Active sites and the non-steady-state dissolution of hematite

被引:28
|
作者
Samson, SD [1 ]
Eggleston, CM [1 ]
机构
[1] Univ Wyoming, Dept Geol & Geophys, Laramie, WY 82071 USA
关键词
D O I
10.1021/es9803097
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Transient, non-steady-state responses of hematite dissolution rate to pH-jumps, from high to low pH, contain information about dissolution mechanisms and can he used to improve our understanding of dissolution processes operating under variable natural conditions. Our data show that, following each downward pH-jump, the hematite dissolution rate jumps up but then decays exponentially to a new steady state over a period of about 36 h. This requires that, after a pH-jump, the nature of the surface Fe sites themselves, and not only surface charge, gradually changes. Our results are consistent with the depletion of a reservoir of Fe sites active for dissolution on the hematite surface after a jump to pH 1, and show that such active sites can be reproducibly regenerated during returns to higher pH. We interpret the data with regard to long-standing crystal growth and dissolution models [e.g., Burton- Cabrera- Frank, BCF (Burton, W. K.; Cabrera, N.; Frank, F. C. Philos. Trans. R. Sec. London Ser. A 1951, 243, 299-358)] that assume the existence of "adsorbed nutrient" that is structurally distinct from metal centers in the solid surface structure. The general concept behind the model should be applicable to other minerals as well as hematite.
引用
收藏
页码:2871 / 2875
页数:5
相关论文
共 50 条
  • [31] NON-STEADY-STATE SUPERSATURATIONS IN THERMAL DIFFUSION CHAMBERS
    FITZGERALD, JW
    JOURNAL OF THE ATMOSPHERIC SCIENCES, 1970, 27 (01) : 70 - +
  • [32] SEMIPARAMETRIC ANALYSIS OF NON-STEADY-STATE PHARMACODYNAMIC DATA
    VEROTTA, D
    SHEINER, LB
    JOURNAL OF PHARMACOKINETICS AND BIOPHARMACEUTICS, 1991, 19 (06): : 691 - 712
  • [33] Analysis of non-steady-state current at hemispheroidal ultramicroelectrodes
    Rajendran, L
    ELECTROCHEMISTRY COMMUNICATIONS, 2000, 2 (07) : 531 - 534
  • [34] Difference of diffusivities in zeolites measured by the non-steady-state and the steady-state methods
    Liang, WG
    Chen, SY
    Peng, SY
    INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 1997, 36 (05) : 1882 - 1886
  • [35] Reliability of Non-Steady-State Electrophoretic Migration Test
    Minagawa, H.
    Nakamura, E.
    Kawaai, K.
    Miyazato, S.
    Kato, Y.
    Yamaguchi, T.
    ACI MATERIALS JOURNAL, 2022, 119 (03) : 223 - +
  • [36] Non-steady-state photoelectromotive force in an AlN crystal
    Bryushinin, M.
    Kulikov, V.
    Mokhov, E.
    Nagalyuk, S.
    Sokolov, I.
    PHYSICAL REVIEW B, 2012, 86 (08):
  • [37] TOOL LIFE IN NON-STEADY-STATE CUTTING CONDITIONS
    SOLOMENTSEV, YM
    SOVIET ENGINEERING RESEARCH, 1981, 1 (05): : 80 - 81
  • [38] COMPUTER CONTROL OF A NON-STEADY-STATE EXTRUSION PROCESS
    BOLDER, G
    MENGES, G
    PLASTICS ENGINEERING, 1984, 40 (03) : 50 - 50
  • [39] DISTRIBUTED AND NON-STEADY-STATE MODELING OF AN AIR COOLER
    WANG, H
    TOUBER, S
    INTERNATIONAL JOURNAL OF REFRIGERATION-REVUE INTERNATIONALE DU FROID, 1991, 14 (02): : 98 - 111
  • [40] EFFICIENT CUTTING IN NON-STEADY-STATE CONDITIONS.
    Poduraev, V.N.
    Machines & Tooling (English translation of Stanki i Instrument), 1976, 47 (03): : 34 - 36