EEWORLDEEWORLDEEWORLD

Part Number

Search

AD8223ARMZ-RL

Description
Single-Supply, Low Cost Instrumentation Amplifier
CategoryAnalog mixed-signal IC    Amplifier circuit   
File Size398KB,21 Pages
ManufacturerADI
Websitehttps://www.analog.com
Environmental Compliance
Download Datasheet Parametric View All

AD8223ARMZ-RL Online Shopping

Suppliers Part Number Price MOQ In stock  
AD8223ARMZ-RL - - View Buy Now

AD8223ARMZ-RL Overview

Single-Supply, Low Cost Instrumentation Amplifier

AD8223ARMZ-RL Parametric

Parameter NameAttribute value
Brand NameAnalog Devices Inc
Is it lead-free?Contains lead
Is it Rohs certified?conform to
MakerADI
Parts packaging codeTSSOP
package instructionMSOP-8
Contacts8
Manufacturer packaging codeRM-8
Reach Compliance Codecompliant
ECCN codeEAR99
Amplifier typeINSTRUMENTATION AMPLIFIER
Maximum average bias current (IIB)0.025 µA
Nominal bandwidth (3dB)0.2 MHz
Minimum Common Mode Rejection Ratio74 dB
Maximum input offset current (IIO)0.002 µA
Maximum input offset voltage400 µV
JESD-30 codeS-PDSO-G8
JESD-609 codee3
length3 mm
Humidity sensitivity level1
Negative supply voltage upper limit-12.5 V
Nominal Negative Supply Voltage (Vsup)-12 V
Number of functions1
Number of terminals8
Maximum operating temperature85 °C
Minimum operating temperature-40 °C
Package body materialPLASTIC/EPOXY
encapsulated codeTSSOP
Encapsulate equivalent codeTSSOP8,.19
Package shapeSQUARE
Package formSMALL OUTLINE, THIN PROFILE, SHRINK PITCH
Peak Reflow Temperature (Celsius)260
power supply5,+-12 V
Certification statusNot Qualified
Maximum seat height1.1 mm
Nominal slew rate0.3 V/us
Maximum slew rate0.85 mA
Supply voltage upper limit12.5 V
Nominal supply voltage (Vsup)12 V
surface mountYES
technologyBIPOLAR
Temperature levelINDUSTRIAL
Terminal surfaceMatte Tin (Sn)
Terminal formGULL WING
Terminal pitch0.65 mm
Terminal locationDUAL
Maximum time at peak reflow temperature30
Maximum voltage gain1000
Minimum voltage gain5
Nominal voltage gain10
width3 mm

