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ADPD2210ACPZ-R7 Fiches technique(PDF) 14 Page - Analog Devices

No de pièce ADPD2210ACPZ-R7
Description  Ultralow noise, low power current amplifier
PDF  16 Pages
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Fabricant  AD [Analog Devices]
Site Internet  http://www.analog.com
Logo AD - Analog Devices

ADPD2210ACPZ-R7 Fiches technique(HTML) 14 Page - Analog Devices

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Data Sheet
ADPD2210
Rev. A | Page 13 of 15
3-WIRE VOLTAGE CONFIGURATION
The ADPD2210 can be used in a minimal 3-wire voltage
configuration, offering a compact solution with very few
components (see Figure 25). A shunt resistor (RS) sets the
transimpedance gain in front of the analog-to-digital converter
(ADC). This configuration allows flexibility in matching the
ADC converter full-scale input to the full-scale output of the
ADPD2210. The dynamic range of the interface is limited to
the compliance voltage of the ADPD2210.
No additional amplification is needed prior to the ADC. Response
time at the lower end of the range is limited by the ability of the
output current to charge the parasitic capacitance presented to
the output of the ADPD2210.
3-WIRE CURRENT MODE CONFIGURATION
When used in the 3-wire current mode configuration with a
photodiode (see Figure 25), the ADPD2210 is insensitive to load
resistance and can be used when the signal processing is further
from the sensor. EMI noise and shielding requirements are
minimized; however, cable capacitance has a direct effect on
bandwidth, making the 3-wire current mode configuration a
better choice for unshielded interfaces. The CF value must be
chosen carefully to eliminate stability and bandwidth degrada-
tion of the ADPD2210. Large capacitance around the feedback
loop of the TIA has a direct effect on the bandwidth of the system.
Figure 25. ADPD2210 Used in 3-Wire Short Cable Voltage Mode Configuration with a Shunt Resistor
Figure 26. ADPD2210 Used in 3-Wire Current Mode Configuration with a TIA
ADPD2210
CURRENT
AMPLIFIER
REF
IN
ADC AND
MICROPROCESSOR
3.3V
3.3V
RS
GND
OUT
VCC
VCC
OUT
GND
3.3V
CF
RF
TIA
3.3V
ADPD2210
CURRENT
AMPLIFIER
REF
IN
ADC AND
MICROPROCESSOR
0V TO VCC –0.75



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