Reactivity of the Defective Rutile TiO2 (110) Surfaces with Two Bridging-Oxygen Vacancies: Water Molecule as a Probe

被引:19
|
作者
Shi, Hui
Liu, Ying-Chun
Zhao, Zhi-Jian
Miao, Meng
Wu, Tao [1 ]
Wang, Qi
机构
[1] Zhejiang Univ, Dept Chem, Hangzhou 310027, Peoples R China
基金
中国国家自然科学基金;
关键词
TOTAL-ENERGY CALCULATIONS; REDUCED TIO2(110); DISSOCIATION; METHANOL; ADSORPTION; DIFFUSION; H2O; TRANSITION; DYNAMICS; POINTS;
D O I
10.1021/jp500721z
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
Defective rutile TiO2 (110) surfaces with one bridging-oxygen vacancy pair (OW) and two next nearest neighbored bridging-oxygen vacancies belonging to the same row (NNN-OVs, i.e., two bridging-oxygen vacancies separated by a single oxygen atom) were studied using density functional theory (DFT) calculations. The results of a perfect surface and a defective surface with single bridging-oxygen vacancy (OV) were also shown. The reactivity of these surfaces was investigated by studying their interaction with a water molecule. Results show the NNN-OVs site is the most favorable site for water adsorption of two modes, molecular and dissociated adsorption, especially for dissociated adsorption. Upon dissociated adsorption on the NNN-OVs site, the whole system would release energy of 2.07 eV, much more than the energy released in any other site. It indicates the high reactivity of NNN-OVs as the best trap center. The 5-fold Ti sites show similar behaviors despite the existence of different defects. Adsorption on this site is the least stable, and molecular adsorption is favored. A water molecule needs to overcome energy barriers of 0.25-0.27 eV to dissociate on 5-fold Ti atoms. However, the recombination barrier is even lower, and the fragments would recombine and exist stably in the molecular mode. Slightly higher barriers are observed on the defective sites.
引用
收藏
页码:20257 / 20263
页数:7
相关论文
共 50 条
  • [1] Bias-Dependent Scanning Tunneling Microscopy Signature of Bridging-Oxygen Vacancies on Rutile TiO2(110)
    Maddox, Willie B.
    Acharya, Danda P.
    Leong, G. Jeremy
    Sutter, Peter
    Ciobanu, Cristian V.
    ACS OMEGA, 2018, 3 (06): : 6540 - 6545
  • [2] Interactions of same-row oxygen vacancies on rutile TiO2(110)
    Kappes, B. B.
    Maddox, W. B.
    Acharya, D. P.
    Sutter, P.
    Ciobanu, C. V.
    PHYSICAL REVIEW B, 2011, 84 (16):
  • [3] Adsorption and dissociation of methanol on defective rutile TiO2 (110) surface with bridging oxygen-vacancy pairs
    Shi, Hui
    Liu, Ying-Chun
    Miao, Meng
    Wu, Tao
    Wang, Qi
    CHEMICAL PHYSICS LETTERS, 2013, 584 : 98 - 102
  • [4] Reaction Kinetics of Water Molecules with Oxygen Vacancies on Rutile TiO2(110)
    Petrik, Nikolay G.
    Kimmel, Greg A.
    JOURNAL OF PHYSICAL CHEMISTRY C, 2015, 119 (40) : 23059 - 23067
  • [5] Diffusion of oxygen vacancies on a strained rutile TiO2(110) surface
    Wang, Zhao-Wu
    Shu, Da-Jun
    Wang, Mu
    Ming, Nai-Ben
    PHYSICAL REVIEW B, 2010, 82 (16):
  • [6] Existence of basal oxygen vacancies on the rutile TiO2 (110) surface
    Matsunaga, Katsuyuki
    Tanaka, Yusuke
    Toyoura, Kazuaki
    Nakamura, Atsutomo
    Ikuhara, Yuichi
    Shibata, Naoya
    PHYSICAL REVIEW B, 2014, 90 (19):
  • [7] Tailored TiO2(110) surfaces and their reactivity
    Pang, C. L.
    Bikondoa, O.
    Humphrey, D. S.
    Papageorgiou, A. C.
    Cabailh, G.
    Ithnin, R.
    Chen, Q.
    Muryn, C. A.
    Onishi, H.
    Thornton, G.
    NANOTECHNOLOGY, 2006, 17 (21) : 5397 - 5405
  • [8] Interaction of CO2 with oxygen adatoms on rutile TiO2(110)
    Lin, Xiao
    Wang, Zhi-Tao
    Lyubinetsky, Igor
    Kay, Bruce D.
    Dohnalek, Zdenek
    PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2013, 15 (17) : 6190 - 6195
  • [9] Oxidative decomposition of dimethyl methylphosphonate on rutile TiO2(110): the role of oxygen vacancies
    Tesvara, Celine
    Walenta, Constantin
    Sautet, Philippe
    PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2022, 24 (38) : 23402 - 23419
  • [10] Photocatalyzed oxidation of water on oxygen pretreated rutile TiO2 (110)
    Wang, Zhiqiang
    Gao, Yajie
    Wang, Tianjun
    Chen, Wei
    Ren, Zefeng
    Yang, Xueming
    Zhou, Chuanyao
    CHINESE CHEMICAL LETTERS, 2025, 36 (04)