LT1013 Dual Precision Op Amp: Pinout, Equivalent and Datasheet
Linear Technology/Analog Devices
20mA per Channel 15nA 97 dB Instrumentational OP Amps 4V~44V ±2V~22V LT1013 8-SOIC (0.154, 3.90mm Width)









20mA per Channel 15nA 97 dB Instrumentational OP Amps 4V~44V ±2V~22V LT1013 8-SOIC (0.154, 3.90mm Width)
The LT1013 is the first precision dual op amp in the 8-pin industry standard configuration, upgrading the performance of such popular devices as the MC1458/MC1558, LM158 and OP-221. Furthermore, Huge range of Semiconductors, Capacitors, Resistors and IcS in stock. Welcome RFQ.
LT1013 Pinout

Pinout
LT1013 CAD Model

Footprint
LT1013 Overview
The LT1013 is the first precision dual op amp in the 8-pin industry standard configuration, upgrading the performance of such popular devices as the MC1458/MC1558, LM158 and OP-221. The LT1013's specifications are similar to (even somewhat better than) the LT1014's.
Both the LT1013 and LT1014 can be operated off a single 5V power supply: input common mode range includes ground; the output can also swing to within a few millivolts of ground. Crossover distortion, so apparent on previous single-supply designs, is eliminated. A full set of specifications is provided with ±15V and single 5V supplies.
This article provides you with a basic overview of the LT1013 Dual Precision Op Amp, including its pin descriptions, features and specifications, etc., to help you quickly understand what LT1013 is.
LT1013 Features
● Single Supply Operation
◆ Input Voltage Range Extends to Ground
◆ Output Swings to Ground While Sinking Current
● Pin Compatible to 1458 and 324 with Precision Specs
● Guaranteed Offset Voltage: 150µV Max
● Guaranteed Low Drift: 2µV/°C Max
● Guaranteed Offset Current: 0.8nA Max
● Guaranteed High Gain
◆ 5mA Load Current: 1.5 Million Min
◆ 17mA Load Current: 0.8 Million Min
● Guaranteed Low Supply Current: 500µA Max
● Low Voltage Noise, 0.1Hz to 10Hz: 0.55µVP-P
Specifications
- TypeParameter
- Mounting Type
The "Mounting Type" in electronic components refers to the method used to attach or connect a component to a circuit board or other substrate, such as through-hole, surface-mount, or panel mount.
Surface Mount - Package / Case
refers to the protective housing that encases an electronic component, providing mechanical support, electrical connections, and thermal management.
8-SOIC (0.154, 3.90mm Width) - Surface Mount
having leads that are designed to be soldered on the side of a circuit board that the body of the component is mounted on.
YES - Number of Pins8
- Number of Elements2
- Operating Temperature
The operating temperature is the range of ambient temperature within which a power supply, or any other electrical equipment, operate in. This ranges from a minimum operating temperature, to a peak or maximum operating temperature, outside which, the power supply may fail.
-40°C~85°C - Packaging
Semiconductor package is a carrier / shell used to contain and cover one or more semiconductor components or integrated circuits. The material of the shell can be metal, plastic, glass or ceramic.
Tube - Published2010
- JESD-609 Code
The "JESD-609 Code" in electronic components refers to a standardized marking code that indicates the lead-free solder composition and finish of electronic components for compliance with environmental regulations.
e0 - Part Status
Parts can have many statuses as they progress through the configuration, analysis, review, and approval stages.
Active - Moisture Sensitivity Level (MSL)
Moisture Sensitivity Level (MSL) is a standardized rating that indicates the susceptibility of electronic components, particularly semiconductors, to moisture-induced damage during storage and the soldering process, defining the allowable exposure time to ambient conditions before they require special handling or baking to prevent failures
1 (Unlimited) - Number of Terminations8
- ECCN Code
An ECCN (Export Control Classification Number) is an alphanumeric code used by the U.S. Bureau of Industry and Security to identify and categorize electronic components and other dual-use items that may require an export license based on their technical characteristics and potential for military use.
