0
TS3V340
  • TS3V340
  • TS3V340
  • TS3V340
  • TS3V340
  • TS3V340

TS3V340

ACTIVE

3.3-V, 2:1 (SPDT), 4-channel video switch with flat on-state resistance

Texas Instruments TS3V340 Product Info

1 April 2026 0

Parameters

Protocols

Composite, RGB

Configuration

2:1 SPDT

Number of channels

4

Bandwidth (MHz)

500

Supply voltage (max) (V)

3.6

Supply voltage (min) (V)

3

Ron (typ) (mΩ)

3000

Input/output voltage (min) (V)

0

Input/output voltage (max) (V)

5.5

Supply current (typ) (µA)

700

ESD HBM (typ) (kV)

2

Operating temperature range (°C)

-40 to 85

Crosstalk (dB)

-80

ESD CDM (kV)

1

Input/output continuous current (max) (mA)

128

COFF (typ) (pF)

3.5

CON (typ) (pF)

10.5

Off isolation (typ) (dB)

-60

OFF-state leakage current (max) (µA)

1

Propagation delay time (µs)

0.002

Ron (max) (mΩ)

6000

RON flatness (typ) (Ω)

1

Turnoff time (disable) (max) (ns)

7

Turnon time (enable) (max) (ns)

7

VIH (min) (V)

2

VIL (max) (V)

0.8

Rating

Catalog

Package

SOIC (D)-16-59.4 mm² 9.9 x 6

Features

  • Low Differential Gain and Phase (DG = 0.2%, DP = 0.1° Typ)
  • Wide Bandwidth (BW = 500 MHz Typ)
  • Low Crosstalk (XTALK = –80 dB Typ)
  • Bidirectional Data Flow, With Near-Zero Propagation Delay
  • Low and Flat ON-State Resistance (ron = 3 Typ)
  • VCC Operating Range From 3 V to 3.6 V
  • Ioff Supports Partial-Power-Down Mode Operation
  • Data and Control Inputs Provide Undershoot Clamp Diode
  • Latch-Up Performance Exceeds 100 mA Per JESD 78, Class II
  • ESD Performance Tested Per JESD 22
    • 2000-V Human-Body Model (A114-B, Class II)
    • 1000-V Charged-Device Model (C101)
  • Suitable for Both RGB and Composite Video Switching

  • Low Differential Gain and Phase (DG = 0.2%, DP = 0.1° Typ)
  • Wide Bandwidth (BW = 500 MHz Typ)
  • Low Crosstalk (XTALK = –80 dB Typ)
  • Bidirectional Data Flow, With Near-Zero Propagation Delay
  • Low and Flat ON-State Resistance (ron = 3 Typ)
  • VCC Operating Range From 3 V to 3.6 V
  • Ioff Supports Partial-Power-Down Mode Operation
  • Data and Control Inputs Provide Undershoot Clamp Diode
  • Latch-Up Performance Exceeds 100 mA Per JESD 78, Class II
  • ESD Performance Tested Per JESD 22
    • 2000-V Human-Body Model (A114-B, Class II)
    • 1000-V Charged-Device Model (C101)
  • Suitable for Both RGB and Composite Video Switching

Description

The TI video switch TS3V340 is a 4-bit 1-of-2 multiplexer/demultiplexer with a single switch-enable (EN) input. When EN is low, the switch is enabled and the D port is connected to the S port. When EN is high, the switch is disabled and the high-impedance state exists between the D and S ports. The select (IN) input controls the data path of the multiplexer/demultiplexer.

Low differential gain and phase makes this switch ideal for composite and RGB video applications. The device has a wide bandwidth and low crosstalk, making it suitable for high-frequency applications as well.

This device is fully specified for partial-power-down applications using Ioff. The Ioff feature ensures that damaging current will not backflow through the device when it is powered down. This switch maintains isolation during power off.

To ensure the high-impedance state during power up or power down, EN should be tied to VCC through a pullup resistor; the minimum value of the resistor is determined by the current-sinking capability of the driver.

The TI video switch TS3V340 is a 4-bit 1-of-2 multiplexer/demultiplexer with a single switch-enable (EN) input. When EN is low, the switch is enabled and the D port is connected to the S port. When EN is high, the switch is disabled and the high-impedance state exists between the D and S ports. The select (IN) input controls the data path of the multiplexer/demultiplexer.

Low differential gain and phase makes this switch ideal for composite and RGB video applications. The device has a wide bandwidth and low crosstalk, making it suitable for high-frequency applications as well.

This device is fully specified for partial-power-down applications using Ioff. The Ioff feature ensures that damaging current will not backflow through the device when it is powered down. This switch maintains isolation during power off.

To ensure the high-impedance state during power up or power down, EN should be tied to VCC through a pullup resistor; the minimum value of the resistor is determined by the current-sinking capability of the driver.