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ADPD2210ACPZ-R7 データシート(PDF) 12 Page - Analog Devices

部品番号 ADPD2210ACPZ-R7
部品情報  Ultralow noise, low power current amplifier
PDF  16 Pages
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メーカー  AD [Analog Devices]
ホームページ  http://www.analog.com
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ADPD2210ACPZ-R7 データシート(HTML) 12 Page - Analog Devices

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Data Sheet
ADPD2210
Rev. A | Page 11 of 15
THEORY OF OPERATION
OVERVIEW
The ADPD2210 is an ultralow noise current amplifier optimized
for wearable photoplethysmography applications and featuring
very low power consumption. Essentially a current mirror with
gain, the ADPD2210 is designed to make sensor signal currents
appear 24 times larger while adding minimal noise. A laser
trimmed linearity of greater than 60 dB allows the extraction of
very small time variant signals with large dc or low frequency
components. This noise and linearity performance allows small
photodiodes to achieve performance comparable to much larger
diodes.
RECOMMENDED CONFIGURATION
In the recommended configuration, a photodiode is connected
across the REF and IN pins of the ADPD2210. The REF pin is
driven by a servo loop to stay within typically ±5 mV of the
IN pin, regardless of current generated by the optical power
incident on the photodiode junction. The current occurring at
the anode of the photodiode is sourced to the IN pin and drives
the first stage of the precision current mirror. A 10 nA static
bias is applied to the current mirror to linearize its transfer
curve at low currents and prevent the output from attempting to
go below 0 V due to unavoidable offsets.
Figure 24 shows a simplified pulse oximeter design using the
ADPD2210.
SENSITIVITY AND SNR
SNR is a measure of the ability of the sensor to separate the
signal of interest from spurious signals that occur from the
surrounding environment of the device, such as ambient light,
electromagnetic interferers, and circuit noise.
Typically, system SNR is improved by using a photodiode with
large surface area because signal increases linearly with area
while noise increases as a root sum of the square of the area.
Capacitance of the photodiode increases with area and carrier
transit time, reducing sensor bandwidth. Bandwidth can be
increased by applying a bias voltage across the diode, but this
increases dark current and, therefore, noise.
Operating at near zero-bias voltage in photoconductive mode,
the photodiode generates virtually no dark current component
except for that caused by the offset of the servo loop across the
shunt resistance of the diode and the thermal noise component
in the depletion region of the photodiode. This sets the fundamen-
tal limit of the signal resolution to the shot noise of the 10 nA
internal bias, 80 fA/√Hz relative to the input, which appears at
the output of the current amplifier and establishes the noise
floor of the ADPD2210.
PULSE MODE OPERATION
The ADPD2210 is optimized for battery-powered operation by
the inclusion of a power down pin (PWDN). When sensing is
inactive, the ADPD2210 can be quickly switched into standby
mode, reducing supply current to ~100 nA during dark periods
for pulsed or mode locked applications where the light source is
cycled to improve ambient light rejection and reduce transmit-
ter power consumption.
For multiple wavelength systems, sequentially pulsing the optical
emitters removes the need for multiple narrow bandwidth sensors.
For both multiple wavelength (SpO2) and single wavelength
(HRM) systems, pulsed operation can provide significant power
savings for battery-powered systems. Pulsed mode operation
provides a calibration signal that is necessary to compensate for
ambient light diffused throughout the tissue, which can be
extracted by measuring the sensor output while the system
emitters are off. Advanced algorithms can then extract the
signal of interest from dc offsets, noise, and interferer signals
such as motion artifacts.
Figure 24. Simplified Pulse Oximeter Design
REF
IN
PWDN
10nA
POWER-DOWN
LOGIC
24 × CURRENT MIRROR
OUT
TIA
ADC
RF
MICROCONTROLLER
LED DRIVER
DISPLAY
BIAS
PHOTODIODE
900nm
660nm
ASIC
ADPD2210
V
GND
VCC
GND



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