AD8223ARMZ-RL Preview

Single-Supply, Low Cost
Instrumentation Amplifier
AD8223
FEATURES
Gain set with 1 resistor
Gain = 5 to 1000
Inputs
Voltage range to 150 mV below negative rail
25 nA maximum input bias current
30 nV/√Hz, RTI noise @ 1 kHz
Power supplies
Dual supply: ±2 V to ±12 V
Single supply: 3 V to 24 V
500 μA maximum supply current
CONNECTION DIAGRAM
–R
G
–IN
+IN
–V
S
1
2
3
4
8
+R
G
+V
S
OUT
REF
06925-001
+
AD8223
7
6
5
Figure 1. 8-Lead SOIC (R) and 8-Lead MSOP (RM) Packages
Table 1. Instrumentation Amplifiers by Category
General-
Purpose
AD8220
1
AD8221
AD8222
AD8224
1
AD8228
1
APPLICATIONS
Low power medical instrumentation
Transducer interface
Thermocouple amplifiers
Industrial process controls
Difference amplifiers
Low power data acquisition
Zero Drift
AD8231
1
AD8553
1
AD8555
1
AD8556
1
AD8557
1
Mil
Grade
AD620
AD621
AD524
AD526
AD624
Low
Power
AD627
1
AD623
1
AD8223
High Voltage
PGA
AD8250
AD8251
AD8253
Rail-to-rail output.
GENERAL DESCRIPTION
The AD8223 is an integrated single-supply instrumentation
amplifier that delivers rail-to-rail output swing on a single
supply (3 V to 24 V). The AD8223 conforms to the 8-lead
industry standard pinout configuration.
The AD8223 is simple to use: one resistor sets the gain. With no
external resistor, the AD8223 is configured for G = 5. With an
external resistor, the AD8223 can be programmed for gains up
to 1000.
The AD8223 has a wide input common-mode range and can
amplify signals that have a 150 mV common-mode voltage
below ground. Although the design of the AD8223 is optimized
to operate from a single supply, the AD8223 still provides
excellent performance when operated from a dual voltage
supply (±2 V to ±12 V).
Low power consumption (1.5 mW at 3 V), wide supply voltage
range, and rail-to-rail output swing make the AD8223 ideal for
battery-powered applications. The rail-to-rail output stage
maximizes the dynamic range when operating from low supply
voltages. The AD8223 replaces discrete instrumentation
amplifier designs and offers superior linearity, temperature
stability, and reliability in a minimum of space.
Rev. 0
Information furnished by Analog Devices is believed to be accurate and reliable. However, no
responsibility is assumed by Analog Devices for its use, nor for any infringements of patents or other
rights of third parties that may result from its use. Specifications subject to change without notice. No
license is granted by implication or otherwise under any patent or patent rights of Analog Devices.
Trademarks and registered trademarks are the property of their respective owners.
One Technology Way, P.O. Box 9106, Norwood, MA 02062-9106, U.S.A.
Tel: 781.329.4700
www.analog.com
Fax: 781.461.3113
©2008 Analog Devices, Inc. All rights reserved.
AD8223* PRODUCT PAGE QUICK LINKS
Last Content Update: 02/23/2017
COMPARABLE PARTS
View a parametric search of comparable parts.
REFERENCE MATERIALS
Technical Articles
High-performance Adder Uses Instrumentation Amplifiers
EVALUATION KITS
AD62x, AD822x, AD842x Series InAmp Evaluation Board
DESIGN RESOURCES
AD8223 Material Declaration
PCN-PDN Information
Quality And Reliability
Symbols and Footprints
DOCUMENTATION
Application Notes
AN-1401: Instrumentation Amplifier Common-Mode
Range: The Diamond Plot
Data Sheet
AD8223: Single Supply, Rail-to-Rail, Low Cost
Instrumentation Amplifier Data Sheet
Technical Books
A Designer's Guide to Instrumentation Amplifiers, 3rd
Edition, 2006
User Guides
UG-261: Evaluation Boards for the AD62x, AD822x and
AD842x Series
DISCUSSIONS
View all AD8223 EngineerZone Discussions.
SAMPLE AND BUY
Visit the product page to see pricing options.
TECHNICAL SUPPORT
Submit a technical question or find your regional support
number.
DOCUMENT FEEDBACK
Submit feedback for this data sheet.
This page is dynamically generated by Analog Devices, Inc., and inserted into this data sheet. A dynamic change to the content on this page will not
trigger a change to either the revision number or the content of the product data sheet. This dynamic page may be frequently modified.
AD8223
TABLE OF CONTENTS
Features .............................................................................................. 1
 
Applications ....................................................................................... 1
 
Connection Diagram ....................................................................... 1
 
General Description ......................................................................... 1
 
Revision History ............................................................................... 2
 
Specifications..................................................................................... 3
 
Single Supply ................................................................................. 3
 
Dual Supply ................................................................................... 5
 
Absolute Maximum Ratings............................................................ 7
 
Thermal Resistance ...................................................................... 7
 
ESD Caution .................................................................................. 7
 
Pin Configuration and Function Descriptions ............................. 8
 
Typical Performance Characteristics ............................................. 9
 
Theory of Operation ...................................................................... 14
 
Amplifier Architecture .............................................................. 14
 
Gain Selection ............................................................................. 14
 
Input Voltage Range ................................................................... 14
 
Reference Terminal .................................................................... 15
 
Input Protection ......................................................................... 15
 
