AD623ARZ Analog Devices Inc, AD623ARZ Datasheet - Page 16

IC AMP INST R-R LP 8SOIC

AD623ARZ

Manufacturer Part Number
AD623ARZ
Description
IC AMP INST R-R LP 8SOIC
Manufacturer
Analog Devices Inc
Type
Low Powerr
Datasheets

Specifications of AD623ARZ

Slew Rate
0.3 V/µs
Amplifier Type
Instrumentation
Number Of Circuits
1
Output Type
Rail-to-Rail
-3db Bandwidth
800kHz
Current - Input Bias
17nA
Voltage - Input Offset
25µV
Current - Supply
375µA
Voltage - Supply, Single/dual (±)
2.7 V ~ 12 V, ± 2.5 V ~ 6 V
Operating Temperature
-40°C ~ 85°C
Mounting Type
Surface Mount
Package / Case
8-SOIC (3.9mm Width)
No. Of Amplifiers
1
Input Offset Voltage
200µV
Gain Db Min
1dB
Gain Db Max
1000dB
Bandwidth
800kHz
Amplifier Output
Single Ended
Cmrr
110dB
Supply Voltage Range
2.7V To
Common Mode Rejection Ratio
110
Current, Input Bias
17 nA
Current, Input Offset
0.25 nA
Current, Supply
550 μA
Impedance, Thermal
155 °C/W
Package Type
SOIC-N
Power Dissipation
650 mW
Temperature, Operating, Range
-40 to +85 °C
Voltage, Gain
1-1000 V/V
Voltage, Input
-4.85 to +3.5 V
Voltage, Input Offset
25 μV
Voltage, Noise
35 nV/sqrt Hz (Input), 50 nV/sqrt Hz (Output)
Voltage, Output Swing
0.01 to 4.5 V
Voltage, Supply
2.7 to 12 V
Rohs Compliant
Yes
Number Of Channels
1
Number Of Elements
1
Power Supply Requirement
Single/Dual
Input Resistance
2000@5VMohm
Input Bias Current
0.025@5VnA
Single Supply Voltage (typ)
3/5/9V
Dual Supply Voltage (typ)
±3/±5V
Power Supply Rejection Ratio
80dB
Rail/rail I/o Type
Rail to Rail Output
Single Supply Voltage (min)
2.7V
Single Supply Voltage (max)
12V
Dual Supply Voltage (min)
±2.5V
Dual Supply Voltage (max)
±6V
Operating Temp Range
-40C to 85C
Operating Temperature Classification
Industrial
Mounting
Surface Mount
Pin Count
8
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
Current - Output / Channel
-
Gain Bandwidth Product
-
Lead Free Status / Rohs Status
RoHS Compliant part Electrostatic Device

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AD623
APPLICATIONS INFORMATION
BASIC CONNECTION
Figure 42 and Figure 43 show the basic connection circuits for
the AD623. The +V
power supply. The supply can be either bipolar (V
±6 V) or single supply (−V
supplies should be capacitively decoupled close to the power pins of
the device. For the best results, use surface-mount 0.1 μF ceramic
chip capacitors and 10 μF electrolytic tantalum capacitors.
Table 5. Required Values of Gain Resistors
Desired Gain
2
5
10
20
33
40
50
65
100
200
500
1000
Figure 43. Single-Supply Basic Connection
V
V
Figure 42. Dual-Supply Basic Connection
IN
IN
R
R
S
0.1µF
0.1µF
0.1µF
G
G
and −V
R
R
R
R
+V
–V
+V
G
G
G
G
S
OUTPUT
OUTPUT
S
= 0 V, +V
S
REF
S
REF
S
+2.5V TO +6V
–2.5V TO –6V
+3V TO +12V
terminals are connected to the
10µF
10µF
10µF
S
= 3.0 V to 12 V). Power
V
REF (INPUT)
V
REF (INPUT)
OUT
OUT
1% Standard Table Value of R
100 k
24.9 k
11 k
5.23 k
3.09 k
2.55 k
2.05 k
1.58 k
1.02 k
499
200
100
S
= ±2.5 V to
Rev. D | Page 16 of 24
The input voltage, which can be either single-ended (tie either
−IN or +IN to ground), or differential is amplified by the
programmed gain. The output signal appears as the voltage
difference between the OUTPUT pin and the externally applied
voltage on the REF input. For a ground-referenced output, REF
should be grounded.
GAIN SELECTION
The gain of the AD623 is resistor programmed by R
precisely, by whatever impedance appears between Pin 1 and
Pin 8. The AD623 is designed to offer accurate gains using 0.1%
to 1% tolerance resistors. Table 5 shows the required values of
R
are unconnected (R
calculated by
REFERENCE TERMINAL
The reference terminal potential defines the zero output voltage
and is especially useful when the load does not share a precise
ground with the rest of the system. It provides a direct means of
injecting a precise offset to the output. The reference terminal is
also useful when bipolar signals are being amplified because it
can be used to provide a virtual ground voltage. The voltage on
the reference terminal can be varied from −V
G
for the various gains. Note that for G = 1, the R
G
R
(Ω)
G
= 100 kΩ/( G − 1)
G
Calculated Gain Using 1% Resistors
2
5.02
10.09
20.12
33.36
40.21
49.78
64.29
99.04
201.4
501
1001
= ∞). For any arbitrary gain, R
S
to +V
G
terminals
G
G
S
, or more
.
can be

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