OP162/OP262/OP462 (Rev. H)

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  • Manufacturer or author: Analog Devices, Inc.
  • PDF pages: 20

Technical content

15 MHz Rail-to-Rail

Data Sheet OP162/OP262/OP462 Rev. H Document Feedback 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 that may result from its use. Specifications subject to change without notice. No license is granted by implication or otherwise under any patent or patent rights of Analog Devices. Trademarks and registered trademarks are the property of their respective owners. Tel: 781.329.4700 ©2013 Analog Devices, Inc. All rights reserved. Technical Support www.analog.com

FEATURES

Wide bandwidth: 15 MHz Low offset voltage: 325 µV max Low noise: 9.5 nV/√Hz @ 1 kHz Single-supply operation: 2.7 V to 12 V Rail-to-rail output swing Low TCVOS: 1 µV/°C typ High slew rate: 13 V/µs No phase inversion Unity-gain stable

APPLICATIONS

The OP162 (single), OP262 (dual), and OP462 (quad) rail-to- rail 15 MHz amplifiers feature the extra speed new designs require, with the benefits of precision and low power operation. With their incredibly low offset voltage of 45 µV (typical) and low noise, they are perfectly suited for precision filter applica- tions and instrumentation. The low supply current of 500 µA (typical) is critical for portable or densely packed designs. In addition, the rail-to-rail output swing provides greater dynamic range and control than standard video amplifiers. These products operate from single supplies as low as 2.7 V to dual supplies of ±6 V . The fast settling times and wide output swings recommend them for buffers to sampling A/D converters. The output drive of 30 mA (sink and source) is needed for many audio and display applications; more output current can be supplied for limited durations. The OPx62 family is specified over the extended industrial temperature range (–40°C to +125°C). The single OP162 amplifiers are available in 8-lead SOIC package. The dual OP262 amplifiers are available in 8-lead SOIC and TSSOP packages. The quad OP462 amplifiers are available in 14-lead, narrow-body SOIC and TSSOP packages. PIN CONFIGURATIONS Figure 1. 8-Lead Narrow-Body SOIC (S Suffix) Figure 2. 8-Lead TSSOP (RU Suffix) and Figure 3. 14-Lead Narrow-Body SOIC (S Suffix) and

OP162/OP262/OP462 Data Sheet Rev. H | Page 2 of 20 TABLE OF CONTENTS

REVISION HISTORY

4/13—Rev. G to Rev. H Combined Figure 2 and Figure 3; Combined Figure 4 and 5/12—Rev. F to Rev. G 1/05—Rev. E to Rev. F Changes to Absolute Maximum Ratings Table 4 and Table 5 .... 6 12/04—Rev. D to Rev. E 10/02—Rev. C to Rev. D

@ VS = 5.0 V , VCM = 0 V, TA = 25°C, unless otherwise noted. Table 1. Electrical Characteristics 1 Long-term offset voltage is guaranteed by a 1000 hour life test performed on three independent lots at 125°C, with an LTPD of 1.3. 2 Offset voltage drift is the average of the −40°C to +25°C delta and the +25°C to +125°C delta.

@ VS = 3.0 V , VCM = 0 V, TA = 25°C, unless otherwise noted. Table 2. Electrical Characteristics 1 Long-term offset voltage is guaranteed by a 1000 hour life test performed on three independent lots at 125°C, with an LTPD of 1.3.

@ VS = ±5.0 V , VCM = 0 V, TA = 25°C, unless otherwise noted. Table 3. Electrical Characteristics 1 Long-term offset voltage is guaranteed by a 1000 hour life test performed on three independent lots at +125°C, with an LTPD of 1.3. 2 Offset voltage drift is the average of the −40°C to +25°C delta and the +25°C to +125°C delta.

OP162/OP262/OP462 Data Sheet Rev. H | Page 6 of 20 ABSOLUTE MAXIMUM RATINGS Table 4. Parameter Min Supply Voltage ±6 V Input Voltage1 ±6 V Differential Input Voltage2 ±0.6 V Internal Power Dissipation SOIC (S) Observe Derating Curves TSSOP (RU) Observe Derating Curves Output Short-Circuit Duration Observe Derating Curves Storage Temperature Range –65°C to +150°C Operating Temperature Range –40°C to +125°C Junction Temperature Range –65°C to +150°C Lead Temperature Range (Soldering, 10 sec) 300°C