RF Interference (RFI)................................................................. 15
 
Ground Returns for Input Bias Currents ................................ 16
 
Applications Information .............................................................. 17
 
Basic Connection ....................................................................... 17
 
Differential Output .................................................................... 17
 
Output Buffering ........................................................................ 17
 
Cables ........................................................................................... 17
 
A Single-Supply Data Acquisition System .............................. 18
 
Amplifying Signals with Low Common-Mode Voltage ........ 18
 
Outline Dimensions ....................................................................... 19
 
Ordering Guide .......................................................................... 20
 
REVISION HISTORY
10/08—Revision 0: Initial Version
Rev. 0 | Page 2 of 20
AD8223
SPECIFICATIONS
SINGLE SUPPLY
T
A
= 25°C, −V
S
= 0 V, +V
S
= +5 V, and R
L
= 10 kΩ to 2.5 V, unless otherwise noted.
Table 2
Parameter
COMMON-MODE REJECTION RATIO
DC to 60 Hz with 1 kΩ Source
Imbalance
G=5
G = 10
G = 100
G = 1000
NOISE
Voltage Noise, 1 kHz
G=5
G = 1000
RTI, 0.1 Hz to 10 Hz
G=5
G = 1000
Current Noise, 1 kHz
0.1 Hz to 10 Hz
VOLTAGE OFFSET
Input Offset, V
OSI
Over Temperature
Average TC
Output Offset, V
OSO
Over Temperature
Average TC
Offset Referred to Input vs.
Supply (PSR)
G=5
G = 10
G = 100
G = 1000
INPUT CURRENT
Input Bias Current
Over Temperature
Average Temperature
Coefficient
Input Offset Current
Over Temperature
Average Temperature
Coefficient
DYNAMIC RESPONSE
Small Signal −3 dB Bandwidth
G=5
G = 10
G = 100
G = 1000
Slew Rate
Conditions
V
CM
= 0 V to 3 V
80
86
90
90
V
IN+
= V
IN−
= V
REF
= 0 V
50
30
1.0
0.6
70
1.2
Total RTI error =
V
OSI
+ V
OSO
/G
T
A
= −40°C to +85°C
T
A
= −40°C to +85°C
T
A
= −40°C to +85°C
T
A
= −40°C to +85°C
+V
S
= 4 V to 24 V,
−V
S
= 0 V
80
86
90
90
5
5
12
50
0.25
T
A
= −40°C to +85°C
T
A
= −40°C to +85°C
5
2
2.5
25
28
250
400
2
1500
2000
15
100
160
1
1000
1500
10
μV
μV
μV/°C
μV
μV
μV/°C
50
30
1.0
0.6
70
1.2
nV/√Hz
nV/√Hz
μV p-p
μV p-p
fA/√Hz
pA p-p
86
90
96
96
dB
dB
dB
dB
Min
AD8223A
Typ
Max
Min
AD8223B
Typ
Max
Unit
86
90
96
96
5
5
12
50
0.25
5
2
2.5
25
28
dB
dB
dB
dB
nA
nA
pA/°C
nA
nA
pA/°C
T
A
= −40°C to +85°C
T
A
= −40°C to +85°C
125
125
50
5
0.2
125
125
50
5
0.2
kHz
kHz
kHz
kHz
V/μs
Rev. 0 | Page 3 of 20
AD8223
Parameter
Settling Time to 0.01%
G=5
G = 10
G = 100
G = 1000
GAIN
Gain Range
Gain Error
1
G=5
G = 10
G = 100
G = 1000
Nonlinearity
G=5
G = 1000
Gain vs. Temperature
G=5
G > 5
1
INPUT
Input Impedance
Differential
Common-Mode
Common-Mode Input Voltage
Range
2
OUTPUT
Output Swing
Conditions
Step size = 3.5 V
Min
AD8223A
Typ
18
18
18
85
G = 5 + (80 kΩ/R
G
)
5
V
OUT
= 0.05 V to 4.5 V
0.10
0.10
0.10
V
OUT
= 0.05 V to 4.5 V
12
200
T
A
= −40°C to +85°C
10
50
50
2
ppm/°C
ppm/°C
12
200
