Interaction of catechol and gallic acid with titanium dioxide in aqueous suspensions. 1. Equilibrium studies

被引:147
|
作者
Araujo, PZ
Morando, PJ
Blesa, MA
机构
[1] Comis Nacl Energia Atom, Unidad Actividad Quim, Ctr Atom Constituyentes, RA-1650 San Martin, Buenos Aires, Argentina
[2] Univ Nacl San Martin, Inst Tecnol J Sabato, San Martin, Buenos Aires, Argentina
[3] Consejo Nacl Invest Cient & Tecn, San Martin, Buenos Aires, Argentina
[4] Univ Nacl San Martin, Escuela Posgrado, San Martin, Buenos Aires, Argentina
关键词
D O I
10.1021/la0476985
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The adsorption isotherms of catechol (1,2-dihydroxybenzene) and gallic acid (3,4,5-trihydroxybenzoic acid) onto titanium dioxide (Degussa P-25) were measured at various pH values and room temperature using attenuated total reflection Fourier transform infrared (FTIR-ATR) data, processed by singular value decomposition. The affinity is largely pH independent, although the deprotonatation of the carboxylic group in gallic acid might produce a slight increase in the affinity. Catechol was shown to form two complexes, with Langmuir stability constants log K of 4.66 (strong mode) and 3.65 (weak mode). Both complexes have the same spectral signature, and mononuclear and binuctar chelate structures are proposed for them. Gallic acid chemisorbs by complexation through two -OH groups and forms one complex only, log K = 4.70. The third - OH and the pendant carboxylate do not influence much the stability of the surface complex. Comparison with literature data demonstrates that the affinity of 4-chlorocatechol is also similar, whereas 2,3-dihidroxynaphthalene and 4-nitrocatechol form more stable complexes, probably because of the solvation contribution to the overall Gibbs adsorption energy. All quoted constants refer to the surface complexation equilibria written as follows: (equivalent to Ti-OH)(2) + H2L = (equivalent to Ti)(2)-L + 2H(2)O, i.e., as electroneutral processes. The FTIR-ATR spectra of the surface complexes are also discussed.
引用
收藏
页码:3470 / 3474
页数:5
相关论文
共 50 条
  • [1] Effect of pH on the photocatalytic oxidation of aqueous ammonia and nitrite in titanium dioxide suspensions.
    Zhu, XD
    Castleberry, SR
    Nanny, MA
    Butler, EC
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2004, 228 : U546 - U546
  • [2] The effect of poly(methacrylic acid) on electrosurface properties of titanium dioxide in aqueous suspensions
    R. S. Petryshyn
    Z. M. Yaremko
    M. N. Soltys
    Colloid Journal, 2013, 75 : 698 - 705
  • [3] The effect of poly(methacrylic acid) on electrosurface properties of titanium dioxide in aqueous suspensions
    Petryshyn, R. S.
    Yaremko, Z. M.
    Soltys, M. N.
    COLLOID JOURNAL, 2013, 75 (06) : 698 - 705
  • [4] Equilibrium studies of yttrium adsorption from aqueous solutions by titanium dioxide
    Vasylyeva, Hanna
    Mironyuk, Ivan
    Mykytyn, Igor
    Savka, Khrystyna
    APPLIED RADIATION AND ISOTOPES, 2021, 168
  • [5] Ultrasonic studies on the molecular interaction of gallic acid in aqueous methanol and acetone solutions and the role of gallic acid as viscosity reducer
    Govindarajan, S
    Kannappan, V
    Naresh, MD
    Venkataboopathy, K
    Lokanadam, B
    JOURNAL OF MOLECULAR LIQUIDS, 2003, 107 (1-3) : 289 - 316
  • [6] Photocatalytic degradation of CI Acid Blue 80 in aqueous suspensions of titanium dioxide under sunlight
    Su, Yingying
    Deng, Liping
    Zhang, Ning
    Wang, Xinting
    Zhu, Xiaobin
    REACTION KINETICS AND CATALYSIS LETTERS, 2009, 98 (02): : 227 - 240
  • [8] Photocatalytic degradation of CI Acid Green 25 and CI Acid Red 88 in aqueous suspensions of titanium dioxide
    Saquib, M
    Muneer, M
    COLORATION TECHNOLOGY, 2002, 118 (06) : 307 - 315
  • [9] Photodegradation of a herbicide derivative, 2,4-dichlorophenoxy acetic acid in aqueous suspensions of titanium dioxide
    Singh, HK
    Muneer, M
    RESEARCH ON CHEMICAL INTERMEDIATES, 2004, 30 (03) : 317 - 329
  • [10] Photodegradation of a herbicide derivative, 2,4-dichlorophenoxy acetic acid in aqueous suspensions of titanium dioxide
    H K Singh
    M Muneer
    Research on Chemical Intermediates, 2004, 30 : 317 - 329