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Autori principali: Zhao, Renjie, Zhang, Yiquan, Luo, Chenglin, Wang, Yihang
Natura: Preprint
Pubblicazione: 2025
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Accesso online:https://arxiv.org/abs/2508.14658
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author Zhao, Renjie
Zhang, Yiquan
Luo, Chenglin
Wang, Yihang
author_facet Zhao, Renjie
Zhang, Yiquan
Luo, Chenglin
Wang, Yihang
contents The effects of thermal fluctuations on the morphology of two-dimensional materials are hard to harness. We propose that a geometrically constrained graphene nanoribbon (GNR) can exhibit thermally activated snap-through transitions with a predictable and controllable transition rate constant. The energetics and kinetics of such transitions can be fully captured by combining enhanced sampling methods and generalized transition state theory. Using well-tempered metadynamics, we determine the free energy landscape and a pair of asymmetric transition pathways of the GNR system. Notably, generalized transition state theory accurately captures how the transition rate constant responds to temperature and the tunable free energy landscape of our system. This work offers a theoretical framework for elastic metastability, introduces rare event methods into thermalized nanomechanical systems, and provides potential applications in designing nanoscale thermal switches and thermal actuators.
format Preprint
id arxiv_https___arxiv_org_abs_2508_14658
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Thermally Activated Snap-through Transitions Controlled by Tunable Metastability
Zhao, Renjie
Zhang, Yiquan
Luo, Chenglin
Wang, Yihang
Soft Condensed Matter
Statistical Mechanics
Chemical Physics
The effects of thermal fluctuations on the morphology of two-dimensional materials are hard to harness. We propose that a geometrically constrained graphene nanoribbon (GNR) can exhibit thermally activated snap-through transitions with a predictable and controllable transition rate constant. The energetics and kinetics of such transitions can be fully captured by combining enhanced sampling methods and generalized transition state theory. Using well-tempered metadynamics, we determine the free energy landscape and a pair of asymmetric transition pathways of the GNR system. Notably, generalized transition state theory accurately captures how the transition rate constant responds to temperature and the tunable free energy landscape of our system. This work offers a theoretical framework for elastic metastability, introduces rare event methods into thermalized nanomechanical systems, and provides potential applications in designing nanoscale thermal switches and thermal actuators.
title Thermally Activated Snap-through Transitions Controlled by Tunable Metastability
topic Soft Condensed Matter
Statistical Mechanics
Chemical Physics
url https://arxiv.org/abs/2508.14658