Analog Mixed Signal Fairchild Semiconductor

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Presentation transcript:

Analog Mixed Signal Fairchild Semiconductor Amplifier Products Analog Mixed Signal Fairchild Semiconductor

Fairchild Amplifier Products FAN4174 FAN4931 FAN4274 FAN4852 Fairchild: Concept Products Company overview

FAN4174 Ultra-Low Cost, Rail-to-Rail I/O, CMOS Amplifier Features 200µA supply current per amplifier 3.7MHz bandwidth Output swing to within 10mV of either rail Input voltage range exceeds the rails 3V/µs slew rate 25nV/ √Hz input voltage noise Package 5 Lead SC-70 FAN4174 is an ultra-low cost voltage feedback amplifier with CMOS inputs that consumes only 200μA of supply current, while providing ±33mA of output short-circuit current. This amplifier is designed to operate from 2.5Vto 5V supplies. The common mode voltage range extends beyond the negative and positive rails. The FAN4931 is designed on a CMOS process and provides 3.7MHz of bandwidth and 3V/μs of slew rate at a supply voltage of 5V. The combination of low power, rail-to-rail performance, low-voltage operation, and tiny package options make this amplifier well suited for use in general-purpose and battery-powered applications.

FAN4931 Ultra-Low Cost, Rail-to-Rail I/O, CMOS Amplifier Features 200µA supply current per amplifier 3.7MHz bandwidth Output swing to within 10mV of either rail Input voltage range exceeds the rails 3V/µs slew rate 25nV/ √Hz input voltage noise Small lead free FAN4931 is an ultra-low cost voltage feedback amplifier with CMOS inputs that consumes only 200μA of supply current, while providing ±33mA of output short-circuit current. This amplifier is designed to operate from 2.5Vto 5V supplies. The common mode voltage range extends beyond the negative and positive rails. The FAN4931 is designed on a CMOS process and provides 3.7MHz of bandwidth and 3V/μs of slew rate at a supply voltage of 5V. The combination of low power, rail-to-rail performance, low-voltage operation, and tiny package options make this amplifier well suited for use in general-purpose and battery-powered applications.

FAN4274 Ultra-Low Cost, Dual Rail-to-Rail I/O, CMOS Amplifier Features 200µA supply current per amplifier 3.7MHz bandwidth Output swing to within 10mV of either rail Input voltage range exceeds the rails 3V/µs slew rate 25nV/ √Hz input voltage noise Package 8 Lead MSOP FAN4931 is an ultra-low cost voltage feedback amplifier with CMOS inputs that consumes only 200μA of supply current, while providing ±33mA of output short-circuit current. This amplifier is designed to operate from 2.5Vto 5V supplies. The common mode voltage range extends beyond the negative and positive rails. The FAN4931 is designed on a CMOS process and provides 3.7MHz of bandwidth and 3V/μs of slew rate at a supply voltage of 5V. The combination of low power, rail-to-rail performance, low-voltage operation, and tiny package options make this amplifier well suited for use in general-purpose and battery-powered applications.

FAN4852 Ultra-Low Cost, Rail-to-Rail I/O, CMOS Amplifier Features 0.8mA Supply Current 9 MHz Bandwidth Output Swing to Within 10mV of Either Rail Input Voltage Range Exceeds the Rails 4.5V/μs Slew Rate 11nV/√Hz Input Voltage Noise Fully Specified at +3.3V and +5V Supplies Description The FAN4852 is a dual low cost, rail to rail output, low power CMOS amplifier that consumes only 800μA of supply current, while providing ±30mA of output shortcircuit current. This amplifier is designed to operate from 2.5V to 5V supplies. Additionally, the FAN4852 is EMI hardened, which will minimize any EMI interference. It has a maximum input offset voltage of 1mV and an input common-mode range that includes ground. The FAN4852 is designed on a CMOS process and provides 8MHz of bandwidth and 4.5V/μs of slew rate. The combination of low power, low-voltage operation, and tiny package option make this amplifier well suited for use in general-purpose and battery-powered applications.. Description The FAN4852 is a dual low cost, rail to rail output, low power CMOS amplifier that consumes only 800μA of supply current, while providing ±30mA of output shortcircuit current. This amplifier is designed to operate from 2.5V to 5V supplies. Additionally, the FAN4852 is EMI hardened, which will minimize any EMI interference. It has a maximum input offset voltage of 1mV and an input common-mode range that includes ground. The FAN4852 is designed on a CMOS process and provides 8MHz of bandwidth and 4.5V/μs of slew rate. The combination of low power, low-voltage operation, and tiny package option make this amplifier well suited for use in general-purpose and battery-powered applications..

Target Release Quarter Fairchild Amplifiers Target Release Quarter Part Number Description Key Market Target Customers Key Competition Released FAN4174 Single 4MHz (G=1), 2.7V to 5V General Purpose, Ultra-portable General market,WD? OPA340, TLV2461 FAN4931 Samsung/Seagate Rohm FAN4274 Dual 4MHz (G=1), 2.7V to 5V Seagate OPA2340, TLV2462 FAN4852 Dual 9MHz (G=1), 2.7V to 5V HDD, General Purpose, Ultra-Portable NSC/TI Concept FAN4851 Single 9MHz (G=1), 2.7V to 5V Western Digital

Fairchild Amplifiers Fairchild: Company Overview Fairchild: Amplifier products Fairchild: Concept Products FAN4851 Company overview

FAN4851 Ultra-Low Cost, Rail-to-Rail I/O, CMOS Amplifier CONCEPT Features 0.8mA Supply Current 8 MHz Bandwidth Output Swing to Within 10mV of Either Rail Input Voltage Range Exceeds the Rails 4.5V/μs Slew Rate 11nV/√Hz Input Voltage Noise Fully Specified at +3.3V and +5V Supplies Description The FAN4851 is a single low cost, rail to rail output, low power CMOS amplifier that consumes only 800μA of supply current, while providing ±30mA of output shortcircuit current. This amplifier is designed to operate from 2.5V to 5V supplies. Additionally, the FAN4852 is EMI hardened, which will minimize any EMI interference. It has a maximum input offset voltage of 1mV and an input common-mode range that includes ground. The FAN4852 is designed on a CMOS process and provides 8MHz of bandwidth and 4.5V/μs of slew rate. The combination of low power, low-voltage operation, and tiny package option make this amplifier well suited for use in general-purpose and battery-powered applications..

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