OP27 TI | Alldatasheet

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OP27A, OP27C LOW-NOISE HIGH-SPEED PRECISION OPERATIONAL AMPLIFIERS SLOS100E − FEBRUARY 1989 − REVISED FEBRUARY 2010 1POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 /C0068Replacements for ADI, PMI and LTC OP27 Series Features of OP27A and OP27C: /C0068Maximum Equivalent Input Noise Voltage: 3.8 nV/√Hz at 1 kHz 5.5 nV/√Hz at 10 kHz /C0068Very Low Peak-to-Peak Noise Voltage at 0.1 Hz to 10 Hz . . . 80 nV Typ /C0068Low Input Offset Voltage OP27A ...2 5 μV Max OP27C . . . 100 μV Max /C0068High Voltage Amplification OP27A ...1 V / μV Min OP27C ...0 . 7 V /μV Min

description

The OP27 operational amplifiers combine out- standing noise performance with excellent precision and high-speed specifications. The wideband noise is only 3 nV/√Hz and with the 1/f noise corner at 2.7 Hz, low noise is maintained for all low-frequency applications. The outstanding characteristics of the OP27 make these devices excellent choices for low-noise amplifier applications requiring precision performance and reliability. The OP27 series is compensated for unity gain. The OP27A and OP27C are characterized for operation over the full military temperature range of −55°C to 125°C. AVAILABLE OPTIONS V max STABLE PACKAGE TA VIOmax AT 25°C STABLE GAIN CERAMIC DIP (JG) CHIP CARRIER (FK) 55°C to 125°C 25 μV 1 OP27AJG OP27AFK −55°C to 125°C 100 μV 1 OP27CJG — Copyright © 2010, Texas Instruments IncorporatedPRODUCTION DATA information is current as of publication date. Products conform to specifications per the terms of Texas Instruments standard warranty. Production processing does not necessarily include testing of all parameters. Please be aware that an important notice concerning avail ability, standard warranty, and use in critical applications of Texas Instruments semiconductor products and disclaimers thereto appears at the end of this data sheet. VIOTRIM IN− IN + VCC − VIOTRIM VCC + OUT NC JG PACKAGE (TOP VIEW) IN+ IN − OUT VIO TRIM symbol 3 2 1 20 19 91 0 1 1 1 2 1 3 NC VCC + NC OUT NC NC 1N− NC IN+ NC FK PACKAGE (TOP VIEW)NC NC NC NC NC NC NC − No internal connection CC −V Pin numbers are for the JG packages. IOV TRIM NC IOV TRIM

OP27A, OP27C LOW-NOISE HIGH-SPEED PRECISION OPERATIONAL-AMPLIFIER Template Release Date: 7−11−94 SLOS100E − FEBRUARY 1989 − REVISED FEBRUARY 2010 2POST OFFICE BOX 655303 DALLAS, TEXAS 75265• schematic IN + IN − Q1A Q1B Q2B Q2A Q11 Q12 Q27 Q28 Q26 Q46 Q19 Q20 Q45 Q22 Q24Q23 Q21 VIO TRIM V IO TRIM VCC + OUT VCC − 480 μA 750 μA 260 μA 240 μA 120 μA 340 μA C1† † C1 = 120 pF for OP27

OP27A, OP27C LOW-NOISE HIGH-SPEED PRECISION OPERATIONAL-AMPLIFIER SLOS100E − FEBRUARY 1989 − REVISED FEBRUARY 2010 3POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 absolute maximum ratings over operating free-air temperature range (unless otherwise noted) NOTES: 1. All voltage values are with respect to the midpoint between V CC + and VCC − unless otherwise noted. 2. The inputs are protected by back-to-back diodes. Current-limiting resistors are not used in order to achieve low noise. Exces sive input current will flow if a differential input voltage in excess of approximately ±0.7 V is applied between the inputs unless some limiting resistance is used. DISSIPATION RATING TABLE PACKAGE TA ≤ 25°C POWER RATING DERATING FACTOR ABOVE TA = 25°C TA = 85°C POWER RATING TA = 125°C POWER RATING JG FK 1050 mW 1375 mW 8.4 mW/°C 11.0 mW/°C 546 mW 715 mW 210 mW 275 mW

