Adsorption Configurations and Decomposition Pathways of Boric Acid on TiO2 Rutile (110) Surface: A Computational Study

被引:14
作者
Raghunath, P. [1 ]
Lin, M. C. [1 ,2 ]
机构
[1] Natl Chiao Tung Univ, Inst Mol Sci, Ctr Interdisciplinary Mol Sci, Hsinchu 300, Taiwan
[2] Emory Univ, Dept Chem, Atlanta, GA 30322 USA
关键词
MOLECULAR-DYNAMICS SIMULATION; SOLAR-CELLS; ELECTRON-TRANSFER; INDIUM NITRIDE; HYDRAZOIC ACID; FORMIC-ACID; ANATASE; 101; ENERGY; SENSITIZERS; PHOSPHONATE;
D O I
10.1021/jp810199y
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
We have investigated the adsorption and reactions of the monomer and dimer of B(OH)(3) on TiO2 rutile (110) surface by first-principles calculations. The most stable adsorption structure for B(OH)(3) On the surface is a molecular monodentate configuration, with one hydrogen bonded to a neighboring surface bridging oxygen with an adsorption energy of 20.1 kcal/mol. The adsorbed B(OH)(3) molecule can dissociate into the bidentate adsorption configuration, Ti-OB(OH)O-Ti(a), in which the -OB(OH)O- moiety binds to the surface through two Ti-O bonds with the two dissociated H atoms on neighboring bridged surface oxygen atoms following stepwise H-migration. Notably, the adsorption energy for Ti-OB(OH)O-Ti(a) with 2 H on two O-b surface atoms is 134.6 kcal/mol. In the case of dimer there are two identical molecules similar to monodentate configuration of B(OH)(3) adsorbed on two 5-fold-coordinated Ti atoms of the surface with an adsorption energy of 37.9 kcal/mol. Following intramolecular dehydration and successive migrations of protons from two OH groups to neighboring Ob sites, very stable Ti-OB(OH)OB(OH)O-Ti adsorbate can be readily formed with 141.1 kcal/mol binding energy. Both Ti-OB(OH)O-Ti(a) and Ti-OB(OH)OB(OH)O-Ti(a) adsorbates can be ideally employed as linkers between semiconductor quantum dots such as metal nitride or selenides and TiO2 nanoparticles by pretreatment of nanoparticle films with B(OH)(3). A similar study on the adsorption and reactions of B(OH)(3) on anatase (101) surface has been recently reported. The most noticeable difference is that B(OH)(3) and its dimer on the rutile surface have slightly higher binding energies than those on the anatase surface and that the rutile surface is more effective for proton migration from the acid to the surface O-atom.
引用
收藏
页码:3751 / 3762
页数:12
相关论文
共 57 条
[1]   A theoretical study of HCO2H adsorption on TiO2(110) [J].
Ahdjoudj, J ;
Minot, C .
CATALYSIS LETTERS, 1997, 46 (1-2) :83-91
[2]   Adsorption bond length for H2O on TiO2(110):: A key parameter for theoretical understanding -: art. no. 226104 [J].
Allegretti, F ;
O'Brien, S ;
Polcik, M ;
Sayago, DI ;
Woodruff, DP .
PHYSICAL REVIEW LETTERS, 2005, 95 (22)
[3]   Quantitative determination of the local structure of H2O on TiO2(110) using scanned-energy mode photoelectron diffraction [J].
Allegretti, F ;
O'Brien, S ;
Polcik, M ;
Sayago, DI ;
Woodruff, DP .
SURFACE SCIENCE, 2006, 600 (07) :1487-1496
[4]  
[Anonymous], 1996, The Surface Science of Metal Oxides
[5]   Effects of surface anchoring groups (Carboxylate vs phosphonate) in ruthenium-complex-sensitized TiO2 on visible light reactivity in aqueous suspensions [J].
Bae, EY ;
Choi, WY ;
Park, JW ;
Shin, HS ;
Kim, SB ;
Lee, JS .
JOURNAL OF PHYSICAL CHEMISTRY B, 2004, 108 (37) :14093-14101
[6]   The adsorption and dissociation of ROH molecules on TiO2(110) [J].
Bates, SP ;
Kresse, G ;
Gillan, MJ .
SURFACE SCIENCE, 1998, 409 (02) :336-349
[7]   Electron transfer dynamics in quantum dot/titanium dioxide composites formed by in situ chemical bath deposition [J].
Blackburn, JL ;
Selmarten, DC ;
Nozik, AJ .
JOURNAL OF PHYSICAL CHEMISTRY B, 2003, 107 (51) :14154-14157
[8]   Adsorption configurations and energetics of BClx (x=0-3) on TiO2 anatase (101) and rutile (110) surfaces [J].
Chang, Jee-Gong ;
Wang, Jenghan ;
Lin, M. C. .
JOURNAL OF PHYSICAL CHEMISTRY A, 2007, 111 (29) :6746-6754
[9]   Epitaxial growth of InN films by molecular-beam epitaxy using hydrazoic acid (HN3) as an efficient nitrogen source [J].
Chen, J. T. ;
Hsiao, C. L. ;
Hsu, H. C. ;
Wu, C. T. ;
Yeh, C. L. ;
Wei, P. C. ;
Chen, L. C. ;
Chen, K. H. .
JOURNAL OF PHYSICAL CHEMISTRY A, 2007, 111 (29) :6755-6759
[10]  
CLEPERLEY DM, 1980, PHYS REV LETT, V45, P566