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MAX4132ESAMAXN/a536avaiSingle/Dual/Quad / Wide-Bandwidth / Low-Power / Single-Supply / Rail-to-Rail I/O Op Amps
MAX4132EUAMAXIM ?N/a33avaiSingle/Dual/Quad / Wide-Bandwidth / Low-Power / Single-Supply / Rail-to-Rail I/O Op Amps
MAX4131ESAMAXIMN/a432avaiSingle/Dual/Quad / Wide-Bandwidth / Low-Power / Single-Supply / Rail-to-Rail I/O Op Amps
MAX4131ESAMAXIM ?N/a6avaiSingle/Dual/Quad / Wide-Bandwidth / Low-Power / Single-Supply / Rail-to-Rail I/O Op Amps
MAX4131ESAMAXN/a11avaiSingle/Dual/Quad / Wide-Bandwidth / Low-Power / Single-Supply / Rail-to-Rail I/O Op Amps
MAX4131EUAMAXIMN/a23937avaiSingle/Dual/Quad / Wide-Bandwidth / Low-Power / Single-Supply / Rail-to-Rail I/O Op Amps
MAX4131EUAMAXN/a17150avaiSingle/Dual/Quad / Wide-Bandwidth / Low-Power / Single-Supply / Rail-to-Rail I/O Op Amps
MAX4132ESAMAXIMN/a100avaiSingle/Dual/Quad / Wide-Bandwidth / Low-Power / Single-Supply / Rail-to-Rail I/O Op Amps
MAX4132ESAMAXIM ?N/a32avaiSingle/Dual/Quad / Wide-Bandwidth / Low-Power / Single-Supply / Rail-to-Rail I/O Op Amps
MAX4133ESDMAXIMN/a10avaiSingle/Dual/Quad / Wide-Bandwidth / Low-Power / Single-Supply / Rail-to-Rail I/O Op Amps
MAX4134ESDMAXIMN/a8avaiSingle/Dual/Quad / Wide-Bandwidth / Low-Power / Single-Supply / Rail-to-Rail I/O Op Amps


MAX4131EUA ,Single/Dual/Quad / Wide-Bandwidth / Low-Power / Single-Supply / Rail-to-Rail I/O Op AmpsApplications57CS GNDPin Configurations appear at end of data sheet.____ Maxim Integrated Products 1 ..
MAX4131EUA ,Single/Dual/Quad / Wide-Bandwidth / Low-Power / Single-Supply / Rail-to-Rail I/O Op AmpsApplicationsBattery-Powered InstrumentsMAX14731Portable EquipmentSHDN VDD6 2Data-Acquisition System ..
MAX4131EUA+ ,Single/Dual/Quad, Wide-Bandwidth, Low-Power, Single-Supply Rail-to-Rail I/O Op Amps MAX4130–MAX4134Single/Dual/Quad, Wide-Bandwidth, Low-Power,Single-Supply, Rail-to-Rail I/O Op Amps
MAX4131EUA+T ,Single/Dual/Quad, Wide-Bandwidth, Low-Power, Single-Supply Rail-to-Rail I/O Op AmpsApplicationsMAX147Battery-Powered Instruments31SHDN VDDPortable Equipment6 2DOUT AIN MAX4131Data-Ac ..
MAX4132ESA ,Single/Dual/Quad / Wide-Bandwidth / Low-Power / Single-Supply / Rail-to-Rail I/O Op AmpsELECTRICAL CHARACTERISTICS (V = +2.7V to +6.5V, V = 0V, V = 0V, V = V / 2, R tied to V / 2, SHDN ‡ ..
MAX4132ESA ,Single/Dual/Quad / Wide-Bandwidth / Low-Power / Single-Supply / Rail-to-Rail I/O Op AmpsELECTRICAL CHARACTERISTICS (V = +2.7V to +6.5V, V = 0V, V = 0V, V = V / 2, R tied to V / 2, SHDN ‡ ..
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MAX793TESE ,Microprocessor supervisory circuit. Reset threshold 3.00V to 3.15V. Active-low reset.Active-high reset.Low-line early warning output.Backup-battery switchover.External switch driver.Power-fail comparator.Battery OK output.Watchdog input.Ma
MAX793TESE+ ,3.0V/3.3V Adjustable Microprocessor Supervisory Circuits
MAX793TESE+T ,3.0V/3.3V Adjustable Microprocessor Supervisory Circuits
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MAX4131ESA-MAX4131EUA-MAX4132ESA-MAX4132EUA-MAX4133ESD-MAX4134ESD
Single/Dual/Quad / Wide-Bandwidth / Low-Power / Single-Supply / Rail-to-Rail I/O Op Amps
_______________General Description
The MAX4130–MAX4134 family of operational amplifiers
combines 10MHz gain-bandwidth product and excellent
DC accuracy with rail-to-rail operation at the inputs and
outputs. These devices require only 900µA per amplifier,
and operate from either a single supply (+2.7V to +6.5V)
or dual supplies (±1.35V to ±3.25V) with a common-
mode voltage range that extends 250mV beyond VEE
and VCC. They are capable of driving 250Ωloads and
are unity-gain stable. In addition, the MAX4131/
MAX4133 feature a shutdown mode in which the outputs
are placed in a high-impedance state and the supply
current is reduced to only 25µA per amplifier.
With their rail-to-rail input common-mode range and
output swing, the MAX4130–MAX4134 are ideal for low-
voltage, single-supply operation. Although the minimum
operating voltage is specified at 2.7V, the devices
typically operate down to 1.8V. In addition, low offset
voltage and high speed make them the ideal signal-
conditioning stages for precision, low-voltage data-
acquisition systems. The MAX4130 comes in the
space-saving SOT23-5 package.
________________________Applications