OP27A, OP27C LOW-NOISE HIGH-SPEED PRECISION OPERATIONAL-AMPLIFIER SLOS100E − FEBRUARY 1989 − REVISED FEBRUARY 2010

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recommended operating conditions OP27A OP27C UNITMIN NOM MAX MIN NOM MAX UNIT Supply voltage, VCC + 4 15 22 4 15 22 V Supply voltage, VCC − −4 −15 −22 −4 −15 −22 V Common mode input voltage V VCC ± = ± 15 V, T A = 25°C ± 11 ±11 VCommon-mode input voltage, VIC VCC ± = ± 15 V, T A = − 55°C to 125°C ±10.3 ±10.2 V Operating free-air temperature, TA −55 125 −55 125 °C electrical characteristics at specified free-air temperature, VCC± = ±15 V (unless otherwise noted) PARAMETER TEST CONDITIONS T † OP27A OP27C UNITPARAMETER TEST CONDITIONS TA† MIN TYP MAX MIN TYP MAX UNIT V Input offset voltage VO = 0, V IC = 0 25°C 10 25 30 100 VVIO Input offset voltage VO = 0, VIC = 0 RS = 50 Ω, See Note 3 Full range 60 300 μV αVIO Average temperature coefficient of input offset voltage Full range 0.2 0.6 0.4 1.8 μV/°C Long-term drift of input offset voltage See Note 4 0.2 1 0.4 2 μV/mo I Input offset current V 0V 0 25°C 7 35 12 75 nAIIO Input offset current V O = 0, V IC = 0 Full range 50 135 nA I Input bias current V 0V 0 25°C ±10 ±40 ±15 ±80 nAIIB Input bias current V O = 0, V IC = 0 Full range ±60 ±150 nA V Common-mode input 25°C to −1 1 to −1 1 VVICR Common mode input voltage range Full range 10.3 to −10.3 10.5 to −10.5 V VOM Peak output voltage swing RL ≥ 0.6 kΩ ±10 ±11.5 ±10 ±11.5 VVOM Peak output voltage swing RL ≥ 2 kΩ Full range ±11.5 10.5 V RL ≥ 2 kΩ, V O = ±10 V 1000 1800 700 1500 Large signal differential RL ≥ 1 kΩ, V O = ±10 V 800 1500 1500 AVD Large-signal differential voltage amplification RL ≥ 0.6 kΩ, V O = ±1 V, VCC± = ± 4 V 250 700 200 500 V/mV RL ≥ 2 kΩ, V O = ±10 V Full range 600 300 ri(CM) Common-mode input resistance 3 2 GΩ ro Output resistance VO = 0, I O = 0 25°C 70 70 Ω CMRR Common-mode rejection VIC = ±11 V 25°C 114 126 100 120 dBCMRR Common mode rejection ratio VIC = ±10 V Full range 110 94 dB k Supply voltage rejection VCC ± = ±4 V to ±18 V 25°C 100 120 94 118 dBkSVR Supply voltage rejection ratio VCC ± = ±4.5 V to ±18 V Full range 96 86 dB † Full range is − 55°C to 125°C. NOTES: 3. Input offset voltage measurements are performed by automatic test equipment approximately 0.5 seconds after applying po wer. 4. Long-term drift of input offset voltage refers to the average trend line of offset voltage versus time over extended periods after the first 30 days of operation. Excluding the initial hour of operation, changes in V IO during the first 30 days are typically 2.5 μV (see Figure 3).

OP27A, OP27C LOW-NOISE HIGH-SPEED PRECISION OPERATIONAL-AMPLIFIER SLOS100E − FEBRUARY 1989 − REVISED FEBRUARY 2010 5POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 OP27 operating characteristics, VCC± = ±15 V, TA = 25/C0053C PARAMETER TEST CONDITIONS OP27A OP27C UNITPARAMETER TEST CONDITIONS MIN TYP MAX MIN TYP MAX UNIT SR Slew rate AVD ≥ 1, R L ≥ 2 kΩ 1.7 2.8 1.7 2.8 V/μs VN(PP) Peak-to-peak equivalent input noise voltage f = 0.1 Hz to 10 Hz, R S = 20 Ω, See Figure 26 0.225 0.375 0.225 0.375 μV V Equivalent input noise voltage f = 10 Hz, R S = 20 Ω 3.5 8 3.8 8 nV/√HVn Equivalent input noise voltage f = 1 kHz, R S = 20 Ω 3 4 3.2 4 nV/√Hz I Equivalent input noise current f = 10 Hz, See Figure 27 5 25 5 25 pA/√HIn Equivalent input noise current f = 1 kHz, See Figure 27 0.7 2.5 0.7 2.5 pA/√Hz Gain-bandwidth product f = 100 kHz 5 8 5 8 MHz

