| Part Number | Manufacturer | Composite Price | Description | Compare |
|---|---|---|---|---|
| TLC27L2CPWLE | Texas Instruments | Check for Price | Operational Amplifier, 2 Func, 12000uV Offset-Max, CMOS, PDSO8 | TLC27L2CPWR vs TLC27L2CPWLE |
| TLC27L2CPW | Rochester Electronics LLC | Check for Price | DUAL OP-AMP, 12000uV OFFSET-MAX, 0.1MHz BAND WIDTH, PDSO8, GREEN, PLASTIC, TSSOP-8 | TLC27L2CPWR vs TLC27L2CPW |
Part Details for TLC27L2CPWR by Texas Instruments
Results Overview of TLC27L2CPWR by Texas Instruments
- Distributor Offerings: (4 listings)
- Number of FFF Equivalents: (2 replacements)
- Tariff Estimator: (Available) NEW
- Number of Functional Equivalents: (2 options)
- CAD Models: (Available)
- Part Data Attributes: (Available)
- Reference Designs: (Not Available)
Tip: Data for a part may vary between manufacturers. You can filter for manufacturers on the top of the page next to the part image and part number.
TLC27L2CPWR Information
TLC27L2CPWR by Texas Instruments is an Operational Amplifier.
Operational Amplifiers are under the broader part category of Amplifier Circuits.
Amplifier circuits use external power to increase the amplitude of an input signal. They can be used to perform linear amplifications or logarithmic functions. Read more about Amplifier Circuits on our Amplifier Circuits part category page.
Available Datasheets
| Part # | Manufacturer | Description | Datasheet |
|---|---|---|---|
| TLC27L2CPWR | Texas Instruments | Dual Precision Single Supply uPower Operational Amplifier 8-TSSOP 0 to 70 |
Price & Stock for TLC27L2CPWR
| Part # | Distributor | Description | Stock | Price | Buy | |
|---|---|---|---|---|---|---|
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DISTI #
296-31960-1-ND
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DigiKey | IC CMOS 2 CIRCUIT 8TSSOP Container: Cut Tape |
0 Cut Tape |
|
Buy Now | |
|
DISTI #
296-31960-2-ND
|
DigiKey | IC CMOS 2 CIRCUIT 8TSSOP Min Qty: 2000 Container: Tape & Reel |
0 Tape & Reel |
|
$0.5316 / $0.5655 | Buy Now |
|
DISTI #
595-TLC27L2CPWR
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Mouser Electronics | Precision Amplifiers Dual Precision Singl e Supply uPower RoHS: Compliant | 2345 |
|
$0.5330 / $1.2000 | Buy Now |
|
|
Ameya Holding Limited | IC OPAMP GP 110KHZ 8TSSOP | 1495 |
|
RFQ |
US Tariff Estimator: TLC27L2CPWR by Texas Instruments
Calculations from this tool are estimations only for imports into the United States. Please refer to the distributor or manufacturer and reference official US government sources and authorities to verify any final purchase costs.
TLC27L2CPWR CAD Models
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TLC27L2CPWR Part Data Attributes
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TLC27L2CPWR
Texas Instruments
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Datasheet
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TLC27L2CPWR
Texas Instruments
Operational Amplifier, 2 Func, 10000uV Offset-Max, CMOS, PDSO8
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| Pbfree Code | Yes | |
| Rohs Code | Yes | |
| Part Life Cycle Code | Active | |
| Part Package Code | SOIC | |
| Pin Count | 8 | |
| ECCN Code | EAR99 | |
| HTS Code | 8542.33.00.01 | |
| Amplifier Type | Operational Amplifier | |
| Architecture | Voltage-Feedback | |
| Average Bias Current-Max (IIB) | 0.0006 µA | |
| Bias Current-Max (IIB) @25C | 0.00006 µA | |
| Common-mode Reject Ratio-Min | 60 Db | |
| Common-mode Reject Ratio-Nom | 94 Db | |
| Frequency Compensation | Yes | |
| Input Offset Current-Max (IIO) | 0.00006 µA | |
| Input Offset Voltage-Max | 10000 µV | |
| JESD-30 Code | R-PDSO-G8 | |
| JESD-609 Code | e4 | |
| Length | 4.4 Mm | |
| Low-Bias | Yes | |
| Low-Offset | No | |
| Micropower | Yes | |
| Moisture Sensitivity Level | 1 | |
| Number of Functions | 2 | |
| Number of Terminals | 8 | |
| Operating Temperature-Max | 70 °C | |
| Operating Temperature-Min | ||
| Package Body Material | Plastic/Epoxy | |
| Package Code | TSSOP | |
| Package Equivalence Code | TSSOP8,.25 | |
| Package Shape | Rectangular | |
| Package Style | Small Outline, Thin Profile, Shrink Pitch | |
| Packing Method | Tr | |
| Peak Reflow Temperature (Cel) | 260 | |
| Power | No | |
| Programmable Power | No | |
| Qualification Status | Not Qualified | |
| Seated Height-Max | 1.2 Mm | |
| Slew Rate-Nom | 0.03 V/Us | |
| Supply Current-Max | 0.042 Ma | |
| Supply Voltage Limit-Max | 18 V | |
| Supply Voltage-Nom (Vsup) | 5 V | |
| Surface Mount | Yes | |
| Technology | Cmos | |
| Temperature Grade | Commercial | |
| Terminal Finish | Nickel/Palladium/Gold (Ni/Pd/Au) | |
| Terminal Form | Gull Wing | |
| Terminal Pitch | 0.65 Mm | |
| Terminal Position | Dual | |
| Time@Peak Reflow Temperature-Max (s) | 30 | |
| Unity Gain BW-Nom | 85 | |
| Voltage Gain-Min | 50000 | |
| Wideband | No | |
| Width | 3 Mm |
Alternate Parts for TLC27L2CPWR
This table gives cross-reference parts and alternative options found for TLC27L2CPWR. The Form Fit Function (FFF) tab will give you the options that are more likely to serve as direct pin-to-pin alternates or drop-in parts. The Functional Equivalents tab will give you options that are likely to match the same function of TLC27L2CPWR, but it may not fit your design. Always verify details of parts you are evaluating, as these parts are offered as suggestions for what you are looking for and are not guaranteed.
TLC27L2CPWR Frequently Asked Questions (FAQ)
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The maximum power dissipation of TLC27L2CPWR is 670mW at 25°C free-air temperature, and it can be calculated using the formula: Pd = (TJ - TA) / θJA, where TJ is the junction temperature, TA is the ambient temperature, and θJA is the junction-to-ambient thermal resistance.
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To ensure the stability of the TLC27L2CPWR op-amp, it is recommended to use a compensation capacitor between the output and the inverting input pins, and to avoid capacitive loads. Additionally, the op-amp should be operated within its specified frequency range and with a stable power supply.
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The input impedance of the TLC27L2CPWR op-amp is typically around 10^12 ohms, making it suitable for high-impedance applications.
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Yes, the TLC27L2CPWR op-amp can be used in a single-supply configuration, but it requires a voltage divider or a virtual ground circuit to bias the input signals. Additionally, the output voltage swing will be limited to the supply voltage minus the saturation voltage.
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To reduce noise in a TLC27L2CPWR-based circuit, use proper PCB layout techniques, such as separating analog and digital grounds, using decoupling capacitors, and minimizing trace lengths. Additionally, consider using a low-noise power supply and shielding the circuit from external noise sources.