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ADMV1013ACCZ-R7 数据表(PDF) 31 Page - Analog Devices

部件名 ADMV1013ACCZ-R7
功能描述  Wideband, Microwave Upconverter
PDF  39 Pages
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制造商  AD [Analog Devices]
网页  http://www.analog.com
标志 AD - Analog Devices

ADMV1013ACCZ-R7 数据表(HTML) 31 Page - Analog Devices

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Data Sheet
ADMV1013
Rev. A | Page 31 of 39
PERFORMANCE ACROSS COMMON-MODE
VOLTAGE IN I/Q MODE
Figure 96, Figure 97, and Figure 98 show the performance at
various common-mode voltages in I/Q mode. For each
common-mode voltage, the mixer gate voltage was changed
based on the equation described in the Baseband Quadrature
Modulation (I/Q Mode) section.
0
5
10
15
20
25
30
23
25
27
29
31
33
35
37
39
41
43
45
RF FREQUENCY (GHz)
0V
0.4V
1.0V
1.2V
1.4V
1.8V
2.0V
2.4V
2.6V
Figure 96. Conversion Gain vs. RF Frequency at Multiple Common-Mode
Voltages in I/Q Mode (fBB = 100 MHz, LO = 0 dBm, TA = 25°C)
0
2
4
6
8
10
12
14
16
18
20
22
24
26
28
23
25
27
29
31
33
35
37
39
41
43
45
RF FREQUENCY (GHz)
0V
0.4V
1.0V
1.2V
1.4V
1.8V
2.0V
2.4V
2.6V
Figure 97. Output IP3 vs. RF Frequency at Multiple Common-Mode Voltages
in I/Q Mode (fBB = 100 MHz, LO = 0 dBm, TA = 25°C)
23
25
27
29
31
33
35
37
39
41
43
45
RF FREQUENCY (GHz)
0
2
4
6
8
10
12
14
16
18
20
0V
0.2V
0.4V
0.6V
0.8V
1.0V
1.2V
1.4V
1.6V
1.8V
2.0V
2.2V
2.4V
2.6V
Figure 98. Output P1dB vs. RF Frequency at Multiple Common-Mode
Voltages in I/Q Mode (fBB = 100 MHz, LO = 0 dBm, TA = 25°C)
OPERATING VCTRL1 AND VCTRL2 INDEPENDENTLY
The data shown in the Specifications section and the Typical
Performance Characteristics section is based on the VCTRL1
and VCTRL2 voltages being equal. Finer gain regulation can be
obtained if VCTRL1 and VCTRL2 are used separately. Operating
VCTRL1 and VCTRL2 also allows either maintaining IP3 or
noise figure performance while attenuating the RF output.
Figure 99, Figure 102, and Figure 105 show the conversion gain,
input IP3, and noise figure vs. the RF frequency, respectively (IF =
2 GHz, upper sideband, LO = 0 dBm at TA = 25°C), when
VCTRL1 is equal to VCTRL2.
Figure 100, Figure 103, and Figure 106 show the conversion
gain, input IP3, and noise figure vs. the RF frequency, respectively
(IF = 2 GHz, upper sideband, LO = 0 dBm at TA = 25°C), when
VCTRL2 is held at a minimum attenuation and VCTRL1 is
changed.
Figure 101, Figure 104, and Figure 107 show the conversion
gain, input IP3, and noise figure vs. the RF frequency, respectively
(IF = 2 GHz, upper sideband, LO = 0 dBm at TA = 25°C), when
VCTRL1 is held at minimum attenuation and VCTRL2
is changed.
–40
–50
–60
–30
–20
–10
0
10
20
30
VCTRL1 = 0V, VCTRL2 = 0V
VCTRL1 = 0.1V, VCTRL2 = 0.1V
VCTRL1 = 0.2V, VCTRL2 = 0.2V
VCTRL1 = 0.3V, VCTRL2 = 0.3V
VCTRL1 = 0.4V, VCTRL2 = 0.4V
VCTRL1 = 0.5V, VCTRL2 = 0.5V
VCTRL1 = 0.6V, VCTRL2 = 0.6V
VCTRL1 = 0.7V, VCTRL2 = 0.7V
VCTRL1 = 0.8V, VCTRL2 = 0.8V
VCTRL1 = 0.9V, VCTRL2 = 0.9V
VCTRL1 = 1.0V, VCTRL2 = 1.0V
VCTRL1 = 1.1V, VCTRL2 = 1.1V
VCTRL1 = 1.2V, VCTRL2 = 1.2V
VCTRL1 = 1.3V, VCTRL2 = 1.3V
VCTRL1 = 1.4V, VCTRL2 = 1.4V
VCTRL1 = 1.5V, VCTRL2 = 1.5V
VCTRL1 = 1.6V, VCTRL2 = 1.6V
VCTRL1 = 1.7V, VCTRL2 = 1.7V
VCTRL1 = 1.8V, VCTRL2 = 1.8V
23
25
27
29
31
33
35
37
39
41
43
45
RF FREQUENCY (GHz)
Figure 99. Conversion Gain vs. RF Frequency at Various VCTRL Voltages
(VCTRL1 = VCTRL2), IF Mode, IF Frequency = 2 GHz, Upper Sideband
–40
–30
–20
–10
0
10
20
30
23
25
27
29
31
33
35
37
39
41
43
45
RF FREQUENCY (GHz)
VCTRL1 = 0V
VCTRL1 = 0.1V
VCTRL1 = 0.2V
VCTRL1 = 0.3V
VCTRL1 = 0.4V
VCTRL1 = 0.5V
VCTRL1 = 0.6V
VCTRL1 = 0.7V
VCTRL1 = 0.8V
VCTRL1 = 0.9V
VCTRL1 = 1.0V
VCTRL1 = 1.1V
VCTRL1 = 1.2V
VCTRL1 = 1.3V
VCTRL1 = 1.4V
VCTRL1 = 1.5V
VCTRL1 = 1.6V
VCTRL1 = 1.7V
VCTRL1 = 1.8V
Figure 100. Conversion Gain vs. RF Frequency at Various VCTRL1 Voltages
(VCTRL2 = 1.8 V), IF Mode, IF Frequency = 2 GHz, Upper Sideband



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