MGA-16216 AVAGO | Alldatasheet
Document overview
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- PDF pages: 17
Technical content
Features
- Ultra Low Noise Figure
- Variable Bias and Shutdown functionality
- High IIP3: +17 dBm typ.
- GaAs E-pHEMT Technology [1]
- Small package size: 4.0 x 4.0 x 0.85 mm3
- RoHS and MSL1 compliant. Typical Performances 1950 MHz @ 4.8 V, 52.5 mA (typ per amplifier)
- Gain: 18.4 dB
- NF: 0.32 dB [2]
- IIP3: 17.1 dBm
- P1dB: 19.5 dBm
- Shutdown voltage Vsd range > 1.5 V
- Total shutdown current (Vsd1, Vsd2 = 3 V): 4.8 mA
Applications
- Basestation Transmitter and Receivers requiring balanced configuration
- Ultra low-noise RF amplifiers. Notes: 1. Enhancement mode technology employs positive Vgs, thereby eliminating the need of negative gate voltage associated with conventional depletion mode devices. 2. Measured at RFin pin of packaged part, other losses deembedded. 3. Good RF practice requires all unused pins to be grounded. Note: Package marking provides orientation and identification “16216 “ = Device Code “YYWW” = Date Code identifies year and work week of manufacturing “XXXX” = Last 4 digit of assembly lot number Pin 1 Pin 4 Pin 3 Pin 2 Pin 12 Pin 9 Pin 10 Pin 11 Pin 17 Pin 5 Pin 8 Pin 7 Pin 6 Pin 16 Pin 13 Pin 14 Pin 15 VIEW FROM THE TOP Pin Configuration AVAGO 16216 YYWW XXXX
Absolute Maximum Rating [1] TA = 25° C Symbol Parameter Units Absolute Maximum Vdd Drain Voltage, RF output to ground V 5.5 Idd Drain Current mA 100 Vsd Shutdown Voltage V 5.5 Pin CW RF Input Power with LNA On dBm 27 Pin CW RF Input Power with LNA Off dBm 27 Pd Power Dissipation mW 550 Tj Junction Temperature °C 150 Tstg Storage Temperature °C -65 to 150 Thermal Resistance [3] (Vd = 4.8 V, Idd = 52.5 mA, Tc =100° C) qjc = 43.1°C/W Notes: 1. Operation of this device is excess of any of these limits may cause permanent damage. 2. Source lead temperature is 25° C. Derate 23 mW/°C for Tc > 126° C. 3. Thermal resistance measured using 150° C Infra-Red Microscopy Technique. Electrical Specifications TA = 25° C, Vdd1 = Vdd2 = 4.8 V, Vsd1 = Vsd2 = 0 V at Rbias = 1 Kohm, RF performance at 1950 MHz, CW operation unless otherwise stated. Symbol Parameter and Test Condition Units Min. Typ. Max. Vdd Supply Voltage V 4.8 Idd Total Supply Current per amplifier (Idq+Ibias) mA 44 52.5 65 Gain Gain dB 17.2 18.4 19.4 NF [1] Noise Figure dB 0.32 0.55 OP1dB Output Power at 1dB Gain Compression dBm 19.5 IIP3 [2] Input Third Order Intercept Point dBm 14 17.1 S11 Input Return Loss, 50 Ω source dB -9.0 S22 Output Return Loss, 50 Ω load dB -4.4 S12 Reverse Isolation dB -30 S31 Isolation between RFin1 and RFin2 dB -41.6 Vsd1,2 [3] Maximum Shutdown voltage required to turn ON LNA V 0.5 Vsd1,2 [3] Minimum Shutdown voltage required to turn OFF LNA V 2.0 Idq [4] Current at Vdd with Vsd = 0 V mA 48.5 Current at Vdd with Vsd = 3 V mA 0.378 Isd [4] Current at Vsd with Vsd = 0 V mA 4 Current at Vsd with Vsd = 3 V mA 0.176 Ibias [4] Current at Vbias with Vsd = 0 V mA 3.0 Current at Vbias with Vsd = 3 V mA 4.542 Notes: 1. Noise figure at the DUT RF Input pin, board losses are deembedded. 2. IIP3 test condition: FRF1-FRF2 = 1 MHz with input power of -20 dBm per tone. 3. Vsd1 and Vsd2 are active LOW. 4. Refer to Figure 6 for more details.
Table 2. Below is the table showing the MGA-16216 Reflection Coefficient Parameters tuned for Maximum OIP3. Vdd = 4.8 V, Idd = 35 mA per amplifier. Input gamma is tuned for Fmin. The reflection coefficients are for single amplifier. Table 3. Below is the table showing the MGA-16216 Reflection Coefficient Parameters tuned for Maximum OIP3. Vdd = 4.8 V, Idd = 55 mA per amplifier. Input gamma is tuned for Fmin. The reflection coefficients are for single amplifier. Table 4. Below is the table showing the MGA-16216 Reflection Coefficient Parameters tuned for Maximum OIP3. Vdd = 4.8 V, Idd = 75 mA per amplifier. Input gamma is tuned for Fmin. The reflection coefficients are for single amplifier.
- IIP3 test condition: FRF1-FRF2 = 1 MHz with input power of -20 dBm per tone.