Battery-Powered Instruments
Portable Equipment
Data-Acquisition Systems
Signal Conditioning
Low-Power, Low-Voltage Applications
____________________________Features
5-Pin SOT23-5 Package (MAX4130)+2.7V to +6.5V Single-Supply OperationRail-to-Rail Input Common-Mode Voltage RangeRail-to-Rail Output Voltage Swing10MHz Gain-Bandwidth Product900µA Quiescent Current per Amplifier25µA Shutdown Function (MAX4131/MAX4133)200µV Offset VoltageNo Phase Reversal for Overdriven InputsDrive 250ΩLoadsStable with 160pF Capacitive LoadsUnity-Gain Stable
MAX4130–MAX4134
Single/Dual/Quad, Wide-Bandwidth, Low-Power,
Single-Supply, Rail-to-Rail I/O Op Amps

19-1089; Rev 2; 8/97
Pin Configurations appear at end of data sheet.
MAX4130–MAX4134
Single/Dual/Quad, Wide-Bandwidth, Low-Power,
Single-Supply Rail-to-Rail I/O Op Amps
ABSOLUTE MAXIMUM RATINGS
DC ELECTRICAL CHARACTERISTICS

(VCC= +2.7V to +6.5V, VEE= 0V, VCM= 0V, VOUT= VCC/ 2, RLtied to VCC/ 2, SHDN‡2V (or open), TA= +25°C, unless
otherwise noted.)
Stresses beyond those listed under “Absolute Maximum Ratings” may cause permanent damage to the device. These are stress ratings only, and functional
operation of the device at these or any other conditions beyond those indicated in the operational sections of the specifications is not implied. Exposure to
absolute maximum rating conditions for extended periods may affect device reliability.
Supply Voltage (VCC-VEE).....................................................7.5V
IN+, IN-, SHDNVoltage...................(VCC+ 0.3V) to (VEE- 0.3V)
Output Short-Circuit Duration (Note 1).......................Continuous
(short to either supply)
Continuous Power Dissipation (TA= +70°C)
5-pin SOT23-5 (derate 7.1mW/°C above +70°C).........571mW
8-pin SO (derate 5.88mW/°C above +70°C).................471mW
8-pin µMAX (derate 4.10mW/°C above +70°C)............330mW
14-pin SO (derate 8.00mW/°C above +70°C)...............640mW
Operating Temperature Range
MAX413_E__....................................................-40°C to +85°C
Maximum Junction Temperature.....................................+150°C
Storage Temperature Range.............................-65°C to +160°C
Lead Temperature (soldering, 10sec).............................+300°C
Note 1:
Provided that the maximum package power-dissipation rating is met.
MAX4130–MAX4134
Single/Dual/Quad, Wide-Bandwidth, Low-Power,
Single-Supply Rail-to-Rail I/O Op Amps
DC ELECTRICAL CHARACTERISTICS

(VCC= +2.7V to +6.5V, VEE= 0V, VCM= 0V, VOUT= VCC/ 2, RLtied to VCC/ 2, SHDN‡2V (or open), TA= -40°C to +85°C, unless
otherwise noted.)
DC ELECTRICAL CHARACTERISTICS (continued)

(VCC= +2.7V to +6.5V, VEE= 0V, VCM= 0V, VOUT= VCC/ 2, RLtied to VCC/ 2, SHDN‡2V (or open), TA= +25°C, unless
otherwise noted.)
MAX4130–MAX4134
Single/Dual/Quad, Wide-Bandwidth, Low-Power,
Single-Supply Rail-to-Rail I/O Op Amps
DC ELECTRICAL CHARACTERISTICS (continued)

(VCC= +2.7V to +6.5V, VEE= 0V, VCM= 0V, VOUT= VCC/ 2, RLtied to VCC/ 2, SHDN‡2V (or open), TA= -40°C to +85°C, unless
otherwise noted.)
AC ELECTRICAL CHARACTERISTICS

(VCC= +2.7V to +6.5V, VEE= 0V, SHDN‡2V (or open), TA= +25°C, unless otherwise noted.)
MAX4130–MAX4134
Single/Dual/Quad, Wide-Bandwidth, Low-Power,
Single-Supply, Rail-to-Rail I/O Op Amps
__________________________________________Typical Operating Characteristics

(VCC= +5V, VEE= 0V, VCM= VCC / 2, TA = +25°C, unless otherwise noted.)
MAX4130–MAX4134
Single/Dual/Quad, Wide-Bandwidth, Low-Power,
Single-Supply, Rail-to-Rail I/O Op Amps
____________________________Typical Operating Characteristics (continued)

(VCC= +5V, VEE= 0V, VCM= VCC / 2, TA = +25°C, unless otherwise noted.)
MAX4130–MAX4134
Single/Dual/Quad, Wide-Bandwidth, Low-Power,
Single-Supply, Rail-to-Rail I/O Op Amps
____________________________Typical Operating Characteristics (continued)

(VCC= +5V, VEE= 0V, VCM= VCC / 2, TA = +25°C, unless otherwise noted.)
MAX4130–MAX4134
Single/Dual/Quad, Wide-Bandwidth, Low-Power,
Single-Supply, Rail-to-Rail I/O Op Amps
______________________________________________________________Pin Description

Figure 1a. Reducing Offset Error Due to Bias Current
(Noninverting)
Figure 1b. Reducing Offset Error Due to Bias Current
(Inverting)
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