Litcius/Paper detail

A single hole spin with enhanced coherence in natural silicon

N. Piot, Boris Brun, Vivien Schmitt, Simon Zihlmann, V. P. Michal, A. Aprá, J. C. Abadillo-Uriel, X. Jehl, Benoît Bertrand, Heimanu Niebojewski, Louis Hutin, M. Vinet, Matias Urdampilleta, Tristan Meunier, Yann‐Michel Niquet, Romain Maurand, S. De Franceschi

2022Nature Nanotechnology97 citationsDOIOpen Access PDF

Abstract

Semiconductor spin qubits based on spin-orbit states are responsive to electric field excitations, allowing for practical, fast and potentially scalable qubit control. Spin electric susceptibility, however, renders these qubits generally vulnerable to electrical noise, which limits their coherence time. Here we report on a spin-orbit qubit consisting of a single hole electrostatically confined in a natural silicon metal-oxide-semiconductor device. By varying the magnetic field orientation, we reveal the existence of operation sweet spots where the impact of charge noise is minimized while preserving an efficient electric-dipole spin control. We correspondingly observe an extension of the Hahn-echo coherence time up to 88 μs, exceeding by an order of magnitude existing values reported for hole spin qubits, and approaching the state-of-the-art for electron spin qubits with synthetic spin-orbit coupling in isotopically purified silicon. Our finding enhances the prospects of silicon-based hole spin qubits for scalable quantum information processing.

Topics & Concepts

QubitSpin engineeringPhysicsSpin (aerodynamics)Coherence (philosophical gambling strategy)Superconducting quantum computingCondensed matter physicsCoherence timeSiliconSpin polarizationOptoelectronicsQuantum mechanicsQuantumElectronThermodynamicsQuantum and electron transport phenomenaSemiconductor materials and devicesAdvancements in Semiconductor Devices and Circuit Design