OP27A, OP27C LOW-NOISE HIGH-SPEED PRECISION OPERATIONAL-AMPLIFIER SLOS100E − FEBRUARY 1989 − REVISED FEBRUARY 2010

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VIO Input offset voltage vs Temperature 1 ΔVIO Change in input offset voltage vs Time after power on vs Time (long-term drift) IIO Input offset current vs Temperature 4 IIB Input bias current vs Temperature 5 VICR Common-mode input voltage range vs Supply voltage 6 VOM Maximum peak output voltage vs Load resistance 7 VO(PP) Maximum peak-to-peak output voltage vs Frequency 8 AVD Differential voltage amplification vs Supply voltage vs Load resistance vs Frequency 11, 12 CMRR Common-mode rejection ratio vs Frequency 13 kSVR Supply voltage rejection ratio vs Frequency 14 SR Slew rate vs Temperature 15 φm Phase margin vs Temperature 16 φ Phase shift vs Frequency 11 Vn Equivalent input noise voltage vs Bandwidth vs Source resistance vs Supply voltage vs Temperature vs Frequency Gain-bandwidth product vs Temperature 16 IOS Short-circuit output current vs Time 22 ICC Supply current vs Supply voltage 23 Pulse response Small signal Large signal

OP27A, OP27C LOW-NOISE HIGH-SPEED PRECISION OPERATIONAL-AMPLIFIER SLOS100E − FEBRUARY 1989 − REVISED FEBRUARY 2010

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− Input Offset Current − nA TA − Free-Air Temperature − °C − 75 − 50 − 25 0 50 75 100 12525 VCC ± = ±15 V OP27C OP27A INPUT BIAS CURRENT vs FREE-AIR TEMPERATURE TA − Free-Air Temperature − °C ± 50 ± 40 ± 30 ± 20 ± 10 − 50 − 25 0 50 75 100 12525 IIO − Input Bias Current − nAIIB − 75 OP27C OP27A VCC ± = ±15 V Figure 4 Figure 5 COMMON-MODE INPUT VOLTAGE RANGE LIMITS vs SUPPLY VOLTAGE 0 ±5 ±10 ±15 ±20 VCC + − Supply Voltage − V VICR − Common-Mode Input Voltage Range Limits − V TA = −55°C TA = 125°C TA = − 55°C TA = 125°C TA = 25°C TA = 25°C − Maximum Peak Output Voltage − VVOM MAXIMUM PEAK OUTPUT VOLTAGE vs LOAD RESISTANCE 0.1 1 10 R L − Load Resistance − kΩ − 4 − 8 − 12 − 16 VCC ± = ± 15 V TA = 25°C Positive Swing Negative Swing ÁÁ ÁÁ ÁÁ VICR Figure 6 Figure 7

OP27A, OP27C LOW-NOISE HIGH-SPEED PRECISION OPERATIONAL-AMPLIFIER SLOS100E − FEBRUARY 1989 − REVISED FEBRUARY 2010

10 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265

VOLTAGE AMPLIFICATION AND PHASE SHIFT vs FREQUENCY − 5 10 100 f − Frequency − Hz − 10 − Differential Voltage Amplification − dBAVD 80° 100° 120° 140° 160° 180° 200° 220° Phase Shift AVD φm = 70° VCC ± = ±15 V RL = 1 kΩ TA = 25°C Figure 11. OP27A LARGE-SIGNAL DIFFERENTIAL VOLTAGE AMPLIFICATION vs FREQUENCY f − Frequency − Hz VCC ± = ±15 V RL = 2 kΩ TA = 25°C CMRR − Common-Mode Rejection Ratio − dB 1 k OP27A COMMON-MODE REJECTION RATIO vs FREQUENCY 140 10 k 100 k 1 M 10 M f − Frenquency − Hz VCC ± = ±15 V VIC = ± 10 V TA = 25°C 120 100 140 120 100 −20 0.1 1 10 100 1 k 10 k 1 M 100 M − Differential Voltage Amplification − dBAVD OP27A OP27A Figure 12 Figure 13

