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High Voltage Zero-Drift Operational Amplifier in SOT-23 with Extended Temperature Range
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.
LTC2050HVCS8#PBF by Analog Devices Inc 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.
Part # | Distributor | Description | Stock | Price | Buy | |
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DISTI #
51AK6370
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Newark | Op-Amp, 3Mhz, 0 To 70Deg C, Soic-8, No. Of Channels:1Channels, Gain Bandwidth Product:3Mhz, Supply Voltage Range:2.7V To ± 5.5V, Ic Case/Package:Soic, No. Of Pins:8Pins, Amplifier Type:Zero Drift, Input Offset Voltage:0.5Μv Rohs Compliant: Yes |Analog Devices LTC2050HVCS8#PBF RoHS: Compliant Min Qty: 1 Package Multiple: 1 Date Code: 1 Container: Bulk | 197 |
|
$2.3400 / $4.0500 | Buy Now |
DISTI #
505-LTC2050HVCS8#PBF-ND
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DigiKey | IC OPAMP ZERO-DRIFT 1 CIRC 8SO Min Qty: 1 Lead time: 10 Weeks Container: Tube |
2076 In Stock |
|
$2.0250 / $5.4900 | Buy Now |
DISTI #
584-LTC2050HVCS8#PBF
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Mouser Electronics | Precision Amplifiers Zero-Drift Op Amps in SOT-23 RoHS: Compliant | 187 |
|
$2.0800 / $4.0500 | Buy Now |
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Analog Devices Inc | Zero-Drift Op Amps in SOT-23 Package Multiple: 100 | 416 |
|
$2.0250 / $5.4900 | Buy Now |
DISTI #
LTC2050HVCS8PBF
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Richardson RFPD | AMPLIFIER - OP AMPS RoHS: Compliant Min Qty: 300 | 0 |
|
$2.0900 / $2.3000 | Buy Now |
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LTC2050HVCS8#PBF
Analog Devices Inc
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Datasheet
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LTC2050HVCS8#PBF
Analog Devices Inc
High Voltage Zero-Drift Operational Amplifier in SOT-23 with Extended Temperature Range
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Pbfree Code | No | |
Rohs Code | Yes | |
Part Life Cycle Code | Active | |
Ihs Manufacturer | ANALOG DEVICES INC | |
Package Description | SOP-8 | |
Pin Count | 8 | |
Manufacturer Package Code | 05-08-1610 (S8) | |
Reach Compliance Code | compliant | |
Samacsys Manufacturer | Analog Devices | |
Amplifier Type | OPERATIONAL AMPLIFIER | |
Average Bias Current-Max (IIB) | 0.0003 µA | |
Common-mode Reject Ratio-Nom | 130 dB | |
Input Offset Voltage-Max | 3 µV | |
JESD-30 Code | R-PDSO-G8 | |
JESD-609 Code | e3 | |
Length | 4.902 mm | |
Moisture Sensitivity Level | 1 | |
Neg Supply Voltage Limit-Max | -6 V | |
Neg Supply Voltage-Nom (Vsup) | -5 V | |
Number of Functions | 1 | |
Number of Terminals | 8 | |
Operating Temperature-Max | 125 °C | |
Operating Temperature-Min | -40 °C | |
Package Body Material | PLASTIC/EPOXY | |
Package Code | SOP | |
Package Equivalence Code | SOP8,.25 | |
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 | 2 V/us | |
Supply Voltage Limit-Max | 6 V | |
Supply Voltage-Nom (Vsup) | 5 V | |
Surface Mount | YES | |
Technology | CMOS | |
Temperature Grade | AUTOMOTIVE | |
Terminal Finish | Matte Tin (Sn) | |
Terminal Form | GULL WING | |
Terminal Pitch | 1.27 mm | |
Terminal Position | DUAL | |
Time@Peak Reflow Temperature-Max (s) | 30 | |
Unity Gain BW-Nom | 3000 | |
Width | 3.899 mm |
This table gives cross-reference parts and alternative options found for LTC2050HVCS8#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 LTC2050HVCS8#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 |
---|---|---|---|---|
LTC2050HVIS8#TRPBF | Analog Devices Inc | Check for Price | High Voltage Zero-Drift Operational Amplifier in SOT-23 with Extended Temperature Range | LTC2050HVCS8#PBF vs LTC2050HVIS8#TRPBF |
LTC2050HVIS8#TR | Linear Technology | Check for Price | LTC2050 - Zero-Drift Operational Amplifiers in SOT-23; Package: SO; Pins: 8; Temperature Range: -40°C to 85°C | LTC2050HVCS8#PBF vs LTC2050HVIS8#TR |
LTC2050HVIS8#TR | Analog Devices Inc | Check for Price | Operational Amplifier, 1 Func, 3uV Offset-Max, CMOS, PDSO8 | LTC2050HVCS8#PBF vs LTC2050HVIS8#TR |
LTC2050HVCS8 | Analog Devices Inc | Check for Price | Operational Amplifier, 1 Func, 3uV Offset-Max, CMOS, PDSO8 | LTC2050HVCS8#PBF vs LTC2050HVCS8 |
LTC2050HVCS8#PBF | Linear Technology | Check for Price | LTC2050 - Zero-Drift Operational Amplifiers in SOT-23; Package: SO; Pins: 8; Temperature Range: 0°C to 70°C | LTC2050HVCS8#PBF vs LTC2050HVCS8#PBF |
LTC2050HVIS8 | Linear Technology | Check for Price | LTC2050 - Zero-Drift Operational Amplifiers in SOT-23; Package: SO; Pins: 8; Temperature Range: -40°C to 85°C | LTC2050HVCS8#PBF vs LTC2050HVIS8 |
A good PCB layout for the LTC2050 involves keeping the input and output traces short and wide, using a solid ground plane, and placing the input and output capacitors close to the device. A 4-layer PCB with a dedicated ground plane is recommended.
To ensure stability, make sure to follow the recommended component values and PCB layout guidelines. Also, ensure that the input and output capacitors are of high quality and have low ESR. Additionally, a small series resistor (e.g., 10Ω) can be added to the output to improve stability.
The LTC2050 can handle input voltages up to 80V, but it's recommended to limit the input voltage to 60V or less to ensure reliable operation and to prevent damage to the device.
The LTC2050 is rated for operation up to 125°C, but its performance may degrade at high temperatures. It's recommended to derate the device's performance and ensure proper heat sinking to prevent overheating.
Use a voltage clamp or a TVS diode to protect the LTC2050 from overvoltage conditions. For overcurrent protection, use a fuse or a current-limiting resistor in series with the input. Additionally, consider using a supervisory circuit to monitor the device's operating conditions.