J. Mater. Sci. Technol. ›› 2023, Vol. 141: 236-244.DOI: 10.1016/j.jmst.2022.10.002
• Research Article • Previous Articles Next Articles
Anshuman Kumara, Zulfikhar A. Alib, Bryan M. Wongc,*
Received:
2022-08-01
Revised:
2022-09-14
Accepted:
2022-10-25
Published:
2023-04-01
Online:
2022-11-01
Contact:
*E-mail address: bryan.wong@ucr.edu (B.M. Wong) URL:http://www.bmwong-group.com (B.M. Wong)
Anshuman Kumar, Zulfikhar A. Ali, Bryan M. Wong. Efficient predictions of formation energies and convex hulls from density functional tight binding calculations[J]. J. Mater. Sci. Technol., 2023, 141: 236-244.
[1] C. Freysoldt, B. Grabowski, T. Hickel, J. Neugebauer, G. Kresse, A. Janotti, C.G. Van de Walle, Rev. Mod. Phys. 86 (1) (2014) 253. [2] M. Ai, J.-W. Zhang, Y.-W. Wu, L. Pan, C. Shi, J.-J. Zou, Chem. Asian J. 15 (22) (2020) 3599-3619. [3] C.G. Van de Walle, A. Janotti, physica status solidi (b) 248 (1) (2011) 19-27. [4] R.M. Nieminen, Modell. Simul. Mater. Sci. Eng. 17 (8) (2009) 084001. [5] P. Hohenberg, W. Kohn, Phys. Rev. B 136 (1964) 864-871. [6] W. Kohn, L.J. Sham, Phys. Rev. A 140 (1965) 1133-1138. [7] T. Frauenheim, F. Weich, T. Köhler, S. Uhlmann, D. Porezag, G. Seifert, Phys. Rev. B 52 (1995) 11492-11501. [8] D. Porezag, T. Frauenheim, T. Köhler, G. Seifert, R. Kaschner, Phys. Rev. B 51 (1995) 12947-12957. [9] J. Widany, T. Frauenheim, T. Köhler, M. Sternberg, D. Porezag, G. Jungnickel, G. Seifert, Phys. Rev. B 53 (1996) 4 4 43-4 452. [10] S.S. Yamijala, M.B. Oviedo, B.M. Wong, Ltd, 2022, pp. 45-79. [11] N.V. Ilawe, M.B. Oviedo, B.M. Wong, J. Chem. Theory Comput. 13 (8) (2017) 3442-3454. [12] N.V. Ilawe, M.B. Oviedo, B.M. Wong, J. Mater. Chem. C 6 (22) (2018) 5857-5864. [13] M.B. Oviedo, B.M. Wong, J. Chem. Theory Comput. 12 (4) (2016) 1862-1871. [14] S.I. Allec, Y. Sun, J. Sun, C.-e.A. Chang, B.M. Wong, J. Chem. Theory Comput. 15 (5) (2019) 2807-2815. [15] S.M. Islam, P.-N. Roy, J. Chem. Theory Comput. 8 (7) (2012) 2412-2423. [16] K. Leong, M.E. Foster, B.M. Wong, E.D. Spoerke, D. Van Gough, J.C. Deaton, M.D. Allendorf, J. Mater. Chem. A 2 (2014) 3389-3398. [17] J.M. Rodríguez-Borbón, A. Kalantar, S.S.R.K.C. Yamijala, M.B. Oviedo, W. Najjar, B.M. Wong, J. Chem. Theory Comput. 16 (4) (2020) 2085-2098. [18] A. Van der Ven, J. Thomas, Q. Xu, J. Bhattacharya, Math. Comput. Simul. 80 (7) (2010) 1393-1410. [19] A. Van der Ven, J.C. Thomas, Q. Xu, B. Swoboda, D. Morgan, Phys. Rev. B 78 (10) (2008) 104306. [20] A. Drozdov, M. Eremets, I. Troyan, V. Ksenofontov, S.I. Shylin, Nature 525 (7567) (2015) 73-76. [21] T. Ishikawa, T. Miyake, K. Shimizu, Phys. Rev. B 100 (17) (2019) 174506. [22] B. Guigue, A. Marizy, P. Loubeyre, Phys. Rev. B 95 (2) (2017) 020104. [23] M. Somayazulu, M. Ahart, A.K. Mishra, Z.M. Geballe, M. Baldini, Y. Meng, V.V. Struzhkin, R.J. Hemley, Phys. Rev. Lett. 122 (2) (2019) 027001. [24] A.P. Drozdov, P.P. Kong, V.S. Minkov, S.P. Besedin, M.A. Kuzovnikov, S. Mozaffari, L. Balicas, F.F. Balakirev, D.E. Graf, V.B. Prakapenka, E. Greenberg, D.A. Knyazev, M. Tkacz, M.I. Eremets, Nature 569 (2019) 528-531. [25] C.R. Weinberger, X.