Nanomechanical Error Correction

Fuente: arXiv
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Autori principali: Jin, Xiaoya, Baker, Christopher G., Romero, Erick, Arora, Nishta, Mauranyapin, Nicolas P., Hirsch, Timothy M. F., Harris, Glen I., Bowen, Warwick P.
Natura: Preprint
Pubblicazione: 2025
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author Jin, Xiaoya
Baker, Christopher G.
Romero, Erick
Arora, Nishta
Mauranyapin, Nicolas P.
Hirsch, Timothy M. F.
Harris, Glen I.
Bowen, Warwick P.
author_facet Jin, Xiaoya
Baker, Christopher G.
Romero, Erick
Arora, Nishta
Mauranyapin, Nicolas P.
Hirsch, Timothy M. F.
Harris, Glen I.
Bowen, Warwick P.
contents Error correction is essential for modern computing systems, enabling information to be processed accurately even in the presence of noise. Here, we demonstrate a new approach which exploits an error correcting phase that emerges in a system of three coupled nonlinear resonators. Within this phase, perturbed memory states are autonomously restored via the collective dynamics of the nonlinear network. We implement our scheme using a network of nanomechanical resonators. Nanomechanical systems are an attractive platform for low energy computing, but purely mechanical error correction has not been previously demonstrated. We experimentally show that the error correcting phase provides a 35 times reduction in the rate of errors, and allows robust error correction over a wide range of system parameters. These results highlight how emergent nonlinear dynamics can be harnessed for practical applications, paving the way towards error-resilient nanomechanical computing.
format Preprint
id arxiv_https___arxiv_org_abs_2509_11560
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Nanomechanical Error Correction
Jin, Xiaoya
Baker, Christopher G.
Romero, Erick
Arora, Nishta
Mauranyapin, Nicolas P.
Hirsch, Timothy M. F.
Harris, Glen I.
Bowen, Warwick P.
Applied Physics
Error correction is essential for modern computing systems, enabling information to be processed accurately even in the presence of noise. Here, we demonstrate a new approach which exploits an error correcting phase that emerges in a system of three coupled nonlinear resonators. Within this phase, perturbed memory states are autonomously restored via the collective dynamics of the nonlinear network. We implement our scheme using a network of nanomechanical resonators. Nanomechanical systems are an attractive platform for low energy computing, but purely mechanical error correction has not been previously demonstrated. We experimentally show that the error correcting phase provides a 35 times reduction in the rate of errors, and allows robust error correction over a wide range of system parameters. These results highlight how emergent nonlinear dynamics can be harnessed for practical applications, paving the way towards error-resilient nanomechanical computing.
title Nanomechanical Error Correction
topic Applied Physics
url https://arxiv.org/abs/2509.11560