EAR99 - Terminal Finish
Terminal Finish refers to the surface treatment applied to the terminals or leads of electronic components to enhance their performance and longevity. It can improve solderability, corrosion resistance, and overall reliability of the connection in electronic assemblies. Common finishes include nickel, gold, and tin, each possessing distinct properties suitable for various applications. The choice of terminal finish can significantly impact the durability and effectiveness of electronic devices.
Tin/Lead (Sn/Pb) - Voltage - Supply
Voltage - Supply refers to the range of voltage levels that an electronic component or circuit is designed to operate with. It indicates the minimum and maximum supply voltage that can be applied for the device to function properly. Providing supply voltages outside this range can lead to malfunction, damage, or reduced performance. This parameter is critical for ensuring compatibility between different components in a circuit.
5V - Terminal Position
In electronic components, the term "Terminal Position" refers to the physical location of the connection points on the component where external electrical connections can be made. These connection points, known as terminals, are typically used to attach wires, leads, or other components to the main body of the electronic component. The terminal position is important for ensuring proper connectivity and functionality of the component within a circuit. It is often specified in technical datasheets or component specifications to help designers and engineers understand how to properly integrate the component into their circuit designs.
DUAL - Terminal Form
Occurring at or forming the end of a series, succession, or the like; closing; concluding.
GULL WING - Peak Reflow Temperature (Cel)
Peak Reflow Temperature (Cel) is a parameter that specifies the maximum temperature at which an electronic component can be exposed during the reflow soldering process. Reflow soldering is a common method used to attach electronic components to a circuit board. The Peak Reflow Temperature is crucial because it ensures that the component is not damaged or degraded during the soldering process. Exceeding the specified Peak Reflow Temperature can lead to issues such as component failure, reduced performance, or even permanent damage to the component. It is important for manufacturers and assemblers to adhere to the recommended Peak Reflow Temperature to ensure the reliability and functionality of the electronic components.
235 - Number of Functions2
- Time@Peak Reflow Temperature-Max (s)
Time@Peak Reflow Temperature-Max (s) refers to the maximum duration that an electronic component can be exposed to the peak reflow temperature during the soldering process, which is crucial for ensuring reliable solder joint formation without damaging the component.
20 - Base Part Number
The "Base Part Number" (BPN) in electronic components serves a similar purpose to the "Base Product Number." It refers to the primary identifier for a component that captures the essential characteristics shared by a group of similar components. The BPN provides a fundamental way to reference a family or series of components without specifying all the variations and specific details.
LT1013 - Current - Supply
Current - Supply is a parameter in electronic components that refers to the maximum amount of electrical current that the component can provide to the circuit it is connected to. It is typically measured in units of amperes (A) and is crucial for determining the power handling capability of the component. Understanding the current supply rating is important for ensuring that the component can safely deliver the required current without overheating or failing. It is essential to consider this parameter when designing circuits to prevent damage to the component and ensure proper functionality of the overall system.
350μA - Slew Rate
the maximum rate of output voltage change per unit time.
0.4V/μs - Architecture
In electronic components, the parameter "Architecture" refers to the overall design and structure of the component. It encompasses the arrangement of internal components, the layout of circuitry, and the physical form of the component. The architecture of an electronic component plays a crucial role in determining its functionality, performance, and compatibility with other components in a system. Different architectures can result in variations in power consumption, speed, size, and other key characteristics of the component. Designers often consider the architecture of electronic components carefully to ensure optimal performance and integration within a larger system.
VOLTAGE-FEEDBACK - Amplifier Type
Amplifier Type refers to the classification or categorization of amplifiers based on their design, functionality, and characteristics. Amplifiers are electronic devices that increase the amplitude of a signal, such as voltage or current. The type of amplifier determines its specific application, performance capabilities, and operating characteristics. Common types of amplifiers include operational amplifiers (op-amps), power amplifiers, audio amplifiers, and radio frequency (RF) amplifiers. Understanding the amplifier type is crucial for selecting the right component for a particular circuit or system design.
General Purpose - Common Mode Rejection Ratio
Common Mode Rejection Ratio (CMRR) is a measure of the ability of a differential amplifier to reject input signals that are common to both input terminals. It is defined as the ratio of the differential gain to the common mode gain. A high CMRR indicates that the amplifier can effectively eliminate noise and interference that affects both inputs simultaneously, enhancing the fidelity of the amplified signal. CMRR is typically expressed in decibels (dB), with higher values representing better performance in rejecting common mode signals.
