Nuclear spin quantum register in an optically active semiconductor quantum dot.

Nat Nanotechnol

Institute of Semiconductor and Solid State Physics, Johannes Kepler University Linz, Linz, Austria.

Published: December 2020

AI Article Synopsis

  • Epitaxial quantum dots (QDs) are promising for quantum computing as they can efficiently interface with quantum light and semiconductor technologies.
  • Strain-free GaAs/AlGaAs QDs were used to create a functioning two-qubit quantum register, leveraging arsenic quadrupolar nuclear spins for improved coherence.
  • The research demonstrated high-fidelity quantum operations and successful implementation of benchmark algorithms, highlighting the potential of QD nuclei as valuable resources in future quantum circuits.

Article Abstract

Epitaxial quantum dots (QDs) have long been identified as promising charge spin qubits offering an efficient interface to quantum light and advanced semiconductor nanofabrication technologies. However, charge spin coherence is limited by interaction with the nanoscale ensemble of atomic nuclear spins, which is particularly problematic in strained self-assembled dots. Here, we use strain-free GaAs/AlGaAs QDs, demonstrating a fully functioning two-qubit quantum register using the nanoscale ensemble of arsenic quadrupolar nuclear spins as its hardware. Tailored radio-frequency pulses allow quantum state storage for up to 20 ms, and are used for few-microsecond single-qubit and two-qubit control gates with fidelities exceeding 97%. Combining long coherence and high-fidelity control with optical initialization and readout, we implement benchmark quantum computations such as Grover's search and the Deutsch-Jozsa algorithm. Our results identify QD nuclei as a potential quantum information resource, which can complement charge spins and light particles in future QD circuits.

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Source
http://dx.doi.org/10.1038/s41565-020-0769-3DOI Listing

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