CONDENSED MATTER: STRUCTURAL, MECHANICAL, AND THERMAL PROPERTIES |
Prev
Next
|
|
|
C9N4 as excellent dual electrocatalyst: A first principles study |
Wei Xu(许伟)1, WenWu Xu(许文武)1,2, and Xiangmei Duan(段香梅)1,2,† |
1 School of Physical Science and Technology, Ningbo University, Ningbo 315211, China; 2 Laboratory of Clean Energy Storage and Conversion, Ningbo University, Ningbo 315211, China |
|
|
Abstract We perform first principles calculations to investigate the catalytic behavior of C9N4 nanosheet for water splitting. For the pristine C9N4, we find that, at different hydrogen coverages, two H atoms adsorbed on the 12-membered ring and one H atom adsorbed on the 9-membered ring show excellent performance of hydrogen evolution reaction (HER). Tensile strain could improve the catalytic ability of C9N4 and strain can be practically introduced by building C9N4/BiN, and C9N4/GaAs heterojunctions. We demonstrate that the HER performance of heterojunctions is indeed improved compared with that of C9N4 nanosheet. Anchoring transition metal atoms on C9N4 is another strategy to apply strain. It shows that Rh@C9N4 exhibits superior HER property with very low Gibbs free energy change of -30 meV. Under tensile strain within ~2%, Rh@C9N4 could catalyze HER readily. Moreover, the catalyst Rh@C9N4 works well for oxygen evolution reaction (OER) with an overpotential of 0.58 V. Our results suggest that Rh@C9N4 is favorable for both HER and OER because of its metallic conductivity, close-zero Gibbs free energy change, and low oneset overpotential. The outstanding performance of C9N4 nanosheet could be attributed to the tunable porous structure and electronic structure compatibility.
|
Received: 09 June 2021
Revised: 09 June 2021
Accepted manuscript online: 21 June 2021
|
PACS:
|
68.65.-k
|
(Low-dimensional, mesoscopic, nanoscale and other related systems: structure and nonelectronic properties)
|
|
81.05.Rm
|
(Porous materials; granular materials)
|
|
71.15.Mb
|
(Density functional theory, local density approximation, gradient and other corrections)
|
|
87.16.D-
|
(Membranes, bilayers, and vesicles)
|
|
Fund: Project supported by the National Natural Science Foundation of China (Grant Nos. 11574167 and 11874033) and the K C Wong Magna Foundation in Ningbo University. |
Corresponding Authors:
Xiangmei Duan
E-mail: duanxiangmei@nbu.edu.cn
|
Cite this article:
Wei Xu(许伟), WenWu Xu(许文武), and Xiangmei Duan(段香梅) C9N4 as excellent dual electrocatalyst: A first principles study 2021 Chin. Phys. B 30 096802
|
[1] Dresselhaus M S and Thomas I L 2001 Nature 414 332 [2] Balat M 2008 Int. J. Hydrogne Energ. 33 4013 [3] Mccrory C C L, Jung S, Ferrer I M, Chatman S, Peters J C and Jaramillo T F 2015 J. Am. Chem. Soc. 137 4347 [4] Norskov J K, Bligaard T, Logadottir A, Kitchin J R, Chen J G, Pandelov S and Stimming U 2005 J. Electrochem. Soc. 152 J23 [5] Lee Y, Suntivich J, May K J, Perry E E and Shaohorn Y 2012 J. Phys. Chem. Lett. 3 399 [6] Liu X and Dai L 2016 Nat. Rev. Mater. 1 16064 [7] Zhang X, Chen A, Zhang Z H, Jiao M G and Zhou Z 2018 J. Mater. Chem. A 6 11446 [8] Tang L, Meng X, Deng D and Bao X 2019 Adv. Mater. 