Mineralogy and crystal chemistry of Mn, Fe, Co, Ni, and Cu in a deep-sea Pacific polymetallic nodule

被引:119
|
作者
Manceau, Alain [1 ,2 ]
Lanson, Martine [1 ,2 ]
Takahashi, Yoshio [3 ]
机构
[1] Univ Grenoble Alpes, ISTerre, F-38041 Grenoble, France
[2] CNRS, F-38041 Grenoble, France
[3] Hiroshima Univ, Dept Earth & Planetary Syst Sci, Higashihiroshima 7398526, Japan
关键词
Mineralogy; XRD; SXRF; XANES; EXAFS; nickel; copper; vemadite; todorokite; bimessite; phyllomanganate; tectomanganate; ferromanganese nodule; polymetallic nodule; redox reaction; X-RAY-DIFFRACTION; MARINE MANGANESE NODULES; HIGH-TEMPERATURE DECOMPOSITION; TODOROKITE BUSERITE PROBLEM; METAL SORBED BIRNESSITE; OGASAWARA BONIN ARC; NA-RICH BIRNESSITE; WESTERN BALTIC SEA; FERROMANGANESE NODULES; HEXAGONAL BIRNESSITE;
D O I
10.2138/am-2014-4742
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
Minor-element concentrations in marine ferromanganese nodules are primarily controlled by the mineralogy, which itself depends on redox conditions at the sediment-water interface. Results are presented for the first in-depth X-ray microstructural and microspectroscopic investigation of a mixed hydrogenetic-diagenetic nodule, which is representative of ferromanganese deposits on abyssal plains. The measurements were conducted by micro-X-ray diffraction and X-ray absorption spectroscopy (both XANES and EXAFS) on hydrogeneous and diagenetic regions of the nodule. The hydrogenetic-diagenetic interface was imaged by X-ray microfluorescence, after which regions of interest were chosen to represent mineralogical and chemical transformations that occurred at the early stage of suboxic diagenesis. In the hydrogenetic nodule (oxic environment), Mn is speciated as Fe-vemadite, a nanocomposite material composed of intergrown feroxyhite (delta-FeOOH) and monodispersed phyllomanganate layers having no interlayer Mn (vemadite). In the diagenetic nodule (suboxic environment), Mn is speciated dominantly as Mg-rich 10 angstrom vemadite, which consists of a random intergrowth of vemadite and its transformation product todorokite. The authigenic 10 angstrom vemadite precipitated from the components of vemadite in Fe-vemadite that were dissolved in suboxic microenvironments of the sediment. Direct evidence supporting a redox-driven dissolution reaction is provided by the valence composition of Mn, as measured by micro-XANES, which is 0.69Mn(4+) + 0.24Mn(3+) + 0.07Mn(2+) (average = 3.62 +/- 0.04 v.u.) for Fe-vemadite and 0.61Mn(4+) + 0.23Mn(3+) + 0.16Mn(2+) (average 3.28 +/- 0.04 v.u.) for 10 angstrom vemadite. Ni and Cu, derived mainly from dissolved vemadite and oxidized organic matter, replace structural Mn3+/4+ in both the MnO2 layer and todorokite domains of 10 angstrom vemadite. Pure todorokite in highly diagenetic regions of the nodule has an average formula of Mg-0.167(2+)(Mn-0.783(4+) Mn0.0993+CO0.0023+Ni0.0762+Cu0.0402+)O-2 center dot nH(2)O, with an atomic ratio of (Cu+Ni+Co)/Mn = 0.13, which is slightly lower than 0.167 (1/6), the maximum metal uptake capacity reported for marine nodules. By analogy with synthetic todorokites we infer that Mg2+, which has a hydrated diameter close to that of the [3 x 3] tunnel size of todorokite, and Mn3+ and Cu2+, which prefer Jahn-Teller distorted octahedra, play a crucial role in templating the topotactic transformation of 10 angstrom vemadite to todorokite and stabilizing todorokite in suboxic marine sediments.
引用
收藏
页码:2068 / 2083
页数:16
相关论文
共 50 条
  • [21] Copper-binding ligands in deep-sea pore waters of the Pacific Ocean and potential impacts of polymetallic nodule mining on the copper cycle
    Paul, Sophie A. L.
    Zitoun, Rebecca
    Noowong, Ann
    Manirajah, Mythili
    Koschinsky, Andrea
    SCIENTIFIC REPORTS, 2021, 11 (01)
  • [22] Taxonomic assessment of deep-sea decapod crustaceans collected from polymetallic nodule fields of the East Pacific Ocean using an integrative approach
    Christodoulou, Magdalini
    De Grave, Sammy
    Vink, Annemiek
    Arbizu, Pedro Martinez
    MARINE BIODIVERSITY, 2022, 52 (06)
  • [23] Metal regeneration during an ex-situ disturbance experiment on deep-sea sediments from the polymetallic nodule area of western Pacific
    Yang, Juan
    Xing, Zhaohui
    Liu, Baolin
    Sun, Dong
    Wang, Chunsheng
    Han, Luwei
    Xia, Jianxin
    Zhang, Wenquan
    Song, Chengbing
    FRONTIERS IN MARINE SCIENCE, 2024, 11
  • [24] Copper-binding ligands in deep-sea pore waters of the Pacific Ocean and potential impacts of polymetallic nodule mining on the copper cycle
    Sophie A. L. Paul
    Rebecca Zitoun
    Ann Noowong
    Mythili Manirajah
    Andrea Koschinsky
    Scientific Reports, 11
  • [25] Taxonomic assessment of deep-sea decapod crustaceans collected from polymetallic nodule fields of the East Pacific Ocean using an integrative approach
    Magdalini Christodoulou
    Sammy De Grave
    Αnnemiek Vink
    Pedro Martinez Arbizu
    Marine Biodiversity, 2022, 52
  • [26] Deep-sea metazoan Meiofauna from a Polymetallic nodule area in the Central Indian Ocean Basin
    Qianhui Zeng
    Dingyong Huang
    Rongcheng Lin
    Jianjia Wang
    Marine Biodiversity, 2018, 48 : 395 - 405
  • [27] Responses of deep-sea meiobenthic communities to sediment disturbance simulating effects of polymetallic nodule mining
    Radziejewska, T
    INTERNATIONAL REVIEW OF HYDROBIOLOGY, 2002, 87 (04) : 457 - 477
  • [28] Numerical Simulation and Experimental Study of a Deep-Sea Polymetallic Nodule Collector Based on the Coanda Effect
    Li, Yan
    Han, Zhibin
    Li, Ziyuan
    MINERALS, 2024, 14 (09)
  • [29] Deep-sea metazoan Meiofauna from a Polymetallic nodule area in the Central Indian Ocean Basin
    Zeng, Qianhui
    Huang, Dingyong
    Lin, Rongcheng
    Wang, Jianjia
    MARINE BIODIVERSITY, 2018, 48 (01) : 395 - 405
  • [30] A comparison of microbial communities in deep-sea polymetallic nodules and the surrounding sediments in the Pacific Ocean
    Wu, Yue-Hong
    Liao, Li
    Wang, Chun-Sheng
    Ma, Wei-Lin
    Meng, Fan-Xu
    Wu, Min
    Xu, Xue-Wei
    DEEP-SEA RESEARCH PART I-OCEANOGRAPHIC RESEARCH PAPERS, 2013, 79 : 40 - 49