Literature DB >> 27145398

Computational Approach for Epitaxial Polymorph Stabilization through Substrate Selection.

Hong Ding1, Shyam S Dwaraknath1, Lauren Garten2, Paul Ndione2, David Ginley2, Kristin A Persson1,3.   

Abstract

With the ultimate goal of finding new polymorphs through targeted synthesis conditions and techniques, we outline a computational framework to select optimal substrates for epitaxial growth using first principle calculations of formation energies, elastic strain energy, and topological information. To demonstrate the approach, we study the stabilization of metastable VO2 compounds which provides a rich chemical and structural polymorph space. We find that common polymorph statistics, lattice matching, and energy above hull considerations recommends homostructural growth on TiO2 substrates, where the VO2 brookite phase would be preferentially grown on the a-c TiO2 brookite plane while the columbite and anatase structures favor the a-b plane on the respective TiO2 phases. Overall, we find that a model which incorporates a geometric unit cell area matching between the substrate and the target film as well as the resulting strain energy density of the film provide qualitative agreement with experimental observations for the heterostructural growth of known VO2 polymorphs: rutile, A and B phases. The minimal interfacial geometry matching and estimated strain energy criteria provide several suggestions for substrates and substrate-film orientations for the heterostructural growth of the hitherto hypothetical anatase, brookite, and columbite polymorphs. These criteria serve as a preliminary guidance for the experimental efforts stabilizing new materials and/or polymorphs through epitaxy. The current screening algorithm is being integrated within the Materials Project online framework and data and hence publicly available.

Entities:  

Keywords:  elastic energy; epitaxy; heteroepitaxy; homoepitaxy; substrate selection; topology

Year:  2016        PMID: 27145398     DOI: 10.1021/acsami.6b01630

Source DB:  PubMed          Journal:  ACS Appl Mater Interfaces        ISSN: 1944-8244            Impact factor:   9.229


  2 in total

1.  Elastic properties of bulk and low-dimensional materials using Van der Waals density functional.

Authors:  Kamal Choudhary; Gowoon Cheon; Evan Reed; Francesca Tavazza
Journal:  Phys Rev B       Date:  2018       Impact factor: 4.036

2.  The synthesis of competing phase GeSe and GeSe2 2D layered materials.

Authors:  Kentaro Yumigeta; Cassondra Brayfield; Hui Cai; Debarati Hajra; Mark Blei; Sijie Yang; Yuxia Shen; S Tongay
Journal:  RSC Adv       Date:  2020-10-16       Impact factor: 4.036

  2 in total

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