1 For supply voltages greater than 6 V, the input voltage is limited to less than

or equal to the supply voltage. 2 For differential input voltages greater than 0.6 V, the input current should be limited to less than 5 mA to prevent degradation or destruction of the input devices. 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. Table 5. Package Type θJA1 θJC Unit 8-Lead SOIC (S) 157 56 °C/W 8-Lead TSSOP (RU) 208 °C/W 14-Lead SOIC (S) 105 °C/W 14-Lead TSSOP (RU) 148 °C/W 1 θJA is specified for the worst-case conditions, that is, θJA is specified for a device soldered in circuit board for SOIC, and TSSOP packages. ESD CAUTION

Figure 4. OP462 Input Offset Voltage Distribution Figure 5. OP462 Input Offset Voltage Drift (TCVOS) Figure 6. OP462 Input Bias Current vs. Common-Mode Voltage Figure 7. OP462 Input Offset Voltage vs. Temperature Figure 8. OP462 Input Bias Current vs. Temperature Figure 9. OP462 Input Offset Current vs. Temperature

720 OP AMPS

360 OP AMPS

Figure 34. Maximum Power Dissipation vs. Temperature for the output, and the noninverting input tied to the ground plane. can be produced after power-up is important. The OPx62 family has a rapid settling time after power-up. used to find the power-on settling times for the device. Figure 35. Oscilloscope Photo of VS and VOUT Figure 36. Test Circuit for Power-On Settling Time resistor and 300 pF capacitor placed in parallel. output response with the network added. Figure 37. Snubber Network Compensation for Capacitive Loads Figure 38. A Photo of a Ringing Square Wave

0 TO +5V

the volume control potentiometers. Figure 43. Headphone Output Amplifier Figure 44. High Speed Instrumentation Amplifier to optimize common-mode rejection. time of 3.9 µs for the negative slope.

10 TURN

Figure 48. 8-Lead Standard Small Outline Package [SOIC_N] Narrow Body Figure 49. 8-Lead Thin Shrink Small Outline Package [TSSOP) REFERENCE ONLY AND ARE NOT APPROPRIATE FOR USE IN DESIGN.

0.65 BSC

6.40 BSC

Figure 50. 14-Lead Thin Shrink Small Outline Package [TSSOP] Figure 51. 14-Lead Standard Small Outline Package [SOIC_N] Narrow Body REFERENCE ONLY AND ARE NOT APPROPRIATE FOR USE IN DESIGN.

OP162/OP262/OP462 Data Sheet Rev. H | Page 20 of 20 ORDERING GUIDE Model1 Temperature Range Package Description Package Option OP162GSZ −40°C to +125°C 8-Lead SOIC_N S-Suffix (R-8) OP162GSZ-REEL −40°C to +125°C 8-Lead SOIC_N S-Suffix (R-8) OP162GSZ-REEL7 −40°C to +125°C 8-Lead SOIC_N S-Suffix (R-8) OP262DRUZ-REEL −40°C to +125°C 8-Lead TSSOP RU-8 OP262GS −40°C to +125°C 8-Lead SOIC_N S-Suffix (R-8) OP262GS-REEL −40°C to +125°C 8-Lead SOIC_N S-Suffix (R-8) OP262GS-REEL7 −40°C to +125°C 8-Lead SOIC_ S-Suffix (R-8) OP262GSZ −40°C to +125°C 8-Lead SOIC_N S-Suffix (R-8) OP262GSZ-REEL −40°C to +125°C 8-Lead SOIC_N S-Suffix (R-8) OP262GSZ-REEL7 −40°C to +125°C 8-Lead SOIC_N S-Suffix (R-8) OP262HRU-REEL −40°C to +125°C 8-Lead TSSOP RU-8 OP262HRUZ −40°C to +125°C 8-Lead TSSOP RU-8 OP262HRUZ-REEL −40°C to +125°C 8-Lead TSSOP RU-8 OP462GS −40°C to +125°C 14-Lead SOIC_ S-Suffix (R-14) OP462GS-REEL −40°C to +125°C 14-Lead SOIC_N S-Suffix (R-14) OP462GS-REEL7 −40°C to +125°C 14-Lead SOIC_N S-Suffix (R-14) OP462GSZ −40°C to +125°C 14-Lead SOIC_N S-Suffix (R-14) OP462GSZ-REEL −40°C to +125°C 14-Lead SOIC_N S-Suffix (R-14) OP462GSZ-REEL7 −40°C to +125°C 14-Lead SOIC_N S-Suffix (R-14) OP462HRU-REEL −40°C to +125°C 14-Lead TSSOP RU-14 OP462HRUZ-REEL −40°C to +125°C 14-Lead TSSOP RU-14 1 Z = RoHS Compliant Part. ©2013 Analog Devices, Inc. All rights reserved. Trademarks and registered trademarks are the prop erty of their respective owners. D00288-0-4/13(H)