Near-Term Spin-Qubit Architecture Design via Multipartite Maximally-Entangled States

Fuente: arXiv
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Main Authors: Paraskevopoulos, Nikiforos, Steinberg, Matthew, Undseth, Brennan, Sarkar, Aritra, Vandersypen, Lieven M. K., Xue, Xiao, Feld, Sebastian
Format: Preprint
Published: 2024
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author Paraskevopoulos, Nikiforos
Steinberg, Matthew
Undseth, Brennan
Sarkar, Aritra
Vandersypen, Lieven M. K.
Xue, Xiao
Feld, Sebastian
author_facet Paraskevopoulos, Nikiforos
Steinberg, Matthew
Undseth, Brennan
Sarkar, Aritra
Vandersypen, Lieven M. K.
Xue, Xiao
Feld, Sebastian
contents The design and benchmarking of quantum computer architectures traditionally rely on practical hardware restrictions, such as gate fidelities, control, and cooling. At the theoretical and software levels, numerous approaches have been proposed for benchmarking quantum devices, ranging from, inter alia, quantum volume to randomized benchmarking. In this work, we utilize the quantum information-theoretic properties of multipartite maximally-entangled quantum states, in addition to their correspondence with quantum error correction codes, permitting us to quantify the entanglement generated on near-term bilinear spin-qubit architectures. For this aim, we introduce four metrics which ascertain the quality of genuine multipartite quantum entanglement, along with circuit-level fidelity measures. As part of the task of executing a quantum circuit on a device, we devise simulations which combine expected hardware characteristics of spin-qubit devices with appropriate compilation techniques; we then analyze three different architectural choices of varying lattice sizes for bilinear arrays, under three increasingly realistic noise models. We find that if the use of a compiler is assumed, sparsely-connected spin-qubit lattices can approach comparable values of our metrics to those of the most highly-connected device architecture. Even more surprisingly, by incorporating crosstalk into our last noise model, we find that, as error rates for crosstalk approach realistic values, the benefits of utilizing a bilinear array with advanced connectivity vanish. Our results highlight the limitations of adding local connectivity to near-term spin-qubit devices, and can be readily adapted to other qubit technologies. The framework developed here can be used for analyzing quantum entanglement on a device before fabrication, informing experimentalists on concomitant realistic expectations.
format Preprint
id arxiv_https___arxiv_org_abs_2412_12874
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Near-Term Spin-Qubit Architecture Design via Multipartite Maximally-Entangled States
Paraskevopoulos, Nikiforos
Steinberg, Matthew
Undseth, Brennan
Sarkar, Aritra
Vandersypen, Lieven M. K.
Xue, Xiao
Feld, Sebastian
Quantum Physics
The design and benchmarking of quantum computer architectures traditionally rely on practical hardware restrictions, such as gate fidelities, control, and cooling. At the theoretical and software levels, numerous approaches have been proposed for benchmarking quantum devices, ranging from, inter alia, quantum volume to randomized benchmarking. In this work, we utilize the quantum information-theoretic properties of multipartite maximally-entangled quantum states, in addition to their correspondence with quantum error correction codes, permitting us to quantify the entanglement generated on near-term bilinear spin-qubit architectures. For this aim, we introduce four metrics which ascertain the quality of genuine multipartite quantum entanglement, along with circuit-level fidelity measures. As part of the task of executing a quantum circuit on a device, we devise simulations which combine expected hardware characteristics of spin-qubit devices with appropriate compilation techniques; we then analyze three different architectural choices of varying lattice sizes for bilinear arrays, under three increasingly realistic noise models. We find that if the use of a compiler is assumed, sparsely-connected spin-qubit lattices can approach comparable values of our metrics to those of the most highly-connected device architecture. Even more surprisingly, by incorporating crosstalk into our last noise model, we find that, as error rates for crosstalk approach realistic values, the benefits of utilizing a bilinear array with advanced connectivity vanish. Our results highlight the limitations of adding local connectivity to near-term spin-qubit devices, and can be readily adapted to other qubit technologies. The framework developed here can be used for analyzing quantum entanglement on a device before fabrication, informing experimentalists on concomitant realistic expectations.
title Near-Term Spin-Qubit Architecture Design via Multipartite Maximally-Entangled States
topic Quantum Physics
url https://arxiv.org/abs/2412.12874