Quantum-Bath Decoherence of Hybrid Electron-Nuclear Spin Qubits
S. J. Balian

TL;DR
This paper presents quantum many-body calculations to accurately predict decoherence times of hybrid electron-nuclear spin qubits, revealing the quantum nature of the environment and guiding strategies to maximize qubit coherence.
Contribution
The study introduces an adapted cluster correlation expansion method and provides a comprehensive analysis of decoherence mechanisms in hybrid qubits, aligning theoretical predictions with experimental results.
Findings
Quantum many-body calculations match experimental $T_2$ times.
Significant differences between quantum-bath and classical-field decoherence.
Near optimal working points, dynamical decoupling enhances qubit coherence.
Abstract
A major problem facing the realisation of scalable solid-state quantum computing is that of overcoming decoherence - the process whereby phase information encoded in a qubit is lost as the qubit interacts with its environment. Due to the vast number of environmental degrees of freedom, it is challenging to accurately calculate decoherence times , especially when the qubit and environment are highly correlated. Hybrid or mixed electron-nuclear spin qubits, such as donors in silicon, possess 'optimal working points' (OWPs) which are sweet-spots for reduced decoherence in magnetic fields. Analysis of sharp variations of near OWPs was previously based on insensitivity to classical noise, even though hybrid qubits are situated in highly correlated quantum environments, such as the nuclear spin bath of Si impurities. This presented limited understanding of the decoherence…
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Taxonomy
TopicsQuantum and electron transport phenomena · Quantum Computing Algorithms and Architecture · Atomic and Subatomic Physics Research
