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PDF AMMP-6120 Data sheet ( Hoja de datos )

Número de pieza AMMP-6120
Descripción 8-24 GHz x2 Frequency Multiplier
Fabricantes AVAGO 
Logotipo AVAGO Logotipo



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AMMP-6120
8-24 GHz x2 Frequency Multiplier
Data Sheet
Description
Avago Technologies’ AMMP-6120 is an easy-to-use in-
tegrated frequency multiplier (x2) in a surface mount
package designed for commercial communication
systems. The MMIC takes a 4 to 12 GHz input signal and
doubles it to 8 to 24 GHz. It has integrated amplification,
matching, harmonic suppression, and bias networks. The
input/output are matched to 50 and fully DC blocked.
The MMIC is fabricated using PHEMT technology.
The backside of the package is both RF and DC ground.
This helps simplify the assembly process and reduces
assembly related performance variations and costs. The
surface mount package allows elimination of “chip &
wire” assembly for lower cost. This MMIC is a cost effective
alternative to hybrid (discrete-FET), passive, and diode
doublers that require complex tuning and assembly
processes.
Package Diagram
NC Vdd NC
1 23
Features
5x5mm Surface Mount Package
Frequency Range : 8-24 GHz output
(Useable to 26 GHz)
Broad input power range: -11 to +5 dBm
Output Power : +16 to +18 dBm
Harmonic Suppression : 20 dBc (Fundamental)
DC requirements : -1.4V and 5V, 112 mA @ Pin=
+3dBm
Applications
Microwave Radio systems
Satellite VSAT and DBS systems
802.16 & 802.20 WiMax BWA systems
WLL and MMDS loops
Functional Block Diagram
Vd Vg
12
3
RF IN 8
4 RF OUT
765
NC NC NC
RoHS-Exemption
Please refer to hazardous substances table on page 7.
RFin 8
X2
765
top view
package base: RF and DC GND
4 RFout
Pin Function
1 Vd
2 Vg
3
4 RF Out
5
6
7
8 RF In
Attention: Observe precautions for
handling electrostatic sensitive devices.
ESD Machine Model (Class A) = 40V
ESD Human Body Model (Class 1A) = 250V
Refer to Avago Application Note A004R:
Electrostatic Discharge Damage and Control.
Note: MSL Rating = Level 2A

1 page




AMMP-6120 pdf
20
18
16
14
12
Fout=16GHz
10
8
6
Vg=-1.2V, Vd=4.5V
4 Vg=-1.2V, Vd=5.0V
2
Vg=-1.4V, Vd=4.5V
Vg=-1.4V, Vd=5.0V
0
-11 -9 -7 -5 -3 -1 1 3 5 7
Input Power [1H] (dBm)
Figure 13. 2H Output Power Vs Input Power @ Fout=16GHz
9 11
10
Fout=16GH
15
20
25
Vg=-1.2V, Vd=4.5V
30 Vg=-1.2V, Vd=5.0V
Vg=-1.4V, Vd=4.5V
Vg=-1.4V, Vd=5.0V
35
-11 -9 -7 -5 -3 -1 1 3 5 7 9 11
Input Power [1H] (dBm)
Figure 14. Fundamental Supp. Vs Input Power @ Fout=16GHz
20
18
16
14
12
10
8
Fout=20GHz
6
4
Vg=-1.2V, Vd=4.5V
Vg=-1.2V, Vd=5.0V
2
Vg=-1.4V, Vd=4.5V
Vg=-1.4V, Vd=5.0V
0
-11 -9 -7 -5 -3 -1 1 3 5 7
Input Power [1H] (dBm)
9 11
Figure 15. 2H Output Power Vs Input Power @ Fout=20GHz
5
Fout=20GHz
10
15
20
25
Vg=-1.2V, Vd=4.5V
30
Vg=-1.2V, Vd=5.0V
Vg=-1.4V, Vd=4.5V
Vg=-1.4V, Vd=5.0V
35
-11 -9 -7 -5 -3 -1 1 3 5 7 9 11
Input Power [1H] (dBm)
Figure 16. Fundamental Supp. Vs Input Power @ Fout=20GHz
20
18
16
14
12
10 Fout=22GHz
8
6 Vg=-1.2V, Vd=4.5V
4 Vg=-1.2V, Vd=5.0V
Vg=-1.4V, Vd=4.5V
2 Vg=-1.4V, Vd=5.0V
0
-11 -9 -7 -5 -3 -1 1 3 5 7 9 11
Input Power [1H] (dBm)
Figure 17. 2H Output Power Vs Input Power @ Fout=22GHz
5
Vg=-1.2V, Vd=4.5V
10 Vg=-1.2V, Vd=5.0V
Vg=-1.4V, Vd=4.5V
15 Vg=-1.4V, Vd=5.0V
20
25
Fout=22GHz
30
35
-11 -9 -7 -5 -3 -1 1 3 5 7 9 11
Input Power [1H] (dBm)
Figure 18. Fundamental Supp. Vs Input Power @ Fout=22GHz
5

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