The pathway to chirality in elemental tellurium

Fuente: arXiv
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Autores principales: Zhou, Yuxing, Elliott, Stephen R., Toit, Daniel F. Thomas du, Zhang, Wei, Deringer, Volker L.
Formato: Preprint
Publicado: 2024
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author Zhou, Yuxing
Elliott, Stephen R.
Toit, Daniel F. Thomas du
Zhang, Wei
Deringer, Volker L.
author_facet Zhou, Yuxing
Elliott, Stephen R.
Toit, Daniel F. Thomas du
Zhang, Wei
Deringer, Volker L.
contents Chiral crystals, like chiral molecules, cannot be superimposed onto their mirror images -- a fundamental property that has been linked to interesting physical behavior and exploited in functional devices. Among the simplest inorganic systems with crystallographic chirality, elemental tellurium adopts crystal structures with right- or left-handed chains. However, understanding the formation mechanisms of those structures has been difficult due to the rapid crystallization of Te, which reaches the spatial and temporal resolution limits of even the most advanced experiments. Here, we report ultra-large-scale, quantum-mechanically accurate simulations that reveal mechanisms of crystallization and the origin of crystallographic chirality in solid Te. We identify a characteristic, disordered cube-like structural motif -- a transient bonding environment with only nanosecond lifetime -- that enables both the rapid crystallization of Te and mediates chirality transfer. Based on the resulting microscopic understanding, we are able to explain the switching behavior of Te-based electrical devices.
format Preprint
id arxiv_https___arxiv_org_abs_2409_03860
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle The pathway to chirality in elemental tellurium
Zhou, Yuxing
Elliott, Stephen R.
Toit, Daniel F. Thomas du
Zhang, Wei
Deringer, Volker L.
Materials Science
Mesoscale and Nanoscale Physics
Chiral crystals, like chiral molecules, cannot be superimposed onto their mirror images -- a fundamental property that has been linked to interesting physical behavior and exploited in functional devices. Among the simplest inorganic systems with crystallographic chirality, elemental tellurium adopts crystal structures with right- or left-handed chains. However, understanding the formation mechanisms of those structures has been difficult due to the rapid crystallization of Te, which reaches the spatial and temporal resolution limits of even the most advanced experiments. Here, we report ultra-large-scale, quantum-mechanically accurate simulations that reveal mechanisms of crystallization and the origin of crystallographic chirality in solid Te. We identify a characteristic, disordered cube-like structural motif -- a transient bonding environment with only nanosecond lifetime -- that enables both the rapid crystallization of Te and mediates chirality transfer. Based on the resulting microscopic understanding, we are able to explain the switching behavior of Te-based electrical devices.
title The pathway to chirality in elemental tellurium
topic Materials Science
Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2409.03860