-X. Yu, H. Yu, G.B. Thompson, Comput. Mater. Sci 138 (2017) 333-345. [26] X.-X. Yu, C.R. Weinberger, G.B. Thompson, Comput. Mater. Sci. 112 (2016) 318-326. [27] A.R. Oganov, C.W. Glass, J. Chem. Phys. 124 (24) (2006) 244704. [28] A.R. Oganov, Y. Ma, A.O. Lyakhov, M. Valle, C. Gatti, Rev. Mineral. Geochem. 71 (1) (2010) 271-298. [29] Y. Wang, J. Lv, L. Zhu, Y. Ma, Phys. Rev. B 82 (9) (2010) 094116. [30] Y. Wang, J. Lv, L. Zhu, Y. Ma, Comput. Phys. Commun. 183 (10) (2012) 2063-2070. [31] D.-H. Yoon, I.E. Reimanis, J. Korean Ceram. Soc. 57 (3) (2020) 246-270. [32] X. She, A.Q. Huang, O. Lucia, B. Ozpineci, IEEE Trans. Ind. Electron. 64 (10) (2017) 8193-8205. [33] R. Madar, Nature 430 (2004) 974-975. [34] J. Casady, R.W. Johnson, Solid State Electron. 39 (10) (1996) 1409-1422. [35] C. Wöll, Prog. Surf. Sci. 82 (2-3) (2007) 55-120. [36] M. Elstner, D. Porezag, G. Jungnickel, J. Elsner, M. Haugk, T. Frauenheim, S. Suhai, G. Seifert, Phys. Rev. B 58 (11) (1998) 7260. [37] A. Santoro, A.D. Mighell, Acta Crystallogr. Section A 28 (3) (1972) 284-287. [38] A. Santoro, A.D. Mighell, Acta Crystallogr. Section A 29 (2) (1973) 169-175. [39] G.L.W. Hart, R.W. Forcade, Phys. Rev. B 77 (2008) 224115. [40] L. Ferreira, S.-H. Wei, A. Zunger, Int. J. Supercomput. Appl. 5 (1) (1991) 34- 56. [41] R. Wyckoff, Crystal Struct. 1 (1963) 85-237. [42] Y.-N. Xu, W. Ching, Phys. Rev. B 48 (7) (1993) 4335. [43] S. Desgreniers, Phys. Rev. B 58 (21) (1998) 14102. [44] G.L. Hart, L.J. Nelson, R.W. Forcade, Comput. Mater. Sci. 59 (2012) 101-107. [45] B. Puchala, A. Van der Ven, Phys. Rev. B 88 (2013) 094108. [46] G. Kresse, J. Hafner, Phys. Rev. B 47 (1993) 558-561. [47] G. Kresse, J. Furthmüller, Phys. Rev. B 54 (1996) 11169-11186. [48] P.E. Blöchl, Phys. Rev. B 50 (1994) 17953-17979. [49] G. Kresse, D. Joubert, Phys. Rev. B 59 (1999) 1758-1775. [50] J.P. Perdew, K. Burke, M. Ernzerhof, Phys. Rev. Lett. 77 (1996) 3865-3868. [51] S. Liu, E. Martínez, J. LLorca, Acta Mater. 195 (2020) 317-326. [52] D. Porezag, T. Frauenheim, T. Köhler, G. Seifert, R. Kaschner, Phys. Rev. B 51 (19) (1995) 12947. [53] G. Seifert, D. Porezag, T. Frauenheim, Int. J. Quantum Chem. 58 (2) (1996) 185-192. [54] T. Frauenheim, G. Seifert, M. Elsterner, Z. Hajnal, G. Jungnickel, D. Porezag, S. Suhai, R. Scholz, physica status solidi (b) 217 (1)(20 0 0) 41-62. [55] T. Frauenheim, G. Seifert, M. Elstner, T. Niehaus, C. Köhler, M. Amkreutz, M. Sternberg, Z. Hajnal, A. Di Carlo, S. Suhai, J. Phys. Condens. Matter 14 (11) (2002) 3015. [56] A.F. Oliveira, G. Seifert, T. Heine, H.A. Duarte, J. Braz. Chem. Soc. 20 (7) (2009) 1193-1205. [57] G. Seifert, J.