JOURNAL ARTICLE

Hybrid spin and valley quantum computing with singlet-triplet qubits

Niklas RohlingMaximilian RussGuido Burkard

Year: 2014 Journal:   arXiv (Cornell University) Vol: 2015   Publisher: Cornell University

Abstract

The valley degree of freedom in the electronic band structure of silicon, graphene, and other materials is often considered to be an obstacle for quantum computing (QC) based on electron spins in quantum dots. Here we show that control over the valley state opens new possibilities for quantum information processing. Combining qubits encoded in the singlet-triplet subspace of spin and valley states allows for universal QC using a universal two-qubit gate directly provided by the exchange interaction. We show how spin and valley qubits can be separated in order to allow for single-qubit rotations.

Keywords:
Qubit Physics Singlet state Spins Quantum mechanics Quantum computer Spin (aerodynamics) Superconducting quantum computing Quantum Condensed matter physics Excited state

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Topics

Quantum and electron transport phenomena
Physical Sciences →  Physics and Astronomy →  Atomic and Molecular Physics, and Optics
Quantum Computing Algorithms and Architecture
Physical Sciences →  Computer Science →  Artificial Intelligence
Quantum Information and Cryptography
Physical Sciences →  Computer Science →  Artificial Intelligence

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