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ADMV1455BBCZ-R7 Folha de dados(PDF) 16 Page - Analog Devices

Nome de Peças ADMV1455BBCZ-R7
Descrição Electrónicos  17.7GHz to 55GHz, Wideband, Microwave Downconverter
PDF  141 Pages
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Fabricante Electrônico  AD [Analog Devices]
Página de início  http://www.analog.com
Logo AD - Analog Devices

ADMV1455BBCZ-R7 Folha de dados(HTML) 16 Page - Analog Devices

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Data Sheet
ADMV1455
PIN CONFIGURATION AND FUNCTION DESCRIPTIONS
analog.com
Rev. 0 | 16 of 141
Table 17. Pin Function Descriptions (Continued)
Pin No.
Mnemonic
Description
B5
DSA_IN
DSA1 RF Input. The DSA_IN ball is DC-coupled and matched to 50Ω. Do not apply an external voltage to
DSA_IN. If required, place a DC-blocking capacitor in series with DSA_IN and ensure that any capacitor
parasitic attributes are acceptable for the operating frequency range. If DSA1 is not used, the DSA_IN can
float.
B7, B8
BB_IN, BB_IP
Differential Baseband I Outputs. The outputs are internally DC-coupled with a 75Ω differential output
impedance, which allows the outputs to interface with either a 50Ω or 100Ω differential load impedance.
The common-mode voltage range is from 0.8V to 1.5V when VDD_BB = 2.5V and from 0.8V to 1.1V when
VDD_BB = 1.8V. When operating in the IF mode, BB_IN and BB_IP can float.
B10
GPO_G2
General-Purpose Digital Output Ball Gain 2. Active high, 1.8V logic. This ball can be left floating. Do not
ground this ball.
B11
GPO_G1
General-Purpose Digital Output Ball Gain 1. Active high, 1.8V logic. This ball can be left floating. Do not
ground this ball.
B12
GPO_G0
General-Purpose Digital Output Ball Gain 0. Active high, 1.8V logic. This ball can be left floating. Do not
ground this ball.
C10
BG_CAL
Band-Gap Reference Calibration. BG_CAL is used for factory and debug purposes. This ball can be left
floating or be tied to a 3.48kΩ, 1%, resistor. Do not ground this ball.
C11
GPO_F5
General-Purpose Digital Output Ball Filter 5. Active high, 1.8V logic. This ball can be left floating. Do not
ground this ball.
C12
GPO_F4
General-Purpose Digital Output Ball Filter 4. Active high, 1.8V logic. This ball can be left floating. Do not
ground this ball.
D2
DSA_OUT
DSA1 RF output pin. This ball is DC-coupled and matched to 50Ω. Do not apply an external voltage to
DSA_OUT. If needed, place a DC-blocking capacitor in series with DSA_OUT, and be sure any capacitor
parasitic attributes are acceptable for the operating frequency range. If DSA1 is not used, the DSA_OUT
can float.
D6, E6
GPO_F3
General-Purpose Digital Output Ball Filter 3. Active high, 1.8V logic. This ball can be left floating. Do not
ground this ball.
D7, D8
ADD_F0
Frequency LUT Address Bit 0. Active high, 1.8V logic. No internal pull-up or pull-down resistance. Tie to
logic output from a microcontroller or field-programmable gate array (FPGA); do not float. If ADDF0 is not
used to set the look-up table address pointer, then please ground this ball.
D9
CHIP_ADD1
Chip Address Bit 1. Active high, 1.8V logic. CHIP_ADD1 is internally pulled high through 15kΩ. This
ball can be dynamically set by logic output from a microcontroller or FPGA. For fixed addressing
implementations, set high by leave this ball floating, and set low by ground this ball. For single chip
implementations, always ground this ball.
D10
GPO_G3
General-Purpose Digital Output Ball Gain 3. Active high, 1.8V logic. This ball can be left floating. Do not
ground this ball.
D11
VDD_BB
Baseband Supply Voltage. For I/Q baseband mode, the nominal voltage is 2.5V, but this voltage can be
set to 1.8V if a lower gain is acceptable. The maximum P1dB performance is obtained by using 2.5V. For
the IF mode, the voltage can be 1.8V or 2.5 V, with no change in performance. Place 0.01μF and 1μF
decoupling capacitors close to VDD_BB.
E4, E5
GPO_F2
General-Purpose Digital Output Ball Filter 2. Active high, 1.8V logic. This ball can be left floating. Do not
ground this ball.
E8, E9
ADD_F1
Frequency LUT Address Bit 1. Active high, 1.8V logic. No internal pull-up or pull-down resistance. Tie to
logic output from a microcontroller or FPGA; do not float. If ADDF1 is not used to set the look-up table
address pointer, then please ground this ball.
F2
RF_IN
RF input. This ball is DC-coupled and matched to 50Ω. Do not apply an external voltage to RF_IN.
If needed, place a DC-blocking capacitor in series with RF_IN, and be sure any capacitor parasitic
attributes are acceptable for the operating frequency range. When using DSA1, connect RF_IN directly to
DSA_OUT.
F7, F8
ADD_F4
Frequency LUT Address Bit 4. Active high, 1.8V logic. No internal pull-up or pull-down resistance. Tie to
logic output from a microcontroller or FPGA; do not float. If ADDF4 is not used to set the look-up table
address pointer, then please ground this ball.
F11
LO
LO input. This ball is DC-coupled and matched to 50Ω. Do not apply an external voltage to LO. If
needed, place a DC-blocking capacitor in series with LO, and be sure any capacitor parasitic attributes are
acceptable for the operating frequency range.



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