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Global Optimization of Li and Na Clusters: Application of a Modified Embedded Atom Method
by
Huwig, K.
, Grigoryan, V. G.
, Springborg, M.
in
Algorithms
/ Alkali metals
/ Catalysis
/ Chemistry
/ Chemistry and Materials Science
/ Clusters
/ Electrons
/ Embedded atom method
/ Energy
/ Global optimization
/ Inorganic Chemistry
/ Investigations
/ Isomers
/ Nanochemistry
/ Optimization
/ Original Paper
/ Physical Chemistry
/ Quasi Newton methods
2020
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Global Optimization of Li and Na Clusters: Application of a Modified Embedded Atom Method
by
Huwig, K.
, Grigoryan, V. G.
, Springborg, M.
in
Algorithms
/ Alkali metals
/ Catalysis
/ Chemistry
/ Chemistry and Materials Science
/ Clusters
/ Electrons
/ Embedded atom method
/ Energy
/ Global optimization
/ Inorganic Chemistry
/ Investigations
/ Isomers
/ Nanochemistry
/ Optimization
/ Original Paper
/ Physical Chemistry
/ Quasi Newton methods
2020
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While trying to remove the title from your shelf something went wrong :( Kindly try again later!
Do you wish to request the book?
Global Optimization of Li and Na Clusters: Application of a Modified Embedded Atom Method
by
Huwig, K.
, Grigoryan, V. G.
, Springborg, M.
in
Algorithms
/ Alkali metals
/ Catalysis
/ Chemistry
/ Chemistry and Materials Science
/ Clusters
/ Electrons
/ Embedded atom method
/ Energy
/ Global optimization
/ Inorganic Chemistry
/ Investigations
/ Isomers
/ Nanochemistry
/ Optimization
/ Original Paper
/ Physical Chemistry
/ Quasi Newton methods
2020
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Global Optimization of Li and Na Clusters: Application of a Modified Embedded Atom Method
Journal Article
Global Optimization of Li and Na Clusters: Application of a Modified Embedded Atom Method
2020
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Overview
An analytic modified embedded atom method (MEAM), developed for bulk alkali metals, is used to identify up to six different, energetically lowest isomers of
Li
N
and
Na
N
clusters (N = 2 − 150) within an unbiased global structure-optimization procedure. Randomly generated clusters are locally optimized using the
quasi-Newton
method and the resulting six most stable isomers are used afterwards in the
Aufbau–Abbau
algorithm. Due to its analytical formulae and its semiempirical nature, the MEAM emerges as a fast and efficient method that is particularly suitable for an unbiased global optimization. Structural and energetic analyses show that the MEAM provides compact clusters that are in good agreement with the results of other semiempirical calculations. Occasionally, the MEAM produces structures that are normally not found with such model potentials but in more accurate DFT or
ab initio
studies. Moreover, clusters of pronounced stability (magic sizes) are identified, growth patterns are studied, and trends can be recognized in which the atomic arrangement within the clusters of the considered size range corresponds more to the fcc than to the bcc packing. Additionally, for most cluster sizes the structures of the lowest-energy isomers of
Li
N
and
Na
N
clusters are very similar.
Publisher
Springer US,Springer Nature B.V
Subject
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