Valley population of donor states in highly strained silicon

Author:

Voisin BORCID,Ng K S H,Salfi JORCID,Usman MORCID,Wong J C,Tankasala A,Johnson B CORCID,McCallum J CORCID,Hutin LORCID,Bertrand B,Vinet M,Valanoor NORCID,Simmons M YORCID,Rahman RORCID,Hollenberg L C LORCID,Rogge SORCID

Abstract

Abstract Strain is extensively used to controllably tailor the electronic properties of materials. In the context of indirect band-gap semiconductors such as silicon, strain lifts the valley degeneracy of the six conduction band minima, and by extension the valley states of electrons bound to phosphorus donors. Here, single phosphorus atoms are embedded in an engineered thin layer of silicon strained to 0.8% and their wave function imaged using spatially resolved spectroscopy. A prevalence of the out-of-plane valleys is confirmed from the real-space images, and a combination of theoretical modelling tools is used to assess how this valley repopulation effect can yield isotropic exchange and tunnel interactions in the xy-plane relevant for atomically precise donor qubit devices. Finally, the residual presence of in-plane valleys is evidenced by a Fourier analysis of both experimental and theoretical images, and atomistic calculations highlight the importance of higher orbital excited states to obtain a precise relationship between valley population and strain. Controlling the valley degree of freedom in engineered strained epilayers provides a new competitive asset for the development of donor-based quantum technologies in silicon.

Funder

ARC Future Low Energy Electronics Technologies

ARC LIEF

US Army

Pawsey Supercomputing Center

ARC Centre of Excellence for Quantum Computation and Communication Technology

ARC

NCRIS

National Computing Infrastructure

Publisher

IOP Publishing

Subject

Community and Home Care

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