-O. Joswig, Wiley Interdiscip. Rev. Comput.Mol. Sci. 2 (3) (2012) 456-465. [58] M. Gaus, Q. Cui, M. Elstner, J. Chem. Theory Comput. 7 (4) (2011) 931-948. [59] M. Bezi Javan, Appl. Phys. A 113 (1) (2013) 105-113. [60] R. Khalil, F. Hussain, N.A. Niaz, J. Mater. Phys. Sci. 2 (2) (2021) 88-94. [61] O. Arayawut, T. Kerdcharoen, C. Wongchoosuk, Nanomaterials 12 (11) (2022) 1869. [62] M. Hellström, K. Jorner, M. Bryngelsson, S.E. Huber, J. Kullgren, T. Frauenheim, P. Broqvist, J. Phys. Chem. C 117 (33) (2013) 17004-17015. [63] V.N. Tuoc, T.D. Huan, N.V. Minh, N.T. Thao, J. Phys. Conf.Ser. 726 (2016) 012022. [64] A.W. Huran, C. Steigemann, T. Frauenheim, B. Aradi, M.A. Marques, J. Chem. Theory Comput. 14 (6) (2018) 2947-2954. [65] N.H. Moreira, G. Dolgonos, B. Aradi, A.L. da Rosa, T. Frauenheim, J. Chem. Theory Comput. 5 (3) (2009) 605-614. [66] V.S. Naumov, A.S. Loginova, A .A . Avdoshin, S.K. Ignatov, A.V. Mayorov, B. Aradi, T. Frauenheim, Int. J. Quantum. Chem. 121 (2) (2021) e26427. [67] T.A. Niehaus, S.T. Melissen, B. Aradi, S.M.V. Allaei, J. Phys. Condens. Matter 31 (39) (2019) 395901. [68] S. Wang, Z. Fan, R.S. Koster, C. Fang, M.A. Van Huis, A.O. Yalcin, F.D. Tichelaar, H.W. Zandbergen, T.J. Vlugt, J. Phys. Chem. C 118 (20) (2014) 11050-11061. [69] M.P. Molepo, D.P. Joubert, Phys. Rev. B 84 (9) (2011) 094110. [70] P. Erhart, A. Klein, K. Albe, Phys. Rev. B 72 (8) (2005) 085213. [71] C.G. Van de Walle, Phys. Rev. Lett. 85 (5) (20 0 0) 1012. [72] E.-C. Lee, Y.-S. Kim, Y.-G. Jin, K.-J. Chang, Phys. Rev. B 64 (8) (2001) 085120. [73] P. Erhart, K. Albe, Phys. Rev. B 73 (11) (2006) 115207. [74] T.R. Paudel, W.R. Lambrecht, Phys. Rev. B 77 (20) (2008) 205202 . |
[1] | Na Li, Le Li, Jiawei Xia, Muhammad Arif, Shilong Zhou, Fengxiang Yin, Guangyu He, Haiqun Chen. Single-atom Co-N4 catalytic sites anchored on N-doped ordered mesoporous carbon for excellent Zn-air batteries [J]. J. Mater. Sci. Technol., 2023, 139(0): 224-231. |
[2] | Yuan Wang, Tao Zhang, Jianfei Xiao, Xiaobao Tian, Shaojun Yuan. Enhancing electrochemical performance of ultrasmall Fe2O3-embedded carbon nanotubes via combusting-induced high-valence dopants [J]. J. Mater. Sci. Technol., 2023, 134(0): 142-150. |
[3] | Zheng Zhang, Ying Huang, Xiang Li, Zhiming Zhou. Rational construction of hollow nanoboxes for long cycle life alkali metal ion batteries [J]. J. Mater. Sci. Technol., 2022, 102(0): 46-55. |
[4] | Zheao Huang, Qiancheng Zhou, Jieming Wang, Ying Yu. Fermi-level-tuned MOF-derived N-ZnO@NC for photocatalysis: A key role of pyridine-N-Zn bond [J]. J. Mater. Sci. Technol., 2022, 112(0): 68-76. |
[5] | Yangfan Zhang, Yao Li, Han Yu, Kai Yu, Hongbing Yu. Interfacial defective Ti3+ on Ti/TiO2 as visible-light responsive sites with promoted charge transfer and photocatalytic performance [J]. J. Mater. Sci. Technol., 2022, 106(0): 139-146. |
