MOS Switch Slew-Rate Control for Clock Feedthrough Reduction
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Solution Overview
Problem
MOS switches experience charge movement due to clock feedthrough, leading to voltage errors that affect the performance of various circuits.
Innovation Solution
A semiconductor integrated circuit with a MOS switch configuration that includes a first main MOS transistor, a dummy MOS transistor, and a switch control circuit to adjust the slew rate of gate voltages, minimizing charge movement by optimizing the slew rate of the gate voltages supplied to the transistors.
Engineering Contradictions & Design Principles
Engineering Contradiction Analysis
1Measurement precision
If a MOS switch is used in a SAR-ADC circuit, then the switching function is achieved, but clock feedthrough causes charge movement and voltage errors that degrade conversion accuracy
Solution Approach 1:
A dummy MOS transistor is introduced as an intermediary element connected in parallel with the main MOS transistor. The dummy transistor acts as a mediator that generates compensating charge to counterbalance the charge movement caused by clock feedthrough in the main transistor, thereby reducing voltage errors and improving conversion accuracy
Solution Approach 2:
The switch control circuit generates complementary control signals for both the main and dummy MOS transistors based on the clock signal. This feedback mechanism ensures that the dummy transistor switches in opposition to the main transistor, creating a compensating effect that cancels out the harmful charge movement from clock feedthrough
2Productivity
If the switching speed is increased to improve productivity, then the SAR-ADC operation is faster, but the slew rate of gate voltages increases which exacerbates clock feedthrough effects
Solution Approach 1:
The invention converts the harmful clock feedthrough effect into a beneficial compensating mechanism. By intentionally introducing a dummy transistor that experiences similar clock feedthrough, the harmful charge movement in the main transistor is counterbalanced, transforming the problem into a solution where the same physical effect works in favor of reducing voltage errors
Solution Approach 2:
The switch control circuit adjusts the slew rate of gate voltages applied to the dummy transistor to optimize the compensation effect. By controlling the rate of change of gate voltages, the circuit maintains effective clock feedthrough cancellation while allowing for faster switching operations, thus resolving the conflict between switching speed and feedthrough effects
Applied Scientific Principles
This section explains which scientific principles are used to turn an abstract innovation direction into a practical engineering solution.
Function Achieved in This Case
Reduces the effect of clock feedthrough, thereby improving conversion accuracy in circuits such as SAR-ADCs by minimizing voltage errors.
Implementation Method 1
a first main MOS transistor MM1 having a first polarity... a first dummy MOS transistor MD1 having the first polarity
Implementation Method 2
switch control circuit that supplies a first voltage according to a control signal to a gate of the first main MOS transistor, supplies a second voltage opposite in phase to the first voltage to a gate of the first dummy MOS transistor, and is configured to be capable of adjusting a slew rate of each of the first voltage and the second voltage
Data Source
AI summary
Provided is a semiconductor integrated circuit including a metal-oxide-semiconductor (MOS) switch, in which the MOS switch includes a first main MOS transistor having a first polarity, a first dummy MOS transistor having the first polarity and having opposed ends each connected to a first end of the first main MOS transistor, and a switch control circuit that supplies a first voltage according to a control signal to a gate of the first main MOS transistor, supplies a second voltage opposite in phase to the first voltage to a gate of the first dummy MOS transistor, and is configured to be capable of adjusting a slew rate of each of the first voltage and the second voltage.