97 dB - Current - Input Bias
The parameter "Current - Input Bias" in electronic components refers to the amount of current required at the input terminal of a device to maintain proper operation. It is a crucial specification as it determines the minimum input current needed for the component to function correctly. Input bias current can affect the performance and accuracy of the device, especially in precision applications where small signal levels are involved. It is typically specified in datasheets for operational amplifiers, transistors, and other semiconductor devices to provide users with important information for circuit design and analysis.
15nA - Voltage - Supply, Single/Dual (±)
The parameter "Voltage - Supply, Single/Dual (±)" in electronic components refers to the power supply voltage required for the proper operation of the component. This parameter indicates whether the component requires a single power supply voltage (e.g., 5V) or a dual power supply voltage (e.g., ±15V). For components that require a single power supply voltage, only one voltage level is needed for operation. On the other hand, components that require a dual power supply voltage need both positive and negative voltage levels to function correctly.Understanding the voltage supply requirements of electronic components is crucial for designing and integrating them into circuits to ensure proper functionality and prevent damage due to incorrect voltage levels.
4V~44V ±2V~22V - Output Current per Channel
Output Current per Channel is a specification commonly found in electronic components such as amplifiers, audio interfaces, and power supplies. It refers to the maximum amount of electrical current that can be delivered by each individual output channel of the component. This parameter is important because it determines the capacity of the component to drive connected devices or loads. A higher output current per channel means the component can deliver more power to connected devices, while a lower output current may limit the performance or functionality of the component in certain applications. It is crucial to consider the output current per channel when selecting electronic components to ensure they can meet the power requirements of the intended system or setup.
20mA - Input Offset Voltage (Vos)
Input Offset Voltage (Vos) is a key parameter in electronic components, particularly in operational amplifiers. It refers to the voltage difference that must be applied between the two input terminals of the amplifier to nullify the output voltage when the input terminals are shorted together. In simpler terms, it represents the voltage required to bring the output of the amplifier to zero when there is no input signal present. Vos is an important parameter as it can introduce errors in the output signal of the amplifier, especially in precision applications where accuracy is crucial. Minimizing Vos is essential to ensure the amplifier operates with high precision and accuracy.
40μV - Neg Supply Voltage-Nom (Vsup)
The parameter "Neg Supply Voltage-Nom (Vsup)" in electronic components refers to the nominal negative supply voltage that the component requires to operate within its specified performance characteristics. This parameter indicates the minimum voltage level that must be provided to the component's negative supply pin for proper functionality. It is important to ensure that the negative supply voltage provided to the component does not exceed the maximum specified value to prevent damage or malfunction. Understanding and adhering to the specified negative supply voltage requirements is crucial for the reliable operation of the electronic component in a circuit.
-15V - Voltage Gain
Voltage gain is a measure of how much an electronic component or circuit amplifies an input voltage signal to produce an output voltage signal. It is typically expressed as a ratio or in decibels (dB). A higher voltage gain indicates a greater amplification of the input signal. Voltage gain is an important parameter in amplifiers, where it determines the level of amplification provided by the circuit. It is calculated by dividing the output voltage by the input voltage and is a key factor in determining the overall performance and functionality of electronic devices.
120dB - Power Supply Rejection Ratio (PSRR)
Power Supply Rejection Ratio (PSRR) is a measure of how well an electronic component, such as an operational amplifier or voltage regulator, can reject changes in its supply voltage. It indicates the ability of the component to maintain a stable output voltage despite fluctuations in the input supply voltage. A higher PSRR value signifies better performance in rejecting noise and variations from the power supply, leading to improved signal integrity and more reliable operation in electronic circuits. PSRR is typically expressed in decibels (dB).
100dB - Low-Offset
Low-offset is a parameter used to describe the level of offset voltage in electronic components, particularly in operational amplifiers. Offset voltage refers to the small voltage difference that exists between the input terminals of the amplifier when the input voltage is zero. A low-offset value indicates that this voltage difference is minimal, which is desirable for accurate signal processing and amplification. Components with low-offset specifications are preferred in applications where precision and accuracy are critical, such as in instrumentation and measurement systems. Minimizing offset voltage helps reduce errors and ensures the faithful reproduction of input signals by the amplifier.
