|Description||800 Mhz, 50 MW Current Feedback Amplifier|
|Datasheet||Download AD8001AN datasheet
|Cross ref.||Similar parts: EL2072CN, HFA1102IP, HFA1105IP, HFA1109IPE, HFA1135IPE, CLC401AIB, CLC401AID, CLC401AJP, CLC404AID, CLC404AJP|
FEATURES Excellent Video Specifications (RL = +2) Gain Flatness to 100 MHz 0.01% Differential Gain Error 0.025 Differential Phase Error Low Power 5.5 mA Max Power Supply Current (55 mW) High Speed and Fast Settling 880 MHz, 3 dB Bandwidth +1) 440 MHz, 3 dB Bandwidth V/ s Slew Rate 10 ns Settling Time to 0.1% Low Distortion 65 dBc THD, MHz 33 dBm 3rd Order Intercept, = 10 MHz 66 dB SFDR, = 5 MHz High Output Drive 70 mA Output Current Drives Up to Four Back-Terminated Loads (75 Each) While Maintaining Good Differential Gain/Phase Performance (0.05%/0.25 ) APPLICATIONS A-to-D Driver Video Line Driver Professional Cameras Video Switchers Special Effects RF Receivers PRODUCT DESCRIPTION
transimpedance linearization circuitry. This allows it to drive video loads with excellent differential gain and phase performance on only mW of power. The is a current feedback amplifier and features gain flatness to 100 MHz while offering differential gain and phase error of 0.01% and 0.025°. This makes the AD8001 ideal for professional video electronics such as cameras and video switchers. Additionally, the AD8001's low distortion and fast settling make it ideal for buffer high-speed A-to-D converters. The AD8001 offers low power 5.5 mA max (VS 5 V) and can run on a single +12 V power supply, while being capable of delivering over mA of load current. These features make this amplifier ideal for portable and battery-powered applications where size and power are critical. The outstanding bandwidth of 800 MHz along with 1200 V/µs of slew rate make the AD8001 useful in many general purpose high-speed applications where dual power supplies 6 V and single supplies from 12 V are needed. The AD8001 is available in the industrial temperature range to +85°C.
The is a low power, high-speed amplifier designed to operate 5 V supplies. The AD8001 features unique
Information furnished by Analog Devices is believed to be accurate and reliable. However, no responsibility is assumed by Analog Devices for its use, nor for any infringements of patents or other rights of third parties which may result from its use. No license is granted by implication or otherwise under any patent or patent rights of Analog Devices. One Technology Way, P.O. Box 9106, Norwood, MA 02062-9106, U.S.A. Tel: 781/329-4700 World Wide Web Site: http://www.analog.com Fax: 781/326-8703 © Analog Devices, Inc., 1999
DYNAMIC PERFORMANCE 3 dB Small Signal Bandwidth, N Package R Package RT Package Bandwidth for 0.1 dB Flatness N Package R Package RT Package Slew Rate Settling Time to 0.1% Rise and Fall Time NOISE/HARMONIC PERFORMANCE Total Harmonic Distortion Input Voltage Noise Input Current Noise Differential Gain Error Differential Phase Error Third Order Intercept 1 dB Gain Compression SFDR DC PERFORMANCE Input Offset Voltage TMIN TMAX Offset Drift Input Bias Current TMIN TMAX +Input Bias Current Open Loop Transresistance INPUT CHARACTERISTICS Input Resistance Input Capacitance Input Common-Mode Voltage Range Common-Mode Rejection Ratio Offset Voltage Input Current +Input Current OUTPUT CHARACTERISTICS Output Voltage Swing Output Current Short Circuit Current POWER SUPPLY Operating Range Quiescent Current Power Supply Rejection Ratio Input Current +Input Current
TMIN TMAX 2.5 V TMIN TMAX +Input Input +Input VCM 2.5 V VCM V, T MIN TMAX VCM V, T MIN TMAX = 37.5TMIN TMAX +VS +6 V, VS 5 V VS 6 V, +VS +5 V TMIN TMAX TMIN TMAX
ABSOLUTE MAXIMUM RATINGS 1 MAXIMUM POWER DISSIPATION
Supply Voltage. 12.6 V Internal Power Dissipation2 Plastic DIP Package (N). 1.3 W Small Outline Package (R). W SOT-23-5 Package (RT). 0.5 W Input Voltage (Common Mode). ± VS Differential Input Voltage. 1.2 V Output Short Circuit Duration. Observe Power Derating Curves Storage Temperature Range to +125°C Operating Temperature Range (A Grade). to +85°C Lead Temperature Range (Soldering 10 sec). +300°C
NOTES 1 Stresses above those listed under Absolute Maximum Ratings may cause permanent damage to the device. This is a stress rating only; functional operation of the device at these or any other conditions above those indicated in the operational section of this specification is not implied. Exposure to absolute maximum rating conditions for extended periods may affect device reliability. 2 Specification is for device in free air: 8-Lead Plastic DIP Package: 90°C/W 8-Lead SOIC Package: 155°C/W 8-Lead Cerdip Package: = 110 °C/W 5-Lead SOT-23-5 Package: = 260 °C/W
The maximum power that can be safely dissipated by the AD8001 is limited by the associated rise in junction temperature. The maximum safe junction temperature for plastic encapsulated devices is determined by the glass transition temperature of the plastic, approximately +150° C. Exceeding this limit temporarily may cause a shift in parametric performance due to a change in the stresses exerted on the die by the package. Exceeding a junction temperature of +175°C for an extended period can result in device failure. While the AD8001 is internally short circuit protected, this may not be sufficient to guarantee that the maximum junction temperature C) is not exceeded under all conditions. To ensure proper operation, it is necessary to observe the maximum power derating curves.2.0 MAXIMUM POWER DISSIPATION Watts +150C 8-LEAD PLASTIC DIP PACKAGE
Figure 3. Plot of Maximum Power Dissipation vs. Temperature
NOTES 1 Standard Military Drawing Device. 2 Refer to Evaluation Board section.
Package Description 8-Lead Plastic DIP 8-Lead Cerdip 8-Lead SOIC 13" Tape and REEL 7" Tape and REEL 13" Tape and REEL 7" Tape and REEL Die Form 8-Lead Cerdip SOIC Evaluation Board, = +2
CAUTION ESD (electrostatic discharge) sensitive device. Electrostatic charges as high 4000 V readily accumulate on the human body and test equipment and can discharge without detection. Although the AD8001 features proprietary ESD protection circuitry, permanent damage may occur on devices subjected to high energy electrostatic discharges. Therefore, proper ESD precautions are recommended to avoid performance degradation or loss of functionality.
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