Digital to analog converter using high-injection velocity channel materials for low temperature signal conversion

Resolve Bottlenecks,
Find Innovative Solutions
Generate Solutions

Solution Overview

Problem

Current digital to analog converters (DACs) are dissipative, require large areas for implementation, and consume significant power, limiting their efficiency in complex systems.

Innovation Solution

A multi-sized multiple gate digital to analog converter using high-injection velocity channel materials and independently controllable gate structures, deployed in very low temperature environments, which reduces series resistance and enables efficient current output.

Engineering Contradictions & Design Principles

VSEngineering Contradiction Analysis

1Use of energy by moving object

If traditional multiple transistor and resistor systems are used for DAC, then the conversion function is achieved, but the system becomes very dissipative and consumes large amounts of power

Engineering Contradiction:
Improvepower consumptionVSAvoidenergy dissipation
Core Design Contradiction:
Use of energy by moving objectVSLoss of energy

Solution Approach 1:

The patent replaces traditional transistor and resistor systems with a novel architecture using floating gate structures and charge sharing mechanisms. This substitution eliminates the need for dissipative resistors and reduces transistor count, thereby significantly lowering power consumption and energy dissipation while maintaining DAC functionality

Inventive Principle:
Principle #28Mechanics substitution (Replace mechanical system)

Solution Approach 2:

The patent changes the operating parameters by using very low temperature environments to reduce thermal noise and improve charge storage stability in floating gate structures. This parameter change enables more efficient charge sharing and reduces leakage currents, further decreasing power consumption

Inventive Principle:
Principle #35Parameter changes

2Area of stationary object

If traditional DAC architectures are deployed, then the conversion function is achieved, but large areas are required for implementation

Engineering Contradiction:
Improveimplementation areaVSAvoidconversion efficiency
Core Design Contradiction:
Area of stationary objectVSProductivity

Solution Approach 1:

The patent merges multiple functions into a compact structure by using shared floating gate elements that serve multiple bits simultaneously. The charge sharing mechanism allows a single physical structure to represent multiple digital bits, dramatically reducing the area required per bit while maintaining conversion efficiency

Inventive Principle:
Principle #5Merging (Combining)

Solution Approach 2:

The patent employs a nested structure where floating gate elements are arranged in a hierarchical configuration, with smaller gates nested within or adjacent to larger ones. This nesting allows efficient use of space by sharing common structures and reducing redundant elements, achieving high resolution in a compact area

Inventive Principle:
Principle #7Nested doll (Nesting)

3Loss of energy

If traditional DAC systems are used, then the conversion function is achieved, but the systems are very dissipative

Engineering Contradiction:
Improveenergy dissipationVSAvoidsignal conversion accuracy
Core Design Contradiction:
Loss of energyVSReliability

Solution Approach 1:

The patent applies local quality by creating regions with different electrical characteristics - specifically, isolated floating gate structures with controlled charge storage properties. Each gate region is optimized for specific charge sharing requirements, enabling accurate signal conversion while minimizing energy dissipation through localized charge management rather than system-wide power consumption

Inventive Principle:
Principle #3Local quality

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

The solution provides low power consumption and reduced area requirements while maintaining accurate analog signal conversion, suitable for low temperature computational systems.

Implementation Method 1

A multi-sized multiple gate digital to analog converter using high-injection velocity channel materials and independently controllable gate structures, deployed in very low temperature environments, which reduces series resistance and enables efficient current output

Methodology Applied
Scientific EffectHigh-injection velocity channel material effect:

Data Source

PatentUS12567866B2Digital to analog converter using high-injection velocity channel materials for low temperature signal conversion
Publication Date: 2026.03.03 INTEL CORP
  • US12567866B2 patent drawing
  • US12567866B2 patent drawing
  • US12567866B2 patent drawing

AI summary

Integrated circuit dies, systems, and techniques are described related to multiple gate digital to analog converters operable at low temperatures. A multiple gate digital to analog converter includes a channel material spanning a length between a source and a drain and multiple gate structures of different sizes coupled to the channel material and spaced apart along the length. The multiple gate structures of the digital to analog converter are independently operable to convert a digital input to an analog output.