钾在黄金矿床成矿过程中的作用:ab initio 分子动力学和地球化学建模的启示

IF 4.5 1区 地球科学 Q1 GEOCHEMISTRY & GEOPHYSICS Geochimica et Cosmochimica Acta Pub Date : 2024-12-17 DOI:10.1016/j.gca.2024.12.022
Gao-Hua Fan, Jian-Wei Li, Yuan Mei, Si-Yu Hu, Ri-Chen Zhong, Chang Yu, Xiao-Dong Deng, Hao Cui, Wen-Sheng Gao
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引用次数: 0

摘要

钾离子(K+)在矿脉金矿床的矿液中含量丰富,主要表现为普遍的钾蚀变,通常表现为单个金矿两侧的钾长石和白云母。然而,它们在金矿化中的潜在作用仍然难以捉摸。在这里,我们提出从头算分子动力学模拟和地球化学建模的结果来解决这个问题。分子动力学模拟结果表明,K+与Au(HS)2 -配合物在较宽温度-压力范围内的配对能力与流体密度呈负线性相关。在高密度类液体中,少量K+与Au(HS)2 -配合物配位。相比之下,这种配合物可以在低密度的蒸汽状流体中通过离子与K+的结合而几乎中和,但这种中性络合不是很稳定,即使在典型的矿脉金矿化条件下也是如此。因此,K+在热液中对金的络合和输运作用有限。我们进行了地质背景与矿物共生相结合的地球化学模拟。结果表明,钾长石向白云母转变的钾蚀变主要发生在成矿流体温度、pH和氧逸度降低的同时。在这些因素中,温度下降是驱动钾蚀变的最重要机制,同时也导致了金二硫化配合物的不稳定和金的空间关联沉积。这些结果表明,钾蚀变过程中的金矿化主要是由矿液冷却驱动的,这也解释了钾长石向白云母蚀变的转变。分子模拟与地球化学模拟相结合表明,钾蚀变在矿脉金矿化中的作用反映的是流体演化特别是流体冷却对金沉淀的影响,而不是K+对矿脉金矿床中金输运的直接控制。因此,钾蚀变可以作为找矿的有效标志,在实际工作中得到了广泛的应用。
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The role of potassium in lode gold mineralization: insights from ab initio molecular dynamics and geochemical modeling
Potassium ions (K+) are abundant in ore fluids of lode gold deposits, largely illustrated by pervasive potassic alteration and commonly expressed as K-feldspar and muscovite on both sides of individual gold lodes. However, their potential roles in gold mineralization remain elusive. Here, we present results from ab initio molecular dynamics simulation and geochemical modeling to address this question. Molecular dynamics simulation results show that the ability of K+ pairing with Au(HS)2 complex over a wide temperature–pressure range has a negative linear correlation to fluid density. In high-density liquid-like fluids, little K+ is coordinated with the Au(HS)2 complex. In contrast, this complex can be nearly neutralized by ion association with K+ in low-density, vapor-like fluids, but such a neutral complexation is not very stable, even if under conditions typical of lode gold mineralization. Thus, K+ has a limited role in the complexing and transporting of Au in hydrothermal fluids forming lode gold deposits. We conducted geochemical modeling that integrates geological context and mineral paragenesis. The results reveal that potassic alteration in lode gold deposits, characterized by the transition from K-feldspar to muscovite, occurs alongside decreasing temperature, pH, and oxygen fugacity of the ore-forming fluids. Among these factors, the drop in temperature is the most significant mechanism driving potassic alteration, while also causing the destabilization of Au-bisulfide complex and spatially associated deposition of gold. These results suggest that gold mineralization during potassic alteration is primarily driven by the cooling of ore fluids, which also explains the transition from K-feldspar to muscovite alteration. The combination of molecular simulation and geochemical modeling indicates that the role of potassic alteration in lode gold mineralization reflects the influence of fluid evolution particularly fluid cooling on gold precipitation, rather than a direct control of K+ on Au transport in lode gold deposits. Therefore, potassic alteration can serve as an effective indicator for lode gold exploration and has been widely applied in practical fieldwork.
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来源期刊
Geochimica et Cosmochimica Acta
Geochimica et Cosmochimica Acta 地学-地球化学与地球物理
CiteScore
9.60
自引率
14.00%
发文量
437
审稿时长
6 months
期刊介绍: Geochimica et Cosmochimica Acta publishes research papers in a wide range of subjects in terrestrial geochemistry, meteoritics, and planetary geochemistry. The scope of the journal includes: 1). Physical chemistry of gases, aqueous solutions, glasses, and crystalline solids 2). Igneous and metamorphic petrology 3). Chemical processes in the atmosphere, hydrosphere, biosphere, and lithosphere of the Earth 4). Organic geochemistry 5). Isotope geochemistry 6). Meteoritics and meteorite impacts 7). Lunar science; and 8). Planetary geochemistry.
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