层状双氢氧化物原位形成驱动的高海拔高原煤矸石堆成土作用

IF 6.7 2区 环境科学与生态学 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Wenqing Ma , Shuteng Diao , Chen Li , Yiping Wang , Xuhui Zhao , Changhui Li , Zenghe Li , Fazhi Zhang , Xiaodong Lei
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引用次数: 0

摘要

尽管低海拔煤矸石桩的土壤成土作用取得了进展,但目前的技术在高海拔、寒冷的矿区仍然不稳定且成本高昂。采用CaSO4·2 H2O和MgSO4·7 H2O作为矿化剂,通过原位形成层状双氢氧化物(LDHs),加速煤矸石的化学风化作用,促进原位成土作用,恢复矿区。通过结构表征和密度泛函理论(DFT)计算证实,引入的矿化剂与煤矸石中溶解的Al3 +和Fe3+离子相互作用,形成具有超稳定矿化结构(Ksp<10−50)的纳米尺度和微观尺度的LDHs,破坏了煤矸石的原始平衡。经过3年的大规模改良,在10 cm厚的上层土壤中成功地形成了土壤,羊茅、喜冻草、草原草和羊草的出苗率从近0.0-93.7 %增加,在恶劣环境条件下表现出前所未有的稳定性,并显著降低了成本(约900美元/年)。微量元素浸出浓度均低于中国国家标准GB 5749-2022和美国环境保护署(EPA)指导方针规定的限值,证实了该技术的环境安全性。这一创新方法为高海拔矿区煤矸石堆的修复提供了重大突破。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Pedogenesis of coal gangue heaps in high-altitude plateau areas driven by the in-situ formation of layered double hydroxides
Although soil pedogenesis has advanced for low-altitude coal gangue piles, current technologies remain unstable and costly in high-altitude, cold mining areas. This study presents an innovative technique employing CaSO4·2 H2O and MgSO4·7 H2O as mineralizers to accelerate the chemical weathering of coal gangue through the in-situ formation of layered double hydroxides (LDHs), thereby stimulating in-situ pedogenesis to restore the mining areas. The introduced mineralizers interacted with dissolved Al3 + and Fe3+ ions in the coal gangue, forming nano- and micro-scale LDHs with super-stable mineralized structures (Ksp<10−50), disrupting the original equilibrium of coal gangue, as confirmed by structural characterization and density functional theory (DFT) calculations. Three years of large-scale improvement demonstrated successful pedogenesis with a 10 cm-thick upper soil layer, and the emergence rate of Festuca sinensis, Poa crymophila, Poa pratensis, and Elymus nutans increased from nearly 0.0–93.7 %, showing unprecedented stability under harsh environmental conditions, and significantly reducing costs (approximately $900/year). The leaching concentrations of trace elements were below the limits specified by both the Chinese national standard GB 5749–2022 and the U.S. Environmental Protection Agency (EPA) guidelines, confirming the environmental safety of the technology. This innovative approach offers a significant breakthrough in the remediation of coal gangue heaps in high-altitude mining areas.
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来源期刊
Environmental Technology & Innovation
Environmental Technology & Innovation Environmental Science-General Environmental Science
CiteScore
14.00
自引率
4.20%
发文量
435
审稿时长
74 days
期刊介绍: Environmental Technology & Innovation adopts a challenge-oriented approach to solutions by integrating natural sciences to promote a sustainable future. The journal aims to foster the creation and development of innovative products, technologies, and ideas that enhance the environment, with impacts across soil, air, water, and food in rural and urban areas. As a platform for disseminating scientific evidence for environmental protection and sustainable development, the journal emphasizes fundamental science, methodologies, tools, techniques, and policy considerations. It emphasizes the importance of science and technology in environmental benefits, including smarter, cleaner technologies for environmental protection, more efficient resource processing methods, and the evidence supporting their effectiveness.
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