Part Details for LT6220CS8#PBF by Linear Technology
Results Overview of LT6220CS8#PBF by Linear Technology
- Distributor Offerings: (3 listings)
- Number of FFF Equivalents: (0 replacements)
- Tariff Estimator: (Available) NEW
- Number of Functional Equivalents: (3 options)
- CAD Models: (Request Part)
- 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.
LT6220CS8#PBF Information
LT6220CS8#PBF by Linear Technology 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.
Price & Stock for LT6220CS8#PBF
| Part # | Distributor | Description | Stock | Price | Buy | |
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Bristol Electronics | 14 |
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RFQ | ||
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Quest Components | VIDEO AMPLIFIER, 1 CHANNEL(S), 1 FUNC, BIPOLAR, PDSO8 | 11 |
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$4.3560 / $5.9400 | Buy Now |
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Rochester Electronics | Operational Amplifier, 1 Func, 3500uV Offset-Max, BIPolar, PDSO8 RoHS: Compliant Status: Active Min Qty: 1 | 164 |
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$1.7300 / $2.1600 | Buy Now |
US Tariff Estimator: LT6220CS8#PBF by Linear Technology
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.
Part Details for LT6220CS8#PBF
LT6220CS8#PBF Part Data Attributes
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LT6220CS8#PBF
Linear Technology
Buy Now
Datasheet
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Compare Parts:
LT6220CS8#PBF
Linear Technology
LT6220 - Single 60MHz, 20V/µs Low Power, Rail-to-Rail Input and Output Precision Op Amps; Package: SO; Pins: 8; Temperature Range: 0°C to 70°C
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| Rohs Code | Yes | |
| Part Life Cycle Code | Transferred | |
| Part Package Code | SOIC | |
| Package Description | Sop-8 | |
| Pin Count | 8 | |
| Manufacturer Package Code | S8 | |
| Reach Compliance Code | Compliant | |
| ECCN Code | EAR99 | |
| HTS Code | 8542.33.00.01 | |
| Amplifier Type | Operational Amplifier | |
| Average Bias Current-Max (IIB) | 0.9 µA | |
| Common-mode Reject Ratio-Nom | 100 Db | |
| Input Offset Voltage-Max | 3500 µV | |
| JESD-30 Code | R-PDSO-G8 | |
| JESD-609 Code | e3 | |
| Length | 4.9025 Mm | |
| Moisture Sensitivity Level | 1 | |
| Neg Supply Voltage Limit-Max | -6.3 V | |
| Neg Supply Voltage-Nom (Vsup) | -5 V | |
| Number of Functions | 1 | |
| Number of Terminals | 8 | |
| Operating Temperature-Max | 85 °C | |
| Operating Temperature-Min | -40 °C | |
| Package Body Material | Plastic/Epoxy | |
| Package Code | SOP | |
| Package Shape | Rectangular | |
| Package Style | Small Outline | |
| Peak Reflow Temperature (Cel) | 260 | |
| Qualification Status | Not Qualified | |
| Seated Height-Max | 1.752 Mm | |
| Slew Rate-Nom | 15 V/Us | |
| Supply Voltage Limit-Max | 6.3 V | |
| Supply Voltage-Nom (Vsup) | 5 V | |
| Surface Mount | Yes | |
| Technology | Bipolar | |
| Temperature Grade | Industrial | |
| Terminal Finish | Matte Tin | |
| Terminal Form | Gull Wing | |
| Terminal Pitch | 1.27 Mm | |
| Terminal Position | Dual | |
| Time@Peak Reflow Temperature-Max (s) | 30 | |
| Unity Gain BW-Nom | 50000 | |
| Width | 3.899 Mm |
Alternate Parts for LT6220CS8#PBF
This table gives cross-reference parts and alternative options found for LT6220CS8#PBF. 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 LT6220CS8#PBF, 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.
| Part Number | Manufacturer | Composite Price | Description | Compare |
|---|---|---|---|---|
| LT6220CS8 | Linear Technology | Check for Price | LT6220 - Single 60MHz, 20V/µs Low Power, Rail-to-Rail Input and Output Precision Op Amps; Package: SO; Pins: 8; Temperature Range: 0°C to 70°C | LT6220CS8#PBF vs LT6220CS8 |
| LT6220IS8#PBF | Linear Technology | Check for Price | LT6220 - Single 60MHz, 20V/µs Low Power, Rail-to-Rail Input and Output Precision Op Amps; Package: SO; Pins: 8; Temperature Range: -40°C to 85°C | LT6220CS8#PBF vs LT6220IS8#PBF |
| LT6220IS8 | Linear Technology | Check for Price | LT6220 - Single 60MHz, 20V/µs Low Power, Rail-to-Rail Input and Output Precision Op Amps; Package: SO; Pins: 8; Temperature Range: -40°C to 85°C | LT6220CS8#PBF vs LT6220IS8 |
LT6220CS8#PBF Frequently Asked Questions (FAQ)
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The maximum power dissipation of the LT6220CS8#PBF is dependent on the package thermal resistance and the ambient temperature. According to the datasheet, the maximum power dissipation is 1.3W at 25°C ambient temperature, but this can be derated to 0.65W at 85°C ambient temperature.
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Yes, the LT6220CS8#PBF can be used as a unity gain buffer. However, it's essential to ensure that the input signal is within the common-mode input range of the op-amp, and the output is not loaded excessively, as this can affect the stability and bandwidth of the amplifier.
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For optimal performance, it's recommended to follow good PCB design practices, such as keeping the input and output traces short and separate, using a solid ground plane, and minimizing noise coupling. Additionally, it's essential to decouple the power supply pins with capacitors and ensure that the op-amp is properly bypassed.
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The LT6220CS8#PBF is rated for operation from -40°C to 125°C, but the performance may degrade at higher temperatures. It's essential to consult the datasheet and evaluate the op-amp's performance at the desired temperature range to ensure it meets the application requirements.
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The recommended input impedance for the LT6220CS8#PBF is typically in the range of 1kΩ to 10kΩ, while the output impedance is typically in the range of 10Ω to 100Ω. However, the optimal impedance values depend on the specific application and should be evaluated based on the circuit requirements.