- Idd can be obtained by varying the Vg1/Vg2. Refer to figure 7.
Figure 7. RFinput and RFoutput Reference Plane
- Maximum OIP3 is measured on coplanar waveguide made on 0.010 inch thick ROGER 4350.
Table 5. Typical Scattering Parameters, Vdd = 4.8 V, Idd = 35 mA LNA SPAR (100 MHz – 20 GHz). The S-parameter is for single amplifier. Table 6. Typical Noise Parameters for single amplifier, Vdd = 4.8 V, Idd = 35 mA
- The Fmin values are based on noise figure measurements at multiple input impedances using Focus source pull test system. From these
measurements a true Fmin is calculated.
- Scattering and noise parameters are measured on coplanar waveguide made on 0.010 inch thick ROGER 4350. The input reference plane is at the
end of the RFinput pin and the output reference plane is at the end of the RFoutput pin as shown in Figure 7.
- Idd can be obtained by varying the Vg1/Vg2. Refer to figure 7.
Table 7. Typical Scattering Parameters, Vdd = 4.8 V, Idd = 55 mA LNA SPAR (100 MHz – 20 GHz). The S-parameter is for single amplifier. Table 8. Typical Noise Parameters for single amplifier, Vdd = 4.8 V, Idd = 55 mA
- The Fmin values are based on noise figure measurements at multiple input impedances using Focus source pull test system. From these
measurements a true Fmin is calculated.
- Scattering and noise parameters are measured on coplanar waveguide made on 0.010 inch thick ROGER 4350. The input reference plane is at the
end of the RFinput pin and the output reference plane is at the end of the RFoutput pin as shown in Figure 7.
- Idd can be obtained by varying the Vg1/Vg2. Refer to figure 7.
Table 9. Typical Scattering Parameters, Vdd = 4.8 V, Idd = 75 mA LNA SPAR (100 MHz – 20 GHz). The S-parameter is for single amplifier. Table 10. Typical Noise Parameters for single amplifier, Vdd = 4.8 V, Idd = 75 mA
- The Fmin values are based on noise figure measurements at multiple input impedances using Focus source pull test system. From
these measurements a true Fmin is calculated.
- Scattering and noise parameters are measured on coplanar waveguide made on 0.010 inch thick ROGER 4350. The input reference
plane is at the end of the RFinput pin and the output reference plane is at the end of the RFoutput pin as shown in Figure 7.
- Idd can be obtained by varying the Vg1/Vg2. Refer to figure 7.
Figure 18. Balanced Amplifier Demo Board Layout Diagram
- Recommended PCB material is 10 mils Rogers RO4350.
- Suggested component values may vary according to layout and PCB material.
- Input board loss at 1950 MHz is 0.18 dB.
Symbol Parameter and Test Condition Units Typ.
Figure 19. Balanced Amplifier Demo Board Schematic Table 11. Component list for 1950 MHz Balanced Amplifier Matching
Recommended PCB Land Pattern and Stencil Design Device Orientation USER FEED DIRECTION TOP VIEW END VIEW USER FEED DIRECTION COVER TAPE CARRIER TAPE REEL AVAGO 16216 YYWW XXXX AVAGO 16216 YYWW XXXX AVAGO 16216 YYWW XXXX Note : 1. ALL DIMENSIONS ARE IN MILIMETERS 2. 4mil stencil thickness is recommended Land Pattern Stencil Opening Combination of Land Pattern & Stencil Opening 1.980 1.980 0.270 0.650 0.485 0.492 2.10 PIN #1 0.55 2.10 0.300 0.650 0.400 PIN #1 4.000 4.000 3.935 3.935 4.000 4.000 2.100 0.650 0.550
10° MAX 10° MAX 5.50 ±0.05 1.75 ±0.10 12.0 ±0.30 –0.10 Ø1.50 ±0.25 2.00 ±0.05 4.00 ±0.10 A. K. B. 0.279 ±0.02
For product information and a complete list of distributors, please go to our web site: www.avagotech.com Avago, Avago Technologies, and the A logo are trademarks of Avago Technologies in the United States and other countries. Data subject to change. Copyright © 2005-2012 Avago Technologies. All rights reserved. AV02-3722EN - October 31, 2012 Reel Dimensions – 7 inch PS6 PS BACK VIEW Ø 178.0 ±0.5 Ø 55.0 ±0.5 6.25 mm EMBOSSED LETTERS LETTERING THICKNESS: 1.6 mm SEE DETAIL "X" SLOT HOLE "b" SLOT HOLE (2x) 180° APART. SLOT HOLE "a": 3.0 ±0.5 mm (1x) SLOT HOLE "b": 2.5 ±0.5 mm (1x) Ø 13.065° 45° R10.65 45° R5.2 EMBOSSED RIBS RAISED: 0.25 mm, WIDTH: 1.25 mm 18.0* MAX. Ø 51.2 ±0.3 Ø 178.0 ±0.5 RECYCLE LOGO FRONT VIEW 120° 1.5 MIN. Ø 20.2 MIN. -0.2 +0.5 DETAIL "X" -0.0 +1.5*12.4 DETAIL "Y" (Slot Hole) 3.5 1.0 SEE DETAIL "Y" FRONT BACK FRONT BACK SLOT HOLE "a" Ø 178.0 ±0.5