31 1901996 [9] Fei H, Dong J, Feng Y, Allen C S, Wan C, Volosskiy B, Li M, Zhao Z, Wang Y and Sun H 2018 Nat. Catal. 1 63 [10] Zheng Y, Jiao Y, Zhu Y H, Li L H, Han Y, Chen Y, Du A J, Jaroniec M and Qiao S Z 2014 Nat. Commun. 5 3783 [11] Mortazavi B, Shahrokhi M, Shapeev A V, Rabczuk T and Zhuang X 2019 J. Mater. Chem. C 7 10908 [12] Kresse G and Furthmuller J 1996 Phys. Rev. B 54 11169 [13] Kresse G and Joubert D P 1999 Phys. Rev. B 59 1758 [14] Perdew J P, Burke K and Ernzerhof M 1996 Phys. Rev. Lett. 77 3865 [15] Grimme S, Antony J, Ehrlich S and Krieg H 2010 J. Chem. Phys. 132 154104 [16] Henkelman G, Uberuaga B P and Jónsson H 2000 J. Chem. Phys. 113 9901 [17] Henkelman G, Arnaldsson A and Jonsson H 2006 Comp. Mater. Sci. 36 354 [18] Greeley J, Jaramillo T F, Bonde J, Chorkendorff I and Norskov J K 2006 Nat. Mater. 5 909 [19] Greeley J, Norskov J K, Kibler L A, Elaziz A M and Kolb D M 2006 ChemPhysChem 7 1032 [20] Yu S, Rao Y, Wu H and Duan X 2018 Phys. Chem. Chem. Phys. 20 27970 [21] Gao D, Xia B, Wang Y, Xiao W, Xi P, Xue D and Ding J 2018 Small 14 1704150 [22] Norskov J K, Rossmeisl J, Logadottir A, Lindqvist L, Kitchin J R, Bligaard T and Jónsson H 2004 J. Phys. Chem. B 108 17886 [23] Man I C, Su H, Callevallejo F, Hansen H A, Martinez J I, Inoglu N, Kitchin J R, Jaramillo T F, Norskov J K and Rossmeisl J 2011 ChemCatchem 3 1159 [24] Gao G, Sun Q and Du A 2016 J. Phys. Chem. C 120 16761 [25] Gao G, Jiao Y, Ma F, Jiao Y, Waclawik E R and Du A 2015 J. Catal. 332 149 [26] Geng S, Yang W and Yu Y S 2019 J. Catal. 375 441 [27] Tang Y, Liu M, Zhou Y, Ren C, Zhong X and Wang J 2020 J. Alloys Compd. 842 155901 [28] Zhou W, Zhang S, Guo S, Wang Y, Lu J, Ming X, Li Z, Qu H and Zeng H 2020 Phys. Rev. Appl. 13 044066 [29] Zhuang H L, Singh A K and Hennig R G 2013 Phys. Rev. B 87 165415 [30] Zhou Y, Gao G, Kang J, Chu W and Wang L 2019 Nanoscale 11 18169 [31] Rao Y C, Peng Z, Li S F, Duan X M and Wei S H 2018 Phys. Chem. Chem. Phys. 20 12916 [32] Huang J, Zhou C, Chu Z, Liu X and Duan X 2021 Phys. Chem. Chem. Phys. 23 1868 [33] Changhyeok C, Seoin B, Na-Young K, Juhyung L, Yong-Hyun K and Yousung J 2018 ACS Catal. 8 7517 [34] Zhu Y D, Zhao K, Shi J L, Ren X Y, Zhao X J, Shang Y, Xue X L, Guo H Z, Duan X M, He H, Guo Z X and Li S F 2019 ACS. Appl. Mater. Inter. 11 32887 [35] Norskov J K 1991 Prog. Surf. Sci. 38 103 [36] Li Z, Yao Y, Wang T, Lu K, Zhang P, Zhang W and Yin J 2019 Appl. Surf. Sci. 496 143730 [37] Sahin H, Cahangirov S, Topsakal M, Bekaroglu E, Akturk E, Senger R T and Ciraci S 2009 Phys. Rev. B 80 155453 [38] Ma Y, Dai Y, Guo M, Niu C, Yu L and Huang B 2011 Appl. Surf. Sci. 257 7845 [39] Cui X, Ren P, Deng D, Deng J and Bao X 2016 Energ. Environ. Sci. 9 123 [40] Man I C, Su H Y, Calle-Vallejo F, Hansen H A, Martinez J I, Inoglu N G and Rossmeisl J 2011 ChemCatchem 3 1159 [41] Zhang T, Zhang B, Peng Q, Zhou J and Sun Z 2021 J. Mater. Chem. A 9 433 [42] Wang J R, Fan Y C, Qi S Y, Li W F and Zhao M W 2020 J. Phys. Chem. C 124 9350 |
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
|
|
|