ppm
ppm
0.07
0.3
0.3
0.3
0.10
0.10
0.10
0.02
0.2
0.3
0.3
%
%
%
%
1000
5
1000
V/V
Max
Min
AD8223B
Typ
18
18
18
85
Max
Unit
μs
μs
μs
μs
2||2
2||2
V
IN+
= V
IN−
(−V
S
) −
0.15
+0.01
+0.01
(+V
S
) −
1.5
(+V
S
) −
0.5
(+V
S
) −
0.15
60
+10
−V
S
0.0002
+3
350
T
A
= −40°C to +85°C
-40
+24
500
600
+85
+3
±20%
+20
+V
S
(−V
S
) −
0.15
+0.01
+0.01
2||2
2||2
(+V
S
) −
1.5
(+V
S
) −
0.5
(+V
S
) −
0.15
60
+10
−V
S
0.0002
+24
500
600
+85
±20%
+20
+V
S
GΩ||pF
GΩ||pF
V
R
L
= 10 kΩ to ground
R
L
= 100 kΩ to ground
V
V
REFERENCE INPUT
R
IN
I
IN
Voltage Range
Gain to Output
POWER SUPPLY
Operating Range
Quiescent Current
Over Temperature
TEMPERATURE RANGE
For Specified Performance
1
2
V
IN+
= V
IN−
= V
REF
= 0 V
μA
V
V
350
V
μA
μA
°C
−40
Does not include effects of external resistor, R
G
.
Total input range depends on common-mode voltage, differential voltage, and gain. See Figure 18 through Figure 21, and the Input Voltage Range section in the
Theory of Operation section for more information.
Rev. 0 | Page 4 of 20
ICA cannot be used in Cadence 16.3
I installed Cadence 16.3, but ICA cannot be used. When I open it, this screen appears. I cannot see the Search input box. I found on the Internet that I can click into ActiveParts, but it does not wor...
MrKingMCU PCB Design
Questions about second-order SK low-pass filter
[i=s]This post was last edited by xiaxingxing on 2021-10-7 20:24[/i]As shown in the figure below, the cutoff frequency of the second-order SK low-pass filter is 14.5kHz. According to the formula in th...
xiaxingxing Analog electronics
Good textbooks for learning Linux
Good textbooks for learning Linux...
paullv Linux and Android
Advice for Bluetooth beginners
Bluetooth beginner tipsIf you have read this far, then the painful concepts and the fucked-up development process above have already been disgusting, so let me give you some advice for beginners of Bl...
ohahaha RF/Wirelessly
A typical application example of single chip microcomputer - detailed explanation of DS18B20 application
This is a network temperature sensor made with AT89C2051 and DS18B20. It can send the measured temperature to the computer via RS232 bus, or use RS485 bus to achieve network communication. The compres...
忙忙草 MCU
LT32U02/32A02——Share a 32-bit MCU+USB chip
32-bit C0 RISC processor supports 32-bit × 32-bit single-cycle hardware integer multiplier and 32-bit 3~13-cycle hardware divider Built-in 64KBytes Flash, 8K Bytes SRAM and 1K Bytes Cache Memory Built...
cjc59717407 Microchip MCU

EEWorld
subscription
account

EEWorld
service
account

Automotive
development
circle

Robot
development
community

Index Files: 2513  973  2803  472  1103  51  20  57  10  23 
Datasheet   0 1 2 3 4 5 6 7 8 9 A B C D E F G H I J K L M N O P Q R S T U V W X Y Z
Room 1530, 15th Floor, Building B, No. 18 Zhongguancun Street, Haidian District, Beijing Telephone: (010) 82350740 Postal Code: 100190
Copyright © 2005-2026 EEWORLD.com.cn, Inc. All rights reserved 京ICP证060456号 京ICP备10001474号-1 电信业务审批[2006]字第258号函 京公网安备 11010802033920号