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Title:

Exploring the Conformers of an Organic Molecule on a Metal Cluster with Bayesian Optimization

Document type:
Zeitschriftenaufsatz
Author(s):
Fang, Lincan; Guo, Xiaomi; Todorović, Milica; Rinke, Patrick; Chen, Xi
Abstract:
Finding low-energy conformers of organic molecules is a complex problem due to the flexibilities of the molecules and the high dimensionality of the search space. When such molecules are on nanoclusters, the search complexity is exacerbated by constraints imposed by the presence of the cluster and other surrounding molecules. To address this challenge, we modified our previously developed active learning molecular conformer search method based on Bayesian optimization and density functional theo...     »
Journal title:
Journal of Chemical Information and Modeling 2023-01
Year:
2023
Journal volume:
63
Journal issue:
3
Pages contribution:
745-752
Fulltext / DOI:
doi:10.1021/acs.jcim.2c01120
Publisher:
American Chemical Society (ACS)
E-ISSN:
1549-95961549-960X
Date of publication:
16.01.2023
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