EP1451890B2

Switch circuit and method of switching radio frequency signals

Abstract

This record has no abstract on file.

EP1451890B2, drawing sheet 1
Sheet 1 of 13

Term

Term ended

Expired 10 October 2022, 4 years ago.

  1. Priority
  2. Filed
  3. Granted
  4. Expired
  5. Today

24 claims: 1 independent, 23 dependent

  1. 1
    An RF switch circuit for switching RF signals, comprising:(a) a first input port receiving a first RF input signal;(b) a second input port receiving a second RF input signal;(c) an RF common port;(d) a first switch transistor grouping comprising a plurality of MOSFET transistors arranged in a serial configuration, wherein each of said transistors has a gate resistance of at least about 30 kΩ, wherein said first switch transistor grouping has a first node coupled to the first input port and a second node coupled to the RF common port, and wherein the first switch transistor grouping is controlled by a switch control signal (SW);(e) a second switch transistor grouping comprising a plurality of MOSFET transistors arranged in a serial configuration, wherein each of said transistors has a gate resistance of at least about 30 kΩ, wherein said second switch transistor grouping has a first node coupled to the second input port and a second node coupled to the RF common port, and wherein the second switch transistor grouping is controlled by an inverse (SW_) of the switch control signal (SW);(f) a first shunt transistor grouping comprising a plurality of MOSFET transistors arranged in a serial configuration, wherein each of said transistors has a gate resistance of at least about 30 kΩ, wherein said first shunt transistor grouping has a first node coupled to the second input port and a second node coupled to ground, and wherein the first shunt transistor grouping is controlled by the switch control signal (SW);and (g) a second shunt transistor grouping comprising a plurality of MOSFET transistors arranged in a serial configuration, wherein each of said transistors has a gate resistance of at least about 30 kΩ wherein said second shunt transistor has a first node coupled to the first input port and a second node coupled to ground, and wherein the second shunt transistor grouping is controlled by the inverse (SW_) of the switch control signal (SW);wherein, when the switch control signal (SW) is enabled, the first switch and shunt transistor groupings are enabled while the second switch and shunt transistor groupings are disabled, thereby passing the first RF input signal through to the RF common port and shunting the second RF input signal to ground;and wherein when the switch control signal (SW) is disabled, the second switch and shunt transistor groupings are enabled while the first switch and shunt transistor groupings are disabled, thereby passing the second RF input signal through to the RF common port and shunting the first RF input signal to ground, and wherein the switch circuit is fabricated on an Ultra-Thin-Silicon ("UTSi") substrate;the transistor groupings comprise multiple MOSFET transistors formed in a thin silicon layer on a fully insulating sapphire wafer, and wherein the fully insulating sapphire wafer enhances performance characteristics of the RF switch by reducing substrate coupling effects;the MOSFET transistors include gate nodes coupled to respective and associated gate resistors;the gate resistors are commonly controlled by a switching voltage;the MOSFET transistors have associated gate capacitance, wherein RC time constants associated with each MOSFET transistor within the transistor groupings are functions of the gate resistors and the associated gate capacitance, and wherein the RC time constant associated with each MOSFET transistor within the transistor groupings far exceeds a period of the RF input signals thereby causing RF voltages to be shared equally across the MOSFET transistors.