NO - Frequency Compensation
Frequency compensation is implemented by modifying the gain and phase characteristics of the amplifier's open loop output or of its feedback network, or both, in such a way as to avoid the conditions leading to oscillation. This is usually done by the internal or external use of resistance-capacitance networks.
YES - Voltage - Input Offset
Voltage - Input Offset is a parameter that refers to the difference in voltage between the input terminals of an electronic component, such as an operational amplifier, when the input voltage is zero. It is an important characteristic that can affect the accuracy and performance of the component in various applications. A low input offset voltage is desirable as it indicates that the component will have minimal error in its output when the input signal is near zero. Manufacturers typically provide this specification in the component's datasheet to help users understand the component's behavior and make informed decisions when designing circuits.
200μV - Low-Bias
Low-bias in electronic components refers to a design or configuration that minimizes the amount of bias current flowing through the component. Bias current is a small, steady current that is used to establish the operating point of a component, such as a transistor or amplifier. By reducing the bias current to a low level, the component can operate with lower power consumption and potentially lower distortion. Low-bias components are often used in applications where power efficiency and signal fidelity are important, such as in audio amplifiers or battery-powered devices. Overall, the low-bias parameter indicates the ability of the component to operate efficiently and accurately with minimal bias current.
NO - Micropower
the use of very small electric generators and prime movers or devices to convert heat or motion to electricity, for use close to the generator.
YES - Bias Current-Max (IIB) @25C
The parameter "Bias Current-Max (IIB) @25C" in electronic components refers to the maximum input bias current that the component can handle at a specified temperature of 25 degrees Celsius. Bias current is the current flowing into the input terminal of a device when no signal is applied. This parameter is important because excessive bias current can affect the performance and stability of the component, leading to potential issues such as distortion or offset errors in the output signal. By specifying the maximum bias current allowed at a certain temperature, manufacturers provide users with important information to ensure proper operation and reliability of the component in their circuit designs.
0.05μA - Programmable Power
A programmable power supply provides remote control capability of the output voltage(s) via an analog control signal controlled by keypad or rotary switch from the front panel of the power supply or via a computer interface such as RS232, GPIB, or USB.
NO - Dual Supply Voltage
Dual Supply Voltage refers to an electronic component's requirement for two separate power supply voltages, typically one positive and one negative. This configuration is commonly used in operational amplifiers, analog circuits, and certain digital devices to allow for greater signal handling capabilities and improved performance. The use of dual supply voltages enables the device to process bipolar signals, thereby enhancing its functionality in various applications.
15V - Nominal Gain Bandwidth Product
The Nominal Gain Bandwidth Product is a key parameter in electronic components, particularly in operational amplifiers. It represents the product of the gain and the bandwidth at which that gain is achieved. In simpler terms, it indicates the frequency range over which the amplifier can provide a specified level of gain. A higher Nominal Gain Bandwidth Product implies that the amplifier can operate over a wider range of frequencies while maintaining a consistent level of amplification. Designers often consider this parameter when selecting components for applications that require specific bandwidth and gain requirements.
800 kHz - Wideband
Wideband refers to a characteristic of electronic components or systems that can operate over a broad frequency range. It indicates the ability of the component to handle a wide spectrum of frequencies without significant loss of performance. In applications such as amplifiers, antennas, and filters, wideband components are essential for transmitting and receiving signals across various frequencies, making them versatile for different communication standards and technologies.
NO - Length4.9mm
- Radiation Hardening
Radiation hardening is the process of making electronic components and circuits resistant to damage or malfunction caused by high levels of ionizing radiation, especially for environments in outer space (especially beyond the low Earth orbit), around nuclear reactors and particle accelerators, or during nuclear accidents or nuclear warfare.
No - RoHS Status
RoHS means “Restriction of Certain Hazardous Substances” in the “Hazardous Substances Directive” in electrical and electronic equipment.
