Geometric and electronic structures of monolayer hexagonal boron nitride with multi-vacancy

被引:0
作者
Do-Hyun Kim
Hag-Soo Kim
Min Woo Song
Seunghyun Lee
Sang Yun Lee
机构
[1] Korea University,School of Electrical Engineering
[2] Kyungpook National University,School of Applied Chemical Engineering
[3] University of Suwon,Department of Chemical Engineering and Materials Science
[4] Ulsan Technopark,Fine Chemical and Material Technical Institute
来源
Nano Convergence | / 4卷
关键词
Boron nitride; Vacancy; Defect; Deformation; Band structure;
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摘要
Hexagonal boron nitride (h-BN) is an electrical insulator with a large band gap of 5 eV and a good thermal conductor of which melting point reaches about 3000 °C. Due to these properties, much attention was given to the thermal stability rather than the electrical properties of h-BN experimentally and theoretically. In this study, we report calculations that the electronic structure of monolayer h-BN can be influenced by the presence of a vacancy defect which leads to a geometric deformation in the hexagonal lattice structure. The vacancy was varied from mono- to tri-vacancy in a supercell, and different defective structures under the same vacancy density were considered in the case of an odd number of vacancies. Consequently, all cases of vacancy defects resulted in a geometric distortion in monolayer h-BN, and new energy states were created between valence and conduction band with the Fermi level shift. Notably, B atoms around vacancies attracted one another while repulsion happened between N atoms around vacancies, irrespective of vacancy density. The calculation of formation energy revealed that multi-vacancy including more B-vacancies has much lower formation energy than vacancies with more N-vacancies. This work suggests that multi-vacancy created in monolayer h-BN will have more B-vacancies and that the presence of multi-vacancy can make monolayer h-BN electrically conductive by the new energy states and the Fermi level shift.
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