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Title: Emergence of two-level systems in glass formers : a kinetic Monte Carlo study
Authors: Gao, XY 
Deng, HY
Lee, CS 
You, JQ
Lam, CH 
Issue Date: 21-Mar-2022
Source: Soft matter, 21 Mar. 2022, v. 18, no. 11, p. 2211-2221
Abstract: Using a distinguishable-particle lattice model based on void-induced dynamics, we successfully reproduce the well-known linear relation between heat capacity and temperature at very low temperatures. The heat capacity is dominated by two-level systems formed due to the strong localization of voids to two neighboring sites, and can be exactly calculated in the limit of ultrastable glasses. Similar but weaker localization at higher temperatures accounts for glass transition. The result supports the conventional two-level tunneling picture by revealing how two-level systems emerge from random particle interactions, which also cause glass transition. Our approach provides a unified framework for relating microscopic dynamics of glasses at room and cryogenic temperatures.
Publisher: Royal Society of Chemistry
Journal: Soft matter 
ISSN: 1744-683X
EISSN: 1744-6848
DOI: 10.1039/d1sm01809d
Rights: This journal is © The Royal Society of Chemistry 2022
The following publication Gao, Xin-Yuan; Deng, Hai-Yao; Lee, Chun-Shing; You, J. Q.; Lam, Chi-Hang(2022). Emergence of two-level systems in glass formers: a kinetic Monte Carlo study. Soft Matter, 18(11), 2211-2221 is available at https://doi.org/10.1039/d1sm01809d.
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