[6] | Xiaoran Yin, Haitao Wang, En-Hou Han. Cl-induced passivity breakdown in α-Fe2O3 (0001), α-Cr2O3 (0001), and their interface: A DFT study [J]. J. Mater. Sci. Technol., 2022, 129(0): 70-78. |
[7] | Zhihua Tian, Peigen Zhang, Yan Zhang, Jingwen Tang, Yushuang Liu, Jian Liu, ZhengMing Sun. Tin whisker growth from titanium-tin intermetallic and the mechanism [J]. J. Mater. Sci. Technol., 2022, 129(0): 79-86. |
[8] | Wei-Jian Li, Zi-Yao Chen, Hao Jiang, Xiao-Han Sui, Cong-Fei Zhao, Liang Zhen, Wen-Zhu Shao. Effects of interfacial wettability on arc erosion behavior of Zn2SnO4/Cu electrical contacts [J]. J. Mater. Sci. Technol., 2022, 109(0): 64-75. |
[9] | Yan Zhang, Chengjie Lu, Yun Dong, Min Zhou, Jiandang Liu, Hongjun Zhang, Bangjiao Ye, ZhengMing Sun. Insights into the dual-roles of alloying elements in the growth of Sn whiskers [J]. J. Mater. Sci. Technol., 2022, 117(0): 65-71. |
[10] | Chunyu Guo, Enhui Wang, Zhi Fang, Yapeng Zheng, Tao Yang, Zhijun He, Xinmei Hou. New design concept for stable α-silicon nitride based on the initial oxidation evolution at the atomic and molecular levels [J]. J. Mater. Sci. Technol., 2022, 122(0): 156-164. |
[11] | Nan Li, Qiuhui Zhu, Guimei Liu, Qi Zhao, Haiqin Lv, Mingzhe Yuan, Qingguo Meng, Yingtang Zhou, Jingkun Xu, Chuanyi Wang. Modulation of photocatalytic activity of SrBi2Ta2O9 nanosheets in NO removal by tuning facets exposure [J]. J. Mater. Sci. Technol., 2022, 122(0): 91-100. |
[12] | Mengmeng Fan, Jiewu Cui, Junjie Zhang, Jingjie Wu, Shuangming Chen, Li Song, Zixing Wang, Ao Wang, Robert Vajtai, Yucheng Wu, Pulickel M. Ajayan, Jianchun Jiang, Dongping Sun. The modulating effect of N coordination on single-atom catalysts researched by Pt-Nx-C model through both experimental study and DFT simulation [J]. J. Mater. Sci. Technol., 2021, 91(0): 160-167. |
[13] | Sheng Guo, Zhixiong Yang, Huali Zhang, Wei Yang, Jun Li, Kun Zhou. Enhanced photocatalytic degradation of organic contaminants over CaFe2O4 under visible LED light irradiation mediated by peroxymonosulfate [J]. J. Mater. Sci. Technol., 2021, 62(0): 34-43. |
[14] | Bin Wang, Yuanfu Chen, Qi Wu, Yingjiong Lu, Xiaojuan Zhang, Xinqiang Wang, Bo Yu, DongXu Yang, Wanli Zhang. A co-coordination strategy to realize janus-type bimetallic phosphide as highly efficient and durable bifunctional catalyst for water splitting [J]. J. Mater. Sci. Technol., 2021, 74(0): 11-20. |
[15] | Zhengkun Xie, Xiaowei An, Zhijun Wu, Xiyan Yue, Jiajia Wang, Xiaogang Hao, Abuliti Abudula, Guoqing Guan. Fluoropyridine family: Bifunction as electrolyte solvent and additive to achieve dendrites-free lithium metal batteries [J]. J. Mater. Sci. Technol., 2021, 74(0): 119-127. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||