Literature DB >> 29203675

Extending density functional embedding theory for covalently bonded systems.

Kuang Yu1, Emily A Carter2.   

Abstract

Quantum embedding theory aims to provide an efficient solution to obtain accurate electronic energies for systems too large for full-scale, high-level quantum calculations. It adopts a hierarchical approach that divides the total system into a small embedded region and a larger environment, using different levels of theory to describe each part. Previously, we developed a density-based quantum embedding theory called density functional embedding theory (DFET), which achieved considerable success in metals and semiconductors. In this work, we extend DFET into a density-matrix-based nonlocal form, enabling DFET to study the stronger quantum couplings between covalently bonded subsystems. We name this theory density-matrix functional embedding theory (DMFET), and we demonstrate its performance in several test examples that resemble various real applications in both chemistry and biochemistry. DMFET gives excellent results in all cases tested thus far, including predicting isomerization energies, proton transfer energies, and highest occupied molecular orbital-lowest unoccupied molecular orbital gaps for local chromophores. Here, we show that DMFET systematically improves the quality of the results compared with the widely used state-of-the-art methods, such as the simple capped cluster model or the widely used ONIOM method.

Entities:  

Keywords:  covalent bonds; density matrix; quantum embedding theory

Year:  2017        PMID: 29203675      PMCID: PMC5754786          DOI: 10.1073/pnas.1712611114

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  20 in total

1.  The merits of the frozen-density embedding scheme to model solvatochromic shifts.

Authors:  Johannes Neugebauer; Manuel J Louwerse; Evert Jan Baerends; Tomasz A Wesolowski
Journal:  J Chem Phys       Date:  2005-03-01       Impact factor: 3.488

2.  Excited-State N2 Dissociation Pathway on Fe-Functionalized Au.

Authors:  John Mark P Martirez; Emily A Carter
Journal:  J Am Chem Soc       Date:  2017-03-20       Impact factor: 15.419

3.  Self-consistently determined properties of solids without band-structure calculations.

Authors: 
Journal:  Phys Rev B Condens Matter       Date:  1991-10-15

4.  Quantum mechanical embedding theory based on a unique embedding potential.

Authors:  Chen Huang; Michele Pavone; Emily A Carter
Journal:  J Chem Phys       Date:  2011-04-21       Impact factor: 3.488

5.  Effective scheme for partitioning covalent bonds in density-functional embedding theory: From molecules to extended covalent systems.

Authors:  Chen Huang; Ana Belén Muñoz-García; Michele Pavone
Journal:  J Chem Phys       Date:  2016-12-28       Impact factor: 3.488

6.  Quantum Embedding Theories.

Authors:  Qiming Sun; Garnet Kin-Lic Chan
Journal:  Acc Chem Res       Date:  2016-11-07       Impact factor: 22.384

7.  Origin of the energy barrier to chemical reactions of O2 on Al(111): evidence for charge transfer, not spin selection.

Authors:  Florian Libisch; Chen Huang; Peilin Liao; Michele Pavone; Emily A Carter
Journal:  Phys Rev Lett       Date:  2012-11-08       Impact factor: 9.161

8.  Dissociative Adsorption of O2 on Al(111): The Role of Orientational Degrees of Freedom.

Authors:  Jin Cheng; Florian Libisch; Emily A Carter
Journal:  J Phys Chem Lett       Date:  2015-04-17       Impact factor: 6.475

9.  Hot electrons do the impossible: plasmon-induced dissociation of H2 on Au.

Authors:  Shaunak Mukherjee; Florian Libisch; Nicolas Large; Oara Neumann; Lisa V Brown; Jin Cheng; J Britt Lassiter; Emily A Carter; Peter Nordlander; Naomi J Halas
Journal:  Nano Lett       Date:  2012-12-05       Impact factor: 11.189

10.  A Simple, Exact Density-Functional-Theory Embedding Scheme.

Authors:  Frederick R Manby; Martina Stella; Jason D Goodpaster; Thomas F Miller
Journal:  J Chem Theory Comput       Date:  2012-07-17       Impact factor: 6.006

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