Microscopic Dynamics of Supercooled Liquids from First Principles

The transition from a liquid to a glass remains one of the most poorly understood phenomena in condensed matter physics, and still no fully microscopic theory exists that can describe the dynamics of supercooled liquids in a quantitative manner over all relevant time scales. Here, we present a theor...

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Veröffentlicht in:Physical review letters 2015-11, Vol.115 (20), p.205701-205701, Article 205701
Hauptverfasser: Janssen, Liesbeth M C, Reichman, David R
Format: Artikel
Sprache:eng
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Zusammenfassung:The transition from a liquid to a glass remains one of the most poorly understood phenomena in condensed matter physics, and still no fully microscopic theory exists that can describe the dynamics of supercooled liquids in a quantitative manner over all relevant time scales. Here, we present a theoretical framework that yields near-quantitative accuracy for the time-dependent correlation functions of a glass-forming system over a broad density range. Our approach requires only simple static structural information as input and is based entirely on first principles. Owing to its ab initio nature, the framework offers a unique platform to study the relation between structure and dynamics in glass-forming matter, and paves the way towards a systematically correctable and ultimately fully quantitative theory of microscopic glassy dynamics.
ISSN:0031-9007
1079-7114
DOI:10.1103/PhysRevLett.115.205701