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ADL5303ACPZ-R2 数据表(PDF) 15 Page - Analog Devices

部件名 ADL5303ACPZ-R2
功能描述  160 dB Range 100 pA to 10 mA Low Cost Logarithmic Converter
PDF  24 Pages
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制造商  AD [Analog Devices]
网页  http://www.analog.com
标志 AD - Analog Devices

ADL5303ACPZ-R2 数据表(HTML) 15 Page - Analog Devices

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Data Sheet
ADL5303
Rev. 0 | Page 15 of 24
LOW SUPPLY SLOPE AND INTERCEPT
ADJUSTMENT
When using the device with a supply of less than 4 V, it is
necessary to reduce the slope and intercept at the VLOG pin
to preserve good log conformance over the entire 160 dB oper-
ating range. The voltage at the VLOG pin is generated by an
internal current source with an output current of 40 μA/decade
feeding the internal laser trimmed output resistance of 5 kΩ.
When the voltage at the VLOG pin exceeds VP − 2.3 V, the
current source ceases to respond linearly to logarithmic
increases in current. Avoid headroom issues by reducing
the logarithmic slope and intercept at the VLOG pin and by
connecting an external resistor, RS, from the VLOG pin to
ground in combination with an intercept lowering resistor, RZ.
The values shown in Figure 28 illustrate a good solution for a
3.0 V positive supply. The resulting logarithmic slope measured
at VLOG is 62.5 mV/decade with a new intercept of 57 fA. The
original logarithmic slope of 200 mV/decade can be recovered
using voltage gain on the internal buffer amplifier.
CHANGING THE VOLTAGE AT THE SUMMING NODE
The default value of VSUM is determined by using a quarter
of VREF (2 V). This can be altered by applying an independent
voltage source to VSUM, or by adding an external resistive
divider from VREF to VSUM. This network operates in parallel
with the internal divider (40 kΩ and 13.3 kΩ), and the choice
of external resistors should take this into account. In practice,
the total resistance of the added string may be as low as 10 kΩ
(consuming 400 μA from VREF). Low values of VSUM and
thus VCE are not advised when large values of IPD are expected.
NC
VOUT
500mV/DEC
R18 (RB)
C7 (RS)
2.67k
R14 (RZ)
15.4kΩ
R15 (RA)
4.98k
2.26k
NC = NO CONNECT
VP
100nF
R1
750
C1
1nF
IPD
C3
PDB
BIAS
VREF
VPDB
VSUM
INPT
VSUM
ACOM
VPS2
PWDN
VPS1
VREF
VLOG
BFIN
BFNG
VOUT
0.5V
ADL5303
~10k
5kΩ
5
2
3
4
15
14
GND
GND
7
11
10
16
12
6
8
9
13
TEMPERATURE
COMPENSATION
Figure 28. Recommended Low Supply Application Circuit



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