Manganese Oxide-Mediated Reactions with Olivine Dissolution Products: A Double-Edged Sword for Ocean Alkalinity Enhancement

碱度 双锰矿 溶解 海水 环境化学 橄榄石 环境科学 固碳 化学 生物矿化 生物地球化学 沉积物 二氧化碳 碳纤维 微量金属 矿物学 针铁矿 深海 环境修复 无机化学 海洋酸化 无机碳总量 地球化学 降水 共沉淀 地质学 金属 溶解有机碳 遗传算法 化学工程 石灰 氧化还原
作者
Wen Zhuang,Feng Li,Tianqiang Zhu,Liwen Zheng,M Y Zhu,Jihua Liu
出处
期刊:Environmental Science & Technology [American Chemical Society]
卷期号:60 (9): 7134-7145
标识
DOI:10.1021/acs.est.5c16120
摘要

Olivine-based ocean alkalinity enhancement (OAE) is a promising carbon dioxide removal strategy, yet interactions with layered manganese oxides─ubiquitous minerals controlling trace metal biogeochemistry in marine sediments─remain poorly understood. We investigated these mechanisms using synthetic birnessite, a natural analogue of hexagonal layered Mn oxides, in controlled laboratory experiments in seawater under three scenarios reflecting different OAE deployment strategies: direct olivine-birnessite contact, exposure to simulated olivine leachate, and repeated alkaline inputs. Results revealed a dual role for birnessite. It accelerated olivine dissolution through proton-releasing cation exchange and surface-mediated Fe(II) oxidation. However, this proton generation consumed alkalinity, diminishing carbon sequestration efficiency. Regarding trace metals, birnessite efficiently scavenged Ni (>50%) and Co (>99%) but markedly enhanced Cr mobility (reaching ∼0.05 μmol kg–1), likely via oxidation to more toxic Cr(VI). Crucially, sustained Fe(II) supply mitigated this risk by reducing >50% of Cr(VI) back to Cr(III). Birnessite maintained structural stability throughout. While natural sediment systems are expected to introduce additional complexities, our findings underscore potential environmental trade-offs: Cr(VI) accumulation could exceed ecological thresholds in poorly flushed environments. This study provides foundational mechanistic insights into olivine-sediment interactions, establishing key parameters for modeling OAE safety in complex marine environments.
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