OP27A, OP27C LOW-NOISE HIGH-SPEED PRECISION OPERATIONAL-AMPLIFIER SLOS100E − FEBRUARY 1989 − REVISED FEBRUARY 2010

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V EQUIVALENT INPUT NOISE VOLTAGE vs BANDWIDTH VCC ± = ±15 V RS = 20 Ω TA = 25°C nV/ Hz n − Equivalent Input Noise Voltage − Total Equivalent Input Noise Voltage − μV 0.1 0.01 0.1 11 0 100 Bandwidth − kHz (0.1 Hz to frequency indicated) TOTAL EQUIVALENT INPUT NOISE VOLTAGE vs SOURCE RESISTANCE 10 k1 k100 100 RS − Source Resistance − Ω RS = R1 + R2 f = 1 kHz Resistor Noise Only f = 10 Hz VCC ± = ±15 V BW = 1 Hz TA = 25°C Figure 17 Figure 18 nV/ Hz OP27A EQUIVALENT INPUT NOISE VOLTAGE vs TOTAL SUPPLY VOLTAGE VCC +− VCC − − Total Supply Voltage − V RS = 20 Ω BW = 1 Hz TA = 25°C f = 10 Hz 01 0 2 0 3 0 4 0 f = 1 kHz − 50 − 25 0 25 50 75 100 12 5 TA − Free-Air Temperature − °C OP27A EQUIVALENT INPUT NOISE VOLTAGE vs FREE-AIR TEMPERATURE VCC ± = ±15 V RS = 20 Ω BW = 1 Hz Vn − Equivalent Input Noise Voltage − nV/ HzVn − Equivalent Input Noise Voltage − f = 10 Hz f = 1 kHz Figure 19 Figure 20

OP27A, OP27C LOW-NOISE HIGH-SPEED PRECISION OPERATIONAL-AMPLIFIER SLOS100E − FEBRUARY 1989 − REVISED FEBRUARY 2010

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V OP27 VOLTAGE FOLLOWER SMALL-SIGNAL PULSE RESPONSE − 20 − 40 − 60 − 80 O − Output Voltage − mV t − Time − μs 0 0.5 1 1.5 2 2.5 3 VCC ± = ±15 V AV = 1 CL = 15 pF TA = 25°C VO − Output Voltage − V OP27 VOLTAGE FOLLOWER LARGE-SIGNAL PULSE RESPONSE − 2 − 4 − 6 − 8 t − Time − μs 02468 1 0 1 2 VCC ± = ± 15 V AV = − 1 TA = 25°C Figure 24 Figure 25

APPLICATION INFORMATION

The OP27 series devices can be inserted directly onto OP07, OP05, μA725, and SE5534 sockets with or without removing external compensation or nulling components. In addition, the OP27 can be fitted to μA741 sockets by removing or modifying external nulling components. noise testing Figure 26 shows a test circuit for 0.1-Hz to 10-Hz peak-to-peak noise measurement of the OP27. The frequency response of this noise tester indicates that the 0.1-Hz corner is defined by only one zero. Because the time limit acts as an additional zero to eliminate noise contributions from the frequency band below 0.1 Hz, the test time to measure 0.1-Hz to 10-Hz noise should not exceed 10 seconds. Measuring the typical 80-nV peak-to-peak noise performance of the OP27 requires the following special test precautions:

OP27A, OP27C LOW-NOISE HIGH-SPEED PRECISION OPERATIONAL-AMPLIFIER SLOS100E − FEBRUARY 1989 − REVISED FEBRUARY 2010 15POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 noise testing (continued) 1. The device should be warmed up for at least five minutes. As the operational amplifier warms up, the offset voltage typically changes 4 μV due to the chip temperature increasing from 10°C to 20°C starting from the moment the power supplies are turned on. In the 10-s measurement interval, these temperature-induced effects can easily exceed tens of nanovolts. 2. For similar reasons, the device should be well shielded from air currents to eliminate the possibility of thermoelectric effects in excess of a few nanovolts, which would invalidate the measurements. 3. Sudden motion in the vicinity of the device should be avoided, as it produces a feedthrough effect that increases observed noise. 4.3 kΩ 110 kΩ2.2 μF Oscilloscope Rin = 1 MΩ 22 μF 100 kΩ 0.1 μF LT1001 4.7 μF 2 kΩ 100 kΩ 10 Ω 0.1 μF Voltage Gain = 50,000 OP27 Device Under Test 24.3 kΩ 0.01 0.1 1 10 100 AVD − Differential Voltage Amplification − dB 100 f − Frequency − Hz NOTE: All capacitor values are for nonpolarized capacitors only. Figure 26. 0.1-Hz to 10-Hz Peak-to-Peak Noise Test Circuit and Frequency Response

