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Tempering stochastic density functional theory

delete2021-11-24
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OA
AI
M
Minh Nguyen
W
Wenfei Li
B
Barry Y. Li
E
Eran Rabani
R
Roi Baer
D
Daniel Neuhauser *
DOI:10.1063/5.0063266delete
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Abstract

Abstract

En 中文
We introduce a tempering approach with stochastic density functional theory (sDFT), labeled t-sDFT, which reduces the statistical errors in the estimates of observable expectation values. This is achieved by rewriting the electronic density as a sum of a warm component complemented by colder correction(s). Since the warm component is larger in magnitude but faster to evaluate, we use many more stochastic orbitals for its evaluation than for the smaller-sized colder correction(s). This results in a significant reduction in the statistical fluctuations and systematic deviation compared to sDFT for the same computational effort. We demonstrate the method's performance on large hydrogen-passivated silicon nanocrystals, finding a reduction in the systematic deviation in the energy by more than an order of magnitude, while the systematic deviation in the forces is also quenched. Similarly, the statistical fluctuations are reduced by factors of approximate to 4-5 for the total energy and approximate to 1.5-2 for the forces on the atoms. Since the embedding in t-sDFT is fully stochastic, it is possible to combine t-sDFT with other variants of sDFT such as energy-window sDFT and embedded-fragmented sDFT. Published under an exclusive license by AIP Publishing.
Keywords:
ELECTRONIC-STRUCTURE
MATRIX

Journal

Journal of Chemical Physics cover
Journal of Chemical Physics
IF:
3.1
Papers:
7.2W
Citations:
23.2W

Organization

U
university of california los angeles
Scholars:
5.3W
Papers: 4.2W
Citations: 89
University of California System cover
University of California System
Scholars:
37.5W
Papers: 33.7W
Citations: 6.6K
U
united states department of energy (doe)
Scholars:
11.3W
Papers: 9.6W
Citations: 246
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