Anomalous Zero-Field Splitting for Hole Spin Qubits in Si and Ge Quantum Dots.

Phys Rev Lett

Department of Physics, University of Basel, Klingelbergstrasse 82, CH-4056 Basel, Switzerland.

Published: September 2022

AI Article Synopsis

  • Recent measurements have found unusual energy splitting in spin triplet states of germanium quantum dots even without a magnetic field, which could affect the interaction between quantum dots crucial for quantum computing.
  • An analytical model has been developed that connects this energy splitting to a specific type of spin-orbit interaction influenced by electric fields, showing particularly strong effects in silicon and germanium materials.
  • The research validates the model through numerical simulations and offers insights that could enhance the design and functionality of spin qubits, advancing the development of next-generation semiconducting quantum processors.

Article Abstract

An anomalous energy splitting of spin triplet states at zero magnetic field has recently been measured in germanium quantum dots. This zero-field splitting could crucially alter the coupling between tunnel-coupled quantum dots, the basic building blocks of state-of-the-art spin-based quantum processors, with profound implications for semiconducting quantum computers. We develop an analytical model linking the zero-field splitting to the Rashba spin-orbit interaction that is cubic in momentum. Such interactions naturally emerge in hole nanostructures, where they can also be tuned by external electric fields, and we find them to be particularly large in silicon and germanium, resulting in a significant zero-field splitting in the μeV range. We confirm our analytical theory by numerical simulations of different quantum dots, also including other possible sources of zero-field splitting. Our findings are applicable to a broad range of current architectures encoding spin qubits and provide a deeper understanding of these materials, paving the way toward the next generation of semiconducting quantum processors.

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Source
http://dx.doi.org/10.1103/PhysRevLett.129.116805DOI Listing

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