Non-RoHS Compliant - Lead Free
Lead Free is a term used to describe electronic components that do not contain lead as part of their composition. Lead is a toxic material that can have harmful effects on human health and the environment, so the electronics industry has been moving towards lead-free components to reduce these risks. Lead-free components are typically made using alternative materials such as silver, copper, and tin. Manufacturers must comply with regulations such as the Restriction of Hazardous Substances (RoHS) directive to ensure that their products are lead-free and environmentally friendly.
Contains Lead
LT1013 Functional Block Diagram

Schematic diagram
LT1013 Equivalent
| Model number | Manufacturer | Description |
| LT1013IS8#TR | Linear Technology | LT1013 - Dual Precision Op Amp; Package: SO; Pins: 8; Temperature Range: -40°C to 85°C |
| LT1013DN8 | Linear Technology | LT1013 - Dual Precision Op Amp; Package: PDIP; Pins: 8; Temperature Range: 0°C to 70°C |
| LT1013DCDR | Texas Instruments | DUAL OP-AMP, 1000uV OFFSET-MAX, PDSO8 |
| LT1013CN8 | Analog Devices Inc | Operational Amplifier, 2 Func, 400uV Offset-Max, BIPolar, PDIP8 |
| MXL1013IS8+T | Maxim Integrated Products | Operational Amplifier, 2 Func, 1000uV Offset-Max, BIPolar, PDSO8, SO-8 |
| FT1013DS8 | Force Technologies Ltd | Operational Amplifier, 2 Func, 800uV Offset-Max, PDSO8, PLASTIC, SOP-8 |
| LT1013DDG4 | Texas Instruments | Low Power, 4V-44V wide supply range, Single operational amplifier 8-SOIC 0 to 70 |
| LT1013DS8#PBF | Analog Devices Inc | Dual Precision Op Amp |
| LT1013IS8 | Linear Technology | LT1013 - Dual Precision Op Amp; Package: SO; Pins: 8; Temperature Range: -40°C to 85°C |
| LT1013CJ8#PBF | Linear Technology | IC DUAL OP-AMP, 400 uV OFFSET-MAX, CDIP8, 0.300 INCH, LEAD FREE, HERMETIC SEALED, CERAMIC, DIP-8, Operational Amplifier |
Parts with Similar Specs
- ImagePart NumberManufacturerPackage / CaseNumber of PinsSlew RateInput Offset Voltage (Vos)Power Supply Rejection Ratio (PSRR)Common Mode Rejection RatioSupply VoltageOperating Supply CurrentView Compare
LT1013IS8
8-SOIC (0.154, 3.90mm Width)
8
0.4V/μs
40 μV
100 dB
97 dB
15 V
350 μA
8-SOIC (0.154, 3.90mm Width)
8
0.15V/μs
150 μV
70 dB
72 dB
3 V
-
8-SOIC (0.154, 3.90mm Width)
8
4.5V/μs
20 μV
116 dB
112 dB
15 V
2.3 mA
LT1013 Application
● Battery-Powered Precision Instrumentation
◆ Strain Gauge Signal Conditioners
◆ Thermocouple Amplifiers
◆ Instrumentation Amplifiers
● 4mA to 20mA Current Loop Transmitters
● Multiple Limit Threshold Detection
● Active Filters
● Multiple Gain Blocks
LT1013 Package

S8 Package
LT1013 Manufacturer
As a member of the S&P 500, Linear Technology Corporation is committed to designing, manufacturing and marketing a extensive line of high performance analog integrated circuits for main companies around the world. Between the analog world and digital electronic products in communications, networks, industry, automobiles, computers, medical, instrumentation, consumer, military and aerospace systems, our products have built an important bridge for them. Our products include not only the production of power management, data conversion, signal conditioning, RF and interface ICs, μModule subsystems, but also wireless sensor network products.
Datasheet PDF
- Datasheets :
- ConflictMineralStatement :
Trend Analysis
What is the essential property of the LT1013?
The LT1013 is the first precision dual op amp in the 8-pin industry standard configuration, upgrading the performance of such popular devices as the MC1458/MC1558, LM158 and OP-221.
Is the LT1013 a single power supply operation?
The LT1013 is fully specified for single supply operation, i.e., when the negative supply is 0V.
What is the minimum supply voltage for normal operation of LT1013?
The minimum supply voltage for proper operation of the LT1013 is 3.4V (three Ni-Cad batteries).
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