OP27A, OP27C LOW-NOISE HIGH-SPEED PRECISION OPERATIONAL-AMPLIFIER SLOS100E − FEBRUARY 1989 − REVISED FEBRUARY 2010

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noise testing (continued) When measuring noise on a large number of units, a noise-voltage density test is recommended. A 10-Hz noise-voltage density measurement correlates well with a 0.1-Hz to 10-Hz peak-to-peak noise reading since both results are determined by the white noise and the location of the 1/f corner frequency. Figure 27 shows a circuit measuring current noise and the formula for calculating current noise. 10kΩ Vno 100 Ω 500 kΩ 500 kΩ

1 MΩ × 100

In = Figure 27. Current Noise Test Circuit and Formula αVIO of VIO/300 μV/°C. For example, if VIO is adjusted to 300 μV, the change in αVIO is 1 μV/°C. Figure 28. Standard Input Offset Figure 29. Input Offset Voltage Adjustment With close together and at the same temperature.

OP27A, OP27C LOW-NOISE HIGH-SPEED PRECISION OPERATIONAL-AMPLIFIER SLOS100E − FEBRUARY 1989 − REVISED FEBRUARY 2010 17POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 offset voltage and drift (continued) The circuit shown in Figure 30 measures offset voltage. This circuit can also be used as the burn-in configuration for the OP27 with the supply voltage increased to 20 V, R1 = R3 = 10 k Ω, R2 = 200 Ω, and AVD = 100. 15 V −15 V 50 kΩ 100 Ω 50 kΩ VO = 1000 VIO NOTE A: Resistors must have low thermoelectric potential. Figure 30. Test Circuit for Offset Voltage and Offset Voltage Temperature Coefficient is shown in the pulsed-operation diagram in Figure 31.

2.8 V/μs

Figure 31. Pulsed Operation reducing the phase margin. A small capacitor (20 pF to 50 pF) in parallel with Rf eliminates this problem.

OP27A, OP27C LOW-NOISE HIGH-SPEED PRECISION OPERATIONAL-AMPLIFIER SLOS100E − FEBRUARY 1989 − REVISED FEBRUARY 2010

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unity gain buffer applications (continued) To Gate Drive Typical Multiplexing FET Switches #24 Cold-Junction Circuitry + − Output 0.05 μF 100 kΩ High-Quality Single-Point Ground 10 Ω AVD = 10,000 Type S Thermocouples 5.4 μV/°C at 0°C 0246 Noise Voltage − nV 100 t − Time − seconds 120 81 0 OP27 NOTE A: If 24 channels are multiplexed per second and the output is required to settle to 0.1 % accuracy, the amplifier’s bandwidth cannot be limited to less than 30 Hz. The peak-to-peak noise contribution of the OP27 will still be only 0.11 μV, which is equivalent to an error of only 0.02°C. Figure 32. Low-Noise, Multiplexed Thermocouple Amplifier and

