Catalytic mechanisms of TiH2 thin layer on dehydrogenation behavior of fluorite-type MgH2: A first principles study

被引:11
|
作者
Chen, Yuying [1 ]
Dai, Jianhong [1 ]
Song, Yan [1 ]
机构
[1] Harbin Inst Technol Weihai, Sch Mat Sci & Engn, 2 West Wenhua Rd, Weihai 264209, Peoples R China
关键词
MgH2/TiH2; interface; Dehydrogenation; Hydrogen diffusion; DFT calculations; HYDROGEN STORAGE PROPERTIES; TOTAL-ENERGY CALCULATIONS; DE/REHYDROGENATION PROPERTIES; DESORPTION PROPERTIES; UNIVERSAL FEATURES; FACILE SYNTHESIS; KINETICS; DIFFUSION; PERFORMANCE; THERMODYNAMICS;
D O I
10.1016/j.ijhydene.2020.05.141
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
DFT calculations were carried out to investigate hydrogen release and diffusion behaviors. Results demonstrated that MgH2/TiH2 interface is thermodynamically stable with negative adhesion energy of -1.33 J/m(2) with respect to the individual MgH2 and TiH2 slabs. The formation of MgH2/TiH2 interface alters the interstice structure and space of the interstitial sites where H atoms located and then significantly lowers the dehydrogenation energy of hydrogen releasing from both the MgH2 and TiH2 slabs nearby the interface comparing the bulk MgH2 and TiH2 The smallest dehydrogenation energy of 0.06 eV/H could be reached when H releases from MgH2 side. The study also illustrates that the existence of the MgH2/TiH2 interface promotes the diffusion of hydrogen vacancy. The lowest diffusion barrier of hydrogen vacancy in the MgH2 slab (from the sublayer to the frontier layer to the interface) is estimated as 0.21 eV. Based on the present study, one can deduce that the dehydrogenation of the MgH2/TiH2 system will start by H releasing from MgH2 slab, which generates H vacancies near the interface, then the interior H of MgH2 migrates to the H vacancies (diffuse of H vacancies in the opposite direction) and releases. The TiH2 acts as a catalyst promoting the generation and diffusion of H vacancies in MgH2. Therefore synthesizing of MgH2/TiH2/MgH2 sandwich structure could be an effective approach to promote the dehydrogenation process of MgH2, and an ideal structure owning geometric hydrogen capacity of 6.45 wt%. (C) 2020 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:21600 / 21610
页数:11
相关论文
共 26 条
  • [21] Excellent catalytic activity of two-dimensional Ti2C and Ti2CT2 (T = O, F, OH) monolayers on hydrogen storage of MgH2: First-principles calculations
    Huang, Zhuonan
    Wang, Yuqi
    Zhang, Meiguang
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2021, 46 (66) : 33176 - 33185
  • [22] First-principles study on energetics and electronic structures of Ni and M (M = Zr, Nb) co-doped MgH2
    Zhao, Shuning
    Liu, Ye
    Sun, Gaili
    Wang, Lili
    PROCEEDINGS OF 2024 INTERNATIONAL CONFERENCE ON POWER ELECTRONICS AND ARTIFICIAL INTELLIGENCE, PEAI 2024, 2024, : 158 - 165
  • [23] Effects of Oxygen Vacancy and Pt Doping on the Catalytic Performance of CeO2 in Propane Dehydrogenation: A First-Principles Study
    Zeeshan, Muhammad
    Chang, Qing-Yu
    Zhang, Jun
    Hu, Ping
    Sui, Zhi-Jun
    Zhou, Xing-Gui
    Chen, De
    Zhu, Yi-An
    CHINESE JOURNAL OF CHEMISTRY, 2021, 39 (09) : 2391 - 2402
  • [24] First-Principles Study on Relaxor-Type Ferroelectric Behavior without Chemical Inhomogeneity in BaTaO2N and SrTaO2N
    Hinuma, Yoyo
    Moriwake, Hiroki
    Zhang, Ya-Ru
    Motohash, Teruki
    Kikkawa, Shinichi
    Tanaka, Isao
    CHEMISTRY OF MATERIALS, 2012, 24 (22) : 4343 - 4349
  • [25] Nonequilibrium spin texture within a thin layer below the surface of current-carrying topological insulator Bi2Se3: A first-principles quantum transport study
    Chang, Po-Hao
    Markussen, Troels
    Smidstrup, Soren
    Stokbro, Kurt
    Nikolic, Branislav K.
    PHYSICAL REVIEW B, 2015, 92 (20)
  • [26] Structural and Na-ion diffusion behavior of O3/P3/P2-type NaNi1/3Mn1/3Fe1/3O2 cathode for Na-ion batteries from first-principles study
    Su, Lei
    Sun, Baozhen
    Wu, Musheng
    Liu, Gang
    Xu, Bo
    Ouyang, Chuying
    JOURNAL OF CHEMICAL PHYSICS, 2024, 160 (06):