Structures and optoelectronic properties of two-dimensional MC6 (M = Ti and Hf) predicted by computational approaches

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Author listYi-min Ding, Huilong Dong, Hongxia Zhong, Juan Xie, Nopporn Rujisamphan, Youyong Li

PublisherElsevier

Publication year2020

Volume number25

Start page101606

ISSN2352-4928

eISSN2352-4928

URLhttps://www.sciencedirect.com/science/article/abs/pii/S2352492820326179?via%3Dihub


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Abstract

The group ⅥB elements have good compatibility with carbon to form two-dimensional carbides. In this work, two kinds of two-dimensional metal carbides (2D-MC6, M = Ti and Hf) were theoretically proposed. Using first-principles calculations, we optimized their structures and checked their dynamical/thermal stabilities. Furthermore, their electronic, mechanical and optical properties were also computationally investigated. Calculations on electronic properties show that the 2D-TiC6 and 2D-HfC6 exhibit direct band gap of 0.82 eV and indirect band gap of 1.20 eV, respectively. Calculations on mechanical properties indicate that 2D-TiC6 and 2D-HfC6 have good elasticity. By applying biaxial strain or external electric field, the electronic band gap of 2D-TiC6 and 2D-HfC6 can be effectively tuned. Due to the moderate direct band gap, the 2D-TiC6 exhibits smaller exciton binding energy (0.58 eV) and larger absorbed photon flux (0.66 mA cm−2) than those of 2D-HfC6. Particularly, the 2D-TiC6 shows potential for short wave infrared detection or emission applications when certain tensile strain is applied. This study provides new insight into the rational design of functional nanomaterials.


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Last updated on 2023-26-09 at 07:43