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CDIP (J) 16 135 mm² 19.65 x 6.92
  • Wide Analog-Input-Voltage Range VCC – VEE...0V to 10V
  • Low "ON" Resistance
    • 45 (Typ)...VCC = 4.5V
    • 35 (Typ)...VCC = 6V
    • 30 (Typ)...VCC – VEE = 9V
  • Fast Switching and Propagation Delay Times
  • Low "OFF" Leakage Current
  • Built-In "Break-Before-Make" Switching
  • Logic-Level Translation to Enable 5V Logic to Accommodate ±5V Analog Signals
  • Wide Operating Temperature Range . . . –55°C to 125°C
  • HC Types
    • 2V to 10V Operation
    • High Noise Immunity: NIL = 30%, NIH = 30% of VCC at VCC = 5V
  • HCT Types
    • Direct LSTTL Input Logic Compatibility, VIL = 0.8V (Max), VIH = 2V (Min)
    • CMOS Input Compatibility, Il 1µA at VOL, VOH

  • Wide Analog-Input-Voltage Range VCC – VEE...0V to 10V
  • Low "ON" Resistance
    • 45 (Typ)...VCC = 4.5V
    • 35 (Typ)...VCC = 6V
    • 30 (Typ)...VCC – VEE = 9V
  • Fast Switching and Propagation Delay Times
  • Low "OFF" Leakage Current
  • Built-In "Break-Before-Make" Switching
  • Logic-Level Translation to Enable 5V Logic to Accommodate ±5V Analog Signals
  • Wide Operating Temperature Range . . . –55°C to 125°C
  • HC Types
    • 2V to 10V Operation
    • High Noise Immunity: NIL = 30%, NIH = 30% of VCC at VCC = 5V
  • HCT Types
    • Direct LSTTL Input Logic Compatibility, VIL = 0.8V (Max), VIH = 2V (Min)
    • CMOS Input Compatibility, Il 1µA at VOL, VOH

The ’HC4316 and CD74HCT4316 contain four independent digitally controlled analog switches that use silicon-gate CMOS technology to achieve operating speeds similar to LSTTL with the low power consumption of standard CMOS integrated circuits.

In addition these devices contain logic-level translation circuits that provide for analog signal switching of voltages between ±5V via 5V logic. Each switch is turned on by a high-level voltage on its select input (S) when the common Enable (E) is Low. A High E disables all switches. The digital inputs can swing between VCC and GND; the analog inputs/outputs can swing between VCC as a positive limit and VEE as a negative limit. Voltage ranges are shown in Figures 2 and 3.

The ’HC4316 and CD74HCT4316 contain four independent digitally controlled analog switches that use silicon-gate CMOS technology to achieve operating speeds similar to LSTTL with the low power consumption of standard CMOS integrated circuits.

In addition these devices contain logic-level translation circuits that provide for analog signal switching of voltages between ±5V via 5V logic. Each switch is turned on by a high-level voltage on its select input (S) when the common Enable (E) is Low. A High E disables all switches. The digital inputs can swing between VCC and GND; the analog inputs/outputs can swing between VCC as a positive limit and VEE as a negative limit. Voltage ranges are shown in Figures 2 and 3.

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Type Title Date
* Data sheet CD54HC4316, CD74HC4316, CD74HCT4316 datasheet (Rev. D) 16 Oct 2003
Application note Selecting the Correct Texas Instruments Signal Switch (Rev. D) 09 Dec 2021
Application note Multiplexers and Signal Switches Glossary (Rev. B) 01 Dec 2021
Application note Implications of Slow or Floating CMOS Inputs (Rev. E) 26 Jul 2021
Selection guide Logic Guide (Rev. AB) 12 Jun 2017
Application note Understanding and Interpreting Standard-Logic Data Sheets (Rev. C) 02 Dec 2015
User guide LOGIC Pocket Data Book (Rev. B) 16 Jan 2007
Application note Semiconductor Packing Material Electrostatic Discharge (ESD) Protection 08 Jul 2004
User guide Signal Switch Data Book (Rev. A) 14 Nov 2003
More literature Logic Cross-Reference (Rev. A) 07 Oct 2003
Application note TI IBIS File Creation, Validation, and Distribution Processes 29 Aug 2002
Application note CMOS Power Consumption and CPD Calculation (Rev. B) 01 Jun 1997
Application note Designing With Logic (Rev. C) 01 Jun 1997
Application note Input and Output Characteristics of Digital Integrated Circuits 01 Oct 1996
Application note Live Insertion 01 Oct 1996
Application note SN54/74HCT CMOS Logic Family Applications and Restrictions 01 May 1996
Application note Using High Speed CMOS and Advanced CMOS in Systems With Multiple Vcc 01 Apr 1996

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