On representing chemical environments
О представлении химических окружений
2013-05-28
SCID: 54.1/ch3df2h9
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Smooth Overlap of Atomic Positionsatomic environment representationsinvariant descriptorsneighborhood density expansionpotential energy surfaces
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Abstract (AI)
We review some recently published methods to represent atomic neighborhood environments, and analyze their relative merits in terms of their faithfulness and suitability for fitting potential energy surfaces. The crucial properties that such representations (sometimes called descriptors) must have are differentiability with respect to moving the atoms and invariance to the basic symmetries of physics: rotation, reflection, translation, and permutation of atoms of the same species. We demonstrate that certain widely used descriptors that initially look quite different are specific cases of a general approach, in which a finite set of basis functions with increasing angular wave numbers are used to expand the atomic neighborhood density function. Using the example system of small clusters, we quantitatively show that this expansion needs to be carried to higher and higher wave numbers as the number of neighbors increases in order to obtain a faithful representation, and that variants of the descriptors converge at very different rates. We also propose an altogether different approach, called Smooth Overlap of Atomic Positions, that sidesteps these difficulties by directly defining the similarity between any two neighborhood environments, and show that it is still closely connected to the invariant descriptors. We test the performance of the various representations by fitting models to the potential energy surface of small silicon clusters and the bulk crystal.
Key Findings
1
Chemical-environment representations must be differentiable with respect to atomic positions and invariant to rotations, reflections, translations, and permutations of identical atoms.
2
For faithful representations, the required maximum angular wave number increases with the number of neighboring atoms, while descriptor variants exhibit substantially different convergence rates.
3
Several apparently different descriptors are unified as expansions of atomic neighborhood density functions in finite basis sets with increasing angular wave numbers.
4
The Smooth Overlap of Atomic Positions approach directly defines similarity between neighborhood environments, avoiding difficulties associated with truncated density expansions while remaining closely connected to invariant descriptors.
5
The representations are evaluated by fitting potential-energy-surface models for small silicon clusters and bulk silicon crystal.
Research Object
atomic neighborhood environments in small silicon clusters and bulk crystal
Research Subject
the faithfulness, symmetry invariance, differentiability, convergence, and suitability of environment representations for fitting potential energy surfaces
Publication Details
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2013-05-28
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