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Silicon Isotope Geochemistry: Fractionation Linked to Silicon Complexations and Its Geological Applications

机译:硅同位素地球化学:与硅络合物相关的分馏及其地质应用

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摘要

The fundamental advances in silicon isotope geochemistry have been systematically demonstrated in this work. Firstly, the continuous modifications in analytical approaches and the silicon isotope variations in major reservoirs and geological processes have been briefly introduced. Secondly, the silicon isotope fractionation linked to silicon complexation/coordination and thermodynamic conditions have been extensively stressed, including silicate minerals with variable structures and chemical compositions, silica precipitation and diagenesis, chemical weathering of crustal surface silicate rocks, biological uptake, global oceanic Si cycle, etc. Finally, the relevant geological implications for meteorites and planetary core formation, ore deposits formation, hydrothermal fluids activities, and silicon cycling in hydrosphere have been summarized. Compared to the thermodynamic isotope fractionation of silicon associated with high-temperature processes, that in low-temperature geological processes is much more significant (e.g., chemical weathering, biogenicon-biogenic precipitation, biological uptake, adsorption, etc.). The equilibrium silicon isotope fractionation during the mantle-core differentiation resulted in the observed heavy isotope composition of the bulk silicate Earth (BSE). The equilibrium fractionation of silicon isotopes among silicate minerals are sensitive to the Si–O bond length, Si coordination numbers (CN), the polymerization degrees of silicate unites, and the electronegativity of cations in minerals. The preferential enrichment of different speciation of dissoluble Si (DSi) (e.g., silicic acid H4SiO40 (H4) and H3SiO4 (H3)) in silica precipitation and diagenesis, and chemical weathering, lead to predominately positive Si isotope signatures in continental surface waters, in which the dynamic fractionation of silicon isotope could be well described by the Rayleigh fractionation model. The role of complexation in biological fractionations of silicon isotopes is more complicated, likely involving several enzymatic processes and active transport proteins. The integrated understanding greatly strengthens the potential of δ30Si proxy for reconstructing the paleo terrestrial and oceanic environments, and exploring the meteorites and planetary core formation, as well as constraining ore deposits and hydrothermal fluid activity.
机译:这项工作已经系统地证明了硅同位素地球化学的基本进展。首先,简要介绍了分析方法的不断改进以及主要储层和地质过程中硅同位素的变化。其次,与硅的络合/配位和热力学条件有关的硅同位素分馏受到了广泛的关注,包括结构和化学组成可变的硅酸盐矿物,二氧化硅的沉淀和成岩作用,地壳表面硅酸盐岩石的化学风化,生物吸收,全球海洋硅循环最后,总结了陨石和行星芯形成,矿床形成,热液流体活动以及水圈硅循环的相关地质意义。与高温过程相关的硅的热力学同位素分馏相比,低温地质过程中的硅分馏具有更大的意义(例如,化学风化,生物/非生物沉淀,生物吸收,吸附等)。地幔核分化过程中的平衡硅同位素分馏导致了整体硅酸盐地球(BSE)的重同位素组成。硅酸盐矿物中硅同位素的平衡分馏对Si–O键长,Si配位数(CN),硅酸盐单元的聚合度以及矿物中阳离子的电负性很敏感。在二氧化硅沉淀和成岩作用中优先富集不同形态的可溶性Si(DSi)(例如,硅酸H4SiO4 0 (H4)和H3SiO4 -(H3)),以及化学风化作用在大陆表层水域中导致主要为正的Si同位素特征,其中瑞利分馏模型可以很好地描述硅同位素的动态分馏。络合在硅同位素的生物分离中的作用更为复杂,可能涉及多种酶促过程和活性转运蛋白。全面的了解极大地增强了δ 30 Si代理在重建古陆和海洋环境,探索陨石和行星芯形成以及限制矿床和热液活动方面的潜力。

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