碱度
双锰矿
溶解
海水
环境化学
锰
橄榄石
环境科学
固碳
化学
生物矿化
锶
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
铬
镁
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
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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