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Updated: Dec 24, 2025

Silicon Metal-oxide-semiconductor Quantum Dots for Single-electron Pumping
Published on: June 3, 2015
Operation of a silicon quantum processor unit cell above one kelvin
C H Yang1, R C C Leon2, J C C Hwang2,3
1Centre for Quantum Computation and Communication Technology, School of Electrical Engineering and Telecommunications, University of New South Wales, Sydney, New South Wales, Australia. henry.yang@unsw.edu.au.
Researchers developed a scalable silicon quantum processor unit cell with two qubits. This breakthrough enables quantum computers to operate at higher temperatures, potentially using simpler cooling systems.
Area of Science:
- Quantum Computing
- Solid-State Physics
- Materials Science
Background:
- Scaling quantum computers is limited by heat generation and the cooling power of dilution refrigerators.
- Current solid-state qubit technologies face significant challenges in achieving large-scale qubit numbers.
Purpose of the Study:
- To demonstrate a scalable silicon quantum processor unit cell operating at higher temperatures.
- To enable the development of quantum computers with integrated classical control electronics.
Main Methods:
- Utilized a silicon quantum processor unit cell with two qubits confined to quantum dots.
- Isolated quantum dots from the electron reservoir for initialization and readout via electron tunneling.
- Employed electrically driven spin resonance for coherent qubit control in isotopically enriched silicon.
Main Results:
- Achieved single-qubit gate fidelities of 98.6% and a coherence time of 2 microseconds at 1.5 Kelvin.
- Demonstrated operation at low magnetic fields (0.1 tesla) with qubit energy below thermal energy.
- Showcased a unit cell compatible with error-correction architectures and scalable to millions of qubits.
Conclusions:
- The demonstrated silicon quantum processor unit cell is a core building block for scalable quantum computers.
- Operation at 1.5 Kelvin is feasible, suggesting potential use of simpler pumped 4He cooling systems.
- This advancement could enable the integration of classical control electronics with qubit arrays, overcoming major scaling hurdles.
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