Intermodulation Distortion IM2 (dBc) Input Power Pin (1 tone) (dBm) VCC = 5.5 V TA = –40°C f1 = 1 000 MHz f2 = 1 001 MHz OUTPUT POWER, IM2 vs. INPUT POWER Output Power Pout (1 tone) (dBm) 2nd Order Intermodulation Distortion IM2 (2 tone) (dBm) Input Power Pin (1 tone) (dBm) VCC = 5.5 V TA = –40°C f1 = 1 000 MHz f2 = 1 001 MHz IM2 vs. INPUT POWER 2nd Order Intermodulation Distortion IM2 (dBc) Input Power Pin (1 tone) (dBm) Pout IM2 –10 –20 –30 –40 –50 –60 –70 Pout IM2 –10 –20 –30 –40 –50 –60 –70 Remark The graphs indicate nominal characteristics. Data Sheet PU10734EJ01V0DS 14 μPC3236TK

VCC = 4.5 V TA = +85°C f1 = 1 000 MHz f2 = 1 001 MHz –10 –20 –30 –40 –50 –60 –70 OUTPUT POWER, IM2 vs. INPUT POWER Output Power Pout (1 tone) (dBm) 2nd Order Intermodulation Distortion IM2 (2 tone) (dBm) Input Power Pin (1 tone) (dBm) VCC = 4.5 V TA = +85°C f1 = 1 000 MHz f2 = 1 001 MHz IM2 vs. INPUT POWER 2nd Order Intermodulation Distortion IM2 (dBc) Input Power Pin (1 tone) (dBm) VCC = 5.0 V TA = +85°C f1 = 1 000 MHz f2 = 1 001 MHz OUTPUT POWER, IM2 vs. INPUT POWER Output Power Pout (1 tone) (dBm) 2nd Order Intermodulation Distortion IM2 (2 tone) (dBm) Input Power Pin (1 tone) (dBm) VCC = 5.0 V TA = +85°C f1 = 1 000 MHz f2 = 1 001 MHz IM2 vs. INPUT POWER 2nd Order Intermodulation Distortion IM2 (dBc) Input Power Pin (1 tone) (dBm) VCC = 5.5 V TA = +85°C f1 = 1 000 MHz f2 = 1 001 MHz OUTPUT POWER, IM2 vs. INPUT POWER Output Power Pout (1 tone) (dBm) 2nd Order Intermodulation Distortion IM2 (2 tone) (dBm) Input Power Pin (1 tone) (dBm) VCC = 5.5 V TA = +85°C f1 = 1 000 MHz f2 = 1 001 MHz IM2 vs. INPUT POWER 2nd Order Intermodulation Distortion IM2 (dBc) Input Power Pin (1 tone) (dBm) Pout IM2 –10 –20 –30 –40 –50 –60 –70 Pout IM2 –10 –20 –30 –40 –50 –60 –70 Remark The graphs indicate nominal characteristics. Data Sheet PU10734EJ01V0DS 15 μPC3236TK

VCC = 4.5 V f = 1 000 MHz –10 –20 –30 –40 –50 –60 –70 –80 OUTPUT POWER, 2f0 vs. INPUT POWER Output Power Pout (dBm) 2nd Harmonic 2f0 (dBm) Input Power Pin (dBm) OUTPUT POWER, 2f0 vs. INPUT POWER Output Power Pout (dBm) 2nd Harmonic 2f0 (dBm) Input Power Pin (dBm) OUTPUT POWER, 2f0 vs. INPUT POWER Output Power Pout (dBm) 2nd Harmonic 2f0 (dBm) Input Power Pin (dBm) Pout 2f0 VCC = 5.5 V f = 1 000 MHz –10 –20 –30 –40 –50 –60 –70 –80 OUTPUT POWER, 2f0 vs. INPUT POWER Output Power Pout (dBm) 2nd Harmonic 2f0 (dBm) Input Power Pin (dBm) Pout 2f0 VCC = 4.5 V TA = –40°C f = 1 000 MHz –10 –20 –30 –40 –50 –60 –70 –80 OUTPUT POWER, 2f0 vs. INPUT POWER Output Power Pout (dBm) 2nd Harmonic 2f0 (dBm) Input Power Pin (dBm) Pout 2f0 VCC = 5.5 V TA = –40°C f = 1 000 MHz –10 –20 –30 –40 –50 –60 –70 –80 OUTPUT POWER, 2f0 vs. INPUT POWER Output Power Pout (dBm) 2nd Harmonic 2f0 (dBm) Input Power Pin (dBm) Pout 2f0 VCC = 5.0 V TA = –40°C f = 1 000 MHz –10 –20 –30 –40 –50 –60 –70 –80 Pout 2f0 VCC = 5.0 V f = 1 000 MHz –10 –20 –30 –40 –50 –60 –70 –80 Remark The graphs indicate nominal characteristics. Data Sheet PU10734EJ01V0DS 16 μPC3236TK

