ナノデバイスのエネルギー散逸を測定する新手法を開発 (New method measures energy dissipation in the smallest devices)

2026-02-09 スタンフォード大学

スタンフォード大学の研究チームは、ナノスケール系におけるエネルギー散逸を高精度で測定する新手法を開発した。微小機械振動子や量子系に適用可能な測定技術により、従来困難だった熱揺らぎや非平衡過程でのエネルギー損失を定量化。理論モデルと実験を組み合わせ、ナノデバイス内部での散逸メカニズムを明確化した。本手法は、低消費電力エレクトロニクスや量子情報デバイス設計に重要な指針を与え、エネルギー効率向上や基礎物理の理解深化に貢献すると期待される。

<関連情報>

非マルコフ量子ドットにおける非平衡エントロピー生成と情報散逸 Non-equilibrium entropy production and information dissipation in a non-Markovian quantum dot

Yuejun Shen,Chutian Chen,Haoran Ma,Ashley P. Saunders,Christian Heide,Fang Liu,Grant M. Rotskoff,Jiaojian Shi & Aaron M. Lindenberg
Nature Physics  Published:09 February 2026
DOI:https://doi.org/10.1038/s41567-026-03177-8

ナノデバイスのエネルギー散逸を測定する新手法を開発 (New method measures energy dissipation in the smallest devices)

Abstract

The work required to drive a system from one state to another comprises both the equilibrium free energy difference and the dissipation associated with irreversibility. As physical processes—such as computing—approach fast limits, calculating this excess dissipation becomes increasingly critical. Yet, precisely quantifying dissipation, more specifically, entropy production, in strongly driven, time-dependent, realistic nanoscale systems remains a considerable challenge. Consequently, previous studies have largely been limited to either idealized Markovian systems under time-dependent driving or non-Markovian steady-state systems under constant driving. Here we measure the full dynamics of trajectory-level entropy production in a non-stationary, non-Markovian material arising from time-dependent driving. We use machine learning to extract the entropy produced by a quantum dot stochastically blinking under a stepwise control protocol. The entropy produced corresponds to the loss of memory in the material as the carrier distribution evolves. In addition, our approach quantifies both information insertion and dissipation under a quenched protocol. This work demonstrates a simple and effective approach for visualizing dissipation dynamics following a fast quench and serves as a stepping stone towards optimizing energy costs in the control of real materials and devices.

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