Literature DB >> 32603136

Efficient Method for Modeling Polarons Using Electronic Structure Methods.

Thang Duc Pham1, N Aaron Deskins2.   

Abstract

Polarons are localized electronic states that occur in many semiconductors. Modeling polarons at the quantum or atomic scale is often performed using electronic structure methods such as density functional theory (DFT). A problem using DFT to model polarons is that self-interaction errors (SIEs) often result in delocalized electronic states rather than localized states. Methods such as DFT + U or hybrid functionals can be used to overcome SIE, but these methods may still not form stable polarons. The initial geometries and wavefunctions strongly influence and determine how and if polarons may arise during electronic structure calculations. In this paper, we have assessed different strategies to efficiently obtain low-energy localized polarons in several semiconductors (TiO2, m-HfO2, and m-BiVO4). These strategies involve distorting the initial geometry to create polaron-like geometries or generating initial wavefunctions that mimic polaronic states. We show that perturbing the crystal's structure to induce polaron formation (which we call the bond distortion method) is a very efficient approach to form stable polarons, requiring less computational time than other methods. In contrast, other methods that we assessed may not lead to stable polaron states or may require much greater time (up to four times more computational time). Having a reliable, efficient method to ensure polaron formation is crucial to modeling polarons. The results described herein will save wasted computational efforts and also enable efforts such as high-throughput simulation of polarons.

Entities:  

Year:  2020        PMID: 32603136     DOI: 10.1021/acs.jctc.0c00374

Source DB:  PubMed          Journal:  J Chem Theory Comput        ISSN: 1549-9618            Impact factor:   6.006


  4 in total

1.  Strong absorption and ultrafast localisation in NaBiS2 nanocrystals with slow charge-carrier recombination.

Authors:  Yi-Teng Huang; Seán R Kavanagh; Marcello Righetto; Marin Rusu; Igal Levine; Thomas Unold; Szymon J Zelewski; Alexander J Sneyd; Kaiwen Zhang; Linjie Dai; Andrew J Britton; Junzhi Ye; Jaakko Julin; Mari Napari; Zhilong Zhang; James Xiao; Mikko Laitinen; Laura Torrente-Murciano; Samuel D Stranks; Akshay Rao; Laura M Herz; David O Scanlon; Aron Walsh; Robert L Z Hoye
Journal:  Nat Commun       Date:  2022-08-24       Impact factor: 17.694

2.  Tin-Substituted Chalcopyrite: An n-Type Sulfide with Enhanced Thermoelectric Performance.

Authors:  Sahil Tippireddy; Feridoon Azough; Frances Towers Tompkins; Animesh Bhui; Robert Freer; Ricardo Grau-Crespo; Kanishka Biswas; Paz Vaqueiro; Anthony V Powell
Journal:  Chem Mater       Date:  2022-06-25       Impact factor: 10.508

3.  Band versus Polaron: Charge Transport in Antimony Chalcogenides.

Authors:  Xinwei Wang; Alex M Ganose; Seán R Kavanagh; Aron Walsh
Journal:  ACS Energy Lett       Date:  2022-08-11       Impact factor: 23.991

4.  Hole Polaron Migration in Bulk Phases of TiO2 Using Hybrid Density Functional Theory.

Authors:  John J Carey; James A Quirk; Keith P McKenna
Journal:  J Phys Chem C Nanomater Interfaces       Date:  2021-05-27       Impact factor: 4.126

  4 in total

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