INTERDISCIPLINARY PHYSICS AND RELATED AREAS OF SCIENCE AND TECHNOLOGY |
Prev
Next
|
|
|
Electronic, optical property and carrier mobility of graphene, black phosphorus, and molybdenum disulfide based on the first principles |
Congcong Wang(王聪聪), Xuesheng Liu(刘学胜), Zhiyong Wang(王智勇), Ming Zhao(赵明), Huan He(何欢), Jiyue Zou(邹吉跃) |
Beijing University of Technology, Institute of Laser Engineering, Beijing 100124, China |
|
|
Abstract The band structure, density of states, optical properties, carrier mobility, and loss function of graphene, black phosphorus (BP), and molybdenum disulfide (MoS2) were investigated by the first-principles method with the generalized-gradient approximation. The graphene was a zero-band-gap semiconductor. The band gaps of BP and MoS2 were strongly dependent on the number of layers. The relationships between layers and band gap were built to predict the band gap of few-layer BP and MoS2. The absorption showed an explicit anisotropy for light polarized in (100) and (001) directions of graphene, BP, and MoS2. This behavior may be readily detected in spectroscopic measurements and exploited for optoelectronic applications. Moreover, graphene (5.27×104 cm2·V-1·s-1), BP (1.5×104 cm2·V-1·s-1),and MoS2(2.57×102 cm2·V-1·s-1) have high carrier mobility. These results show that graphene, BP, and MoS2 are promising candidates for future electronic applications.
|
Received: 22 July 2018
Revised: 30 August 2018
Accepted manuscript online:
|
PACS:
|
81.05.ue
|
(Graphene)
|
|
71.15.Mb
|
(Density functional theory, local density approximation, gradient and other corrections)
|
|
73.20.At
|
(Surface states, band structure, electron density of states)
|
|
Fund: Project supported by the National Key R&D Program of China (Grant No. 2017YFB0305800). |
Corresponding Authors:
Xuesheng Liu
E-mail: liuxuesheng@bjut.edu.cn
|
Cite this article:
Congcong Wang(王聪聪), Xuesheng Liu(刘学胜), Zhiyong Wang(王智勇), Ming Zhao(赵明), Huan He(何欢), Jiyue Zou(邹吉跃) Electronic, optical property and carrier mobility of graphene, black phosphorus, and molybdenum disulfide based on the first principles 2018 Chin. Phys. B 27 118106
|
[1] |
Qiao J S, Kong X H, Hu Z X, Yang F and Ji W 2014 Nat. Commun. 5 5475
|
[2] |
Cai Y Q, Zhang G and Zhang Y W 2014 Sci. Rep-Uk 4 6677
|
[3] |
Takahashi T, Tokailin H, Suzuki S, Sagawa T and Shirotani I 1984 Phys. Rev. B 29 1105
|
[4] |
Rudenko A N and Katsnelson M I 2014 Phys. Rev. B 89 201408
|
[5] |
Wang C C, Zhan Y and Wang Z Y 2018 Chemistryselect 3 1713
|
[6] |
Hu J S, Ji G P, Ma X G, He H and Huang C Y 2018 Appl. Surf. Sci. 440 35
|
[7] |
Phuc H V, Hieu N N, Hoi B D, Hieu N V, Thu T V, Hung N M, Ilyasov V V, Poklonski N A and Nguyen C V 2018 J. Electron. Mater 47 730
|
[8] |
Jia W L, Zhou M, Wang X M and Ji W L 2018 Acta Phys. Sin. 67 107102
|
[9] |
Menezes M G and Capaz R B 2018 Comp. Mater Sci. 143 411
|
[10] |
Phuc H V, Ilyasov V V, Hieu N N and Nguyen C V 2018 Vacuum 149 231
|
[11] |
Carlsson J M and Scheffler M 2006 Phys. Rev. Lett. 96 046806
|
[12] |
Huang G Q and Xing Z W 2015 J. Phys-Condens Mat. 27 175006
|
[13] |
Cartz L, Srinivasa S R, Riedner R J, Jorgensen J D and Worlton T G 1979 J. Chem. Phys. 71 1718
|
[14] |
Scalise E, Houssa M, Pourtois G, Afanas'ev V V and Stesmans A 2014 Physica E 56 416
|
[15] |
Cao J, Zhou J, Zhang Y and Liu X 2018 Microelectronic Engineering 190 63
|
[16] |
Wei Q and Peng X H 2014 Appl. Phys. Lett. 104 372
|
[17] |
Zhang Z, Zhao Y and Ouyang G 2017 The Journal of Physical Chemistry C 121 19296
|
[18] |
Zhu J, Park H, Chen J Y, Gu X K, Zhang H, Karthikeyan S, Wendel N, Campbell S A, Dawber M, Du X, Li M, Wang J P, Yang R G and Wang X J 2016 Adv. Electron Mater 2 1600040
|
[19] |
Jin W C, Yeh P C, Zaki N, Zhang D T, Sadowski J T, Al-Mahboob A, van der Zande A M, Chenet D A, Dadap J I, Herman I P, Sutter P, Hone J and Osgood R M 2013 Phys. Rev. Lett. 111 106801
|
[20] |
L Kane C and J Mele E 2005 Phys. Rev. Lett. 95 226801
|
[21] |
Bolotin K I, Sikes K J, Jiang Z, Klima M, Fudenberg G, Hone J, Kim P and Stormer H L 2008 Solid State Commun. 146 351
|
[22] |
Das S, Chen H Y, Penumatcha A V and Appenzeller J 2013 Nano Lett. 13 100
|
[23] |
Kim S, Konar A, Hwang W S, Lee J H, Lee J, Yang J, Jung C, Kim H, Yoo J B, Choi J Y, Jin Y W, Lee S Y, Jena D, Choi W and Kim K 2012 Nat. Commun. 3 1038
|
No Suggested Reading articles found! |
|
|
Viewed |
|
|
|
Full text
|
|
|
|
|
Abstract
|
|
|
|
|
Cited |
|
|
|
|
Altmetric
|
blogs
Facebook pages
Wikipedia page
Google+ users
|
Online attention
Altmetric calculates a score based on the online attention an article receives. Each coloured thread in the circle represents a different type of online attention. The number in the centre is the Altmetric score. Social media and mainstream news media are the main sources that calculate the score. Reference managers such as Mendeley are also tracked but do not contribute to the score. Older articles often score higher because they have had more time to get noticed. To account for this, Altmetric has included the context data for other articles of a similar age.
View more on Altmetrics
|
|
|