www.ti.com 29-May-2025 PACKAGING INFORMATION Orderable part number Status (1) Material type (2) Package | Pins Package qty | Carrier RoHS (3) Lead finish/ Ball material (4) MSL rating/ Peak reflow (5) Op temp (°C) Part marking (6) JM38510/13506BPA Active Production CDIP (JG) | 8 50 | TUBE No SNPB N/A for Pkg Type -55 to 125 JM38510 /13506BPA JM38510/13506BPA.A Active Production CDIP (JG) | 8 50 | TUBE No SNPB N/A for Pkg Type -55 to 125 JM38510 /13506BPA OP27AFKB Active Production LCCC (FK) | 20 55 | TUBE No SNPB N/A for Pkg Type - OP27AFKB OP27AFKB.A Active Production LCCC (FK) | 20 55 | TUBE No SNPB N/A for Pkg Type -55 to 125 OP27AFKB OP27AJGB Active Production CDIP (JG) | 8 50 | TUBE No SNPB N/A for Pkg Type - OP27AJGB OP27AJGB.A Active Production CDIP (JG) | 8 50 | TUBE No SNPB N/A for Pkg Type -55 to 125 OP27AJGB OP27CJGB Active Production CDIP (JG) | 8 50 | TUBE No SNPB N/A for Pkg Type - OP27CJGB OP27CJGB.A Active Production CDIP (JG) | 8 50 | TUBE No SNPB N/A for Pkg Type -55 to 125 OP27CJGB (1) Status: For more details on status, see our product life cycle. (2) Material type: When designated, preproduction parts are prototypes/experimental devices, and are not yet approved or released for full production. Testing and final process, including without limitation quality assurance, reliability performance testing, and/or process qualification, may not yet be complete, and this item is subject to further changes or possible discontinuation. If available for ordering, purchases will be subject to an additional waiver at checkout, and are intended for early internal evaluation purposes only. These items are sold without warranties of any kind. (3) RoHS values: Yes, No, RoHS Exempt. See the TI RoHS Statement for additional information and value definition. (4) Lead finish/Ball material: Parts may have multiple material finish options. Finish options are separated by a vertical ruled line. Lead finish/Ball material values may wrap to two lines if the finish value exceeds the maximum column width. (5) MSL rating/Peak reflow: The moisture sensitivity level ratings and peak solder (reflow) temperatures. In the event that a part has multiple moisture sensitivity ratings, only the lowest level per JEDEC standards is shown. Refer to the shipping label for the actual reflow temperature that will be used to mount the part to the printed circuit board. (6) Part marking: There may be an additional marking, which relates to the logo, the lot trace code information, or the environmental category of the part. Multiple part markings will be inside parentheses. Only one part marking contained in parentheses and separated by a "~" will appear on a part. If a line is indented then it is a continuation of the previous line and the two combined represent the entire part marking for that device. Important Information and Disclaimer:The information provided on this page represents TI's knowledge and belief as of the date that it is provided. TI bases its knowledge and belief on information provided by third parties, and makes no representation or warranty as to the accuracy of such information. Efforts are underway to better integrate information from third parties. TI has taken and continues to take reasonable steps to provide representative Addendum-Page 1

www.ti.com 29-May-2025 and accurate information but may not have conducted destructive testing or chemical analysis on incoming materials and chemicals. TI and TI suppliers consider certain information to be proprietary, and thus CAS numbers and other limited information may not be available for release. In no event shall TI's liability arising out of such information exceed the total purchase price of the TI part(s) at issue in this document sold by TI to Customer on an annual basis. Addendum-Page 2

PACKAGE MATERIALS INFORMATION www.ti.com 23-May-2025 TUBE L - Tube length T - Tube height W - Tube width B - Alignment groove width *All dimensions are nominal Device Package Name Package Type Pins SPQ L (mm) W (mm) T (µm) B (mm) OP27AFKB FK LCCC 20 55 506.98 12.06 2030 NA OP27AFKB.A FK LCCC 20 55 506.98 12.06 2030 NA Pack Materials-Page 1

www.ti.com GENERIC PACKAGE VIEW This image is a representation of the package family, actual package may vary. Refer to the product data sheet for package details. LCCC - 2.03 mm max heightFK 20 LEADLESS CERAMIC CHIP CARRIER8.89 x 8.89, 1.27 mm pitch 4229370\\/A\\

www.ti.com PACKAGE OUTLINE 10.16 9.00 7.11 6.22 1.60 0.38 6X 2.54 8X 0.58 0.38 4X 1.65 1.14 0.51 MIN 3.30 MIN

5.08 MAX

7.87 7.37 0.36

0.20 TYP

4X (0.94) CDIP - 5.08 mm max heightJG0008A CERAMIC DUAL IN-LINE PACKAGE 4230036/A 09/2023 NOTES: 1. All linear dimensions are in millimeters. Any dimensions in parenthesis are for reference only. Dimensioning and tolerancing per ASME Y14.5M. 2. This drawing is subject to change without notice. 3. This package can be hermetically sealed with a ceramic lid using glass frit. 4. Index point is provided on cap for terminal identification. 5. Falls within MIL STD 1835 GDIP1-T8 SEATING PLANE

0.25 C A B

A B C

www.ti.com EXAMPLE BOARD LAYOUT

0.05 MAX

(7.62) 6X (2.54) 8X ( 1) THRU 7X ( 1.6) (1.6) (R0.05) TYP CDIP - 5.08 mm max heightJG0008A CERAMIC DUAL IN-LINE PACKAGE 4230036/A 09/2023 LAND PATTERN EXAMPLE NON SOLDER MASK DEFINED SCALE: 9X SOLDER MASK OPENING TYP METAL TYP SYMM SYMM 4 5

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