OUTPUT POWER, 2f0 vs. INPUT POWER Output Power Pout (dBm) 2nd Harmonic 2f0 (dBm) Input Power Pin (dBm) 10.0 9.0 8.0 7.0 6.0 5.0 4.0 3.0 2.0 1.0 K FACTOR vs. FREQUENCY Frequency f (GHz) K Factor K Pin = –40 dBm VCC = 5.0 V K (1.0 GHz) = 1.45 K (2.2 GHz) = 1.59 P out 2f0 VCC = 4.5 V TA = +85°C f = 1 000 MHz –10 –20 –30 –40 –50 –60 –70 –80 OUTPUT POWER, 2f0 vs. INPUT POWER Output Power Pout (dBm) 2nd Harmonic 2f0 (dBm) Input Power Pin (dBm) Pout 2f0 VCC = 5.5 V TA = +85°C f = 1 000 MHz –10 –20 –30 –40 –50 –60 –70 –80 OUTPUT POWER, 2f0 vs. INPUT POWER Output Power Pout (dBm) 2nd Harmonic 2f0 (dBm) Input Power Pin (dBm) Pout 2f0 VCC = 5.0 V TA = +85°C f = 1 000 MHz –10 –20 –30 –40 –50 –60 –70 –80 10.0 9.0 8.0 7.0 6.0 5.0 4.0 3.0 2.0 1.0 K FACTOR vs. FREQUENCY Frequency f (GHz) K Factor K Pin = –40 dBm TA = +85°C VCC = 5.0 V K (1.0 GHz) = 1.44 K (2.2 GHz) = 1.48 10.0 9.0 8.0 7.0 6.0 5.0 4.0 3.0 2.0 1.0 K FACTOR vs. FREQUENCY Frequency f (GHz) K Factor K Pin = –40 dBm TA = –40°C VCC = 5.0 V K (1.0 GHz) = 1.31 K (2.2 GHz) = 1.33 VCC = 4.5 V, 5.0 V, 5.5 V Remark The graphs indicate nominal characteristics. Data Sheet PU10734EJ01V0DS 17 μPC3236TK

S-PARAMETERS (TA = +25°C, VCC = Vout = 5.0 V, Pin = −40 dBm) S11−FREQUENCY 1 : 1 000 MHz 51.14 Ω –41.10 Ω 2 : 2 200 MHz 24.67 Ω 5.97 Ω START: 100 MHz STOP: 5 100 MHz S22−FREQUENCY START: 100 MHz STOP: 5 100 MHz 1 : 1 000 MHz 51.01 Ω –27.59 Ω 2 : 2 200 MHz 58.92 Ω 32.68 Ω Remarks 1. Measured on the test circ uit of evaluation board. 2. The graphs indicate nominal characteristics. Data Sheet PU10734EJ01V0DS 18 μPC3236TK

S-parameters and noise parameters are provided on our Web site in a format (S2P) that enables the direct import of the parameters to microwave circuit simulators without the need for keyboard inputs. Click here to download S-parameters. [RF and Microwave] → [Device Parameters] URL http://www.necel.com/microwave/en/ Data Sheet PU10734EJ01V0DS 19 μPC3236TK

6-PIN LEAD-LESS MINIMOLD (1511 PKG) (UNIT: mm) 0.48±0.050.48±0.05 1.5±0.1 1.3±0.05 1.1±0.1 0.55±0.03 0.11+0.1 –0.05 0.16±0.05 0.9±0.10.2±0.1 ab c (Bottom View)(Top View) Remark Dimension is bigger than dimension (dimension = a + b + c). Data Sheet PU10734EJ01V0DS 20 μPC3236TK

(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). There are the surface GND pattern area that must be separated to make stability. (3) The bypass capacitor should be attached to the VCC line. (4) The inductor (L) must be attached between VCC and output pins. The inductance value should be determined in accordance with desired frequency. (5) The DC cut capacitor must be attached to input and output pin. 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 temperatur e (terminal 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 met hods together (except for partial heating). Data Sheet PU10734EJ01V0DS 21 μPC3236TK

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