Biogeochemical cycling of cadmium isotopes in the Southern Ocean along the Zero Meridian

被引:98
作者
Abouchami, W. [1 ,2 ]
Galer, S. J. G. [1 ]
de Baar, H. J. W. [3 ]
Middag, R. [3 ,4 ]
Vance, D. [5 ]
Zhao, Y. [6 ]
Klunder, M. [3 ,7 ]
Mezger, K. [8 ]
Feldmann, H. [1 ]
Andreae, M. O. [1 ]
机构
[1] Max Planck Inst Chem, Biogeochem Dept, D-55020 Mainz, Germany
[2] Univ Munster, Inst Mineral, D-48149 Munster, Germany
[3] Royal Netherlands Inst Sea Res, NL-1790 AB Den Burg, Netherlands
[4] Univ Otago, Dept Chem, Dunedin, New Zealand
[5] ETH, Inst Geochem & Petr, Dept Earth Sci, CH-8092 Zurich, Switzerland
[6] Nu Instruments Ltd, Wrexham LL13 9XS, Wales
[7] Ctgb, Wageningen, Netherlands
[8] Univ Bern, Inst Geol, CH-3012 Bern, Switzerland
关键词
LIMITS PHYTOPLANKTON GROWTH; MARINE-PHYTOPLANKTON; ATLANTIC SECTOR; IRON LIMITATION; PHYTOCHELATIN PRODUCTION; CARBONIC-ANHYDRASE; DISSOLVED ZINC; TRACE-ELEMENTS; WATER COLUMN; WEDDELL GYRE;
D O I
10.1016/j.gca.2013.10.022
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
We present depth profiles of Cd isotopes and concentrations from the Southern Ocean at four stations in the Atlantic sector along the Greenwich Meridian (47 degrees S to 68 degrees S) located across the main Antarctic frontal zones and productivity belt. The vertical profiles of Cd concentration typically show low values in surface waters, elevated values at intermediate depths, reflecting remineralization of sinking particulate organic matter, and constant values in deep waters. The surface-to-deep isotopic gradient shows "heavy" Cd isotope signatures in the mixed surface layer, becoming more pronounced northward, with values up to epsilon(112/110) Cd of around +4.1 in the Subantarctic sector of the Southern Ocean. Deep Antarctic waters display a uniform and "light" epsilon(112/110) Cd of +1.18 +/- 0.38 and Cd concentrations of 0.761 +/- 0.101 nmol/kg (n = 23, 2SD). Intermediate waters are characterized by epsilon(112/110) Cd lying between those of surface and deep waters, with a constant value of about +0.8 in the High Nutrient Low Chlorophyll sector and a notably higher value of +2.3 in the Subantarctic sector. The Cd isotope fractionation in the Southern Ocean closely follows a simple closed-system Rayleigh model, in which biological uptake of Cd imparts the epsilon(112/110) Cd signature to the surface layer while that of deep waters is determined by the flux of regenerated isotopically-light Cd from sinking organic matter from the surface ocean and the degree of mixing of distinct water masses. The vertical gradient documented for Cd isotopes and nutrient ratios, along with the meridional gradient in surface waters, highlights the important role played by upwelling in the Southern Ocean in closing the meridional overturning circulation via the export of Antarctic intermediate and mode waters which have a distinctive chemical (low Cd:P) and Cd isotope ("heavy") signature. The combined Cd-Zn isotope systematics provide evidence for a strong link between the magnitude of biological Cd stable isotope fractionation and Zn availability in the contrasted nutrient and ecological regimes of the Southern Ocean. Substitution of Cd for Zn in the enzyme carbonic anhydrase appears to be the driving mechanism for Cd isotope fractionation in the Antarctic Circumpolar Current, while an "excess-uptake" mechanism seems to predominate in the Weddell Gyre. Our study highlights some of the complexities of the biogeochemical cycling of Cd in the oceans. Nevertheless, systematic variations in Cd isotopic compositions with water mass distribution in the Southern Ocean suggest that Cd isotopes could, with some caveats, be useful tracers of changes in past nutrient utilization and deep water circulation. (C) 2013 Elsevier Ltd. All rights reserved.
引用
收藏
页码:348 / 367
页数:20
相关论文
共 108 条
  • [1] Modulation of the Southern Ocean cadmium isotope signature by ocean circulation and primary productivity
    Abouchami, W.
    Galer, S. J. G.
    de Baar, H. J. W.
    Alderkamp, A. C.
    Middag, R.
    Laan, P.
    Feldmann, H.
    Andreae, M. O.
    [J]. EARTH AND PLANETARY SCIENCE LETTERS, 2011, 305 (1-2) : 83 - 91
  • [2] Abouchami W., 2012, GEOSTAND GEOANAL RES, DOI DOI 10.1111/J.1751-908X.2012.00175
  • [3] PHYTOCHELATIN PRODUCTION BY MARINE-PHYTOPLANKTON AT LOW FREE METAL-ION CONCENTRATIONS - LABORATORY STUDIES AND FIELD DATA FROM MASSACHUSETTS BAY
    AHNER, BA
    PRICE, NM
    MOREL, FMM
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1994, 91 (18) : 8433 - 8436
  • [4] Phytochelatin concentrations in the equatorial Pacific
    Ahner, BA
    Lee, JG
    Price, NM
    Morel, FMM
    [J]. DEEP-SEA RESEARCH PART I-OCEANOGRAPHIC RESEARCH PAPERS, 1998, 45 (11) : 1779 - 1796
  • [5] PHYTOCHELATIN PRODUCTION IN MARINE-ALGAE .2. INDUCTION BY VARIOUS METALS
    AHNER, BA
    MOREL, FMM
    [J]. LIMNOLOGY AND OCEANOGRAPHY, 1995, 40 (04) : 658 - 665
  • [6] Baars O., 2013, LIMNOL OCEA IN PRESS
  • [7] The speciation of dissolved zinc in the Atlantic sector of the Southern Ocean
    Baars, Oliver
    Croot, Peter L.
    [J]. DEEP-SEA RESEARCH PART II-TOPICAL STUDIES IN OCEANOGRAPHY, 2011, 58 (25-26) : 2720 - 2732
  • [8] THE ROLE OF CARBONIC-ANHYDRASE IN PHOTOSYNTHESIS
    BADGER, MR
    PRICE, GD
    [J]. ANNUAL REVIEW OF PLANT PHYSIOLOGY AND PLANT MOLECULAR BIOLOGY, 1994, 45 : 369 - 392
  • [9] Southern Ocean fronts from the Greenwich meridian to Tasmania
    Belkin, IM
    Gordon, AL
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 1996, 101 (C2) : 3675 - 3696
  • [10] Mesoscale iron enrichment experiments 1993-2005: Synthesis and future directions
    Boyd, P. W.
    Jickells, T.
    Law, C. S.
    Blain, S.
    Boyle, E. A.
    Buesseler, K. O.
    Coale, K. H.
    Cullen, J. J.
    de Baar, H. J. W.
    Follows, M.
    Harvey, M.
    Lancelot, C.
    Levasseur, M.
    Owens, N. P. J.
    Pollard, R.
    Rivkin, R. B.
    Sarmiento, J.
    Schoemann, V.
    Smetacek, V.
    Takeda, S.
    Tsuda, A.
    Turner, S.
    Watson, A. J.
    [J]. SCIENCE, 2007, 315 (5812) : 612 - 617