生态环境学报 ›› 2026, Vol. 35 ›› Issue (8): 1299-1309.DOI: 10.16258/j.cnki.1674-5906.2026.08.013

• 研究论文【环境科学】 • 上一篇    下一篇

不同结晶度氧化铁介导水稻土镉形态转化与甲烷排放的生物化学机制

冷舒迪1,2,3(), 迟家霖2, 刘凯2,*(), 方利平2, 李芳柏2   

  1. 1 中国科学院广州地球化学研究所广东 广州 510640
    2 广东省科学院生态环境与土壤研究所/华南土壤污染控制与修复国家地方联合工程研究中心广东 广州 510650
    3 中国科学院大学北京 100049
  • 收稿日期:2026-01-06 修回日期:2026-03-03 接受日期:2026-04-13 出版日期:2026-08-18 发布日期:2026-08-17
  • 通讯作者: E-mail: kliu@soil.gd.cn
  • 作者简介:冷舒迪(2002年生),女,硕士研究生,主要研究方向为土壤重金属污染修复。E-mail: 18330179903@163.com
  • 基金资助:
    国家自然科学基金项目(42207040);国家自然科学基金项目(U23A2041);国家自然科学基金项目(42307014);广东省科学院实施创新驱动发展能力建设专项(2022GDASZH-2022010201-04);广东省科学院实施创新驱动发展能力建设专项(2022GDASZH-2022020402-3)

Biochemical Mechanisms of Cadmium Transformation and Methane Emissions in Paddy Soils Mediated by Iron Oxides with Different Crystallinities

Leng Shudi1,2,3(), Chi Jialin2, Liu Kai2,*(), Fang Liping2, Li Fangbai2   

  1. 1 Guangzhou Institute of Geochemistry, Chinese Academy of Sciences, Guangzhou 510640, P. R. China
    2 Institute of Eco-environmental and Soil Sciences, Guangdong Academy of Sciences/National-Regional Joint Engineering Research Center for Soil Pollution Control and Remediation in South China, Guangzhou 510650, P. R. China
    3 University of Chinese Academy of Sciences, Beijing 100049, P. R. China
  • Received:2026-01-06 Revised:2026-03-03 Accepted:2026-04-13 Online:2026-08-18 Published:2026-08-17

摘要:

铁循环过程对土壤中镉的形态转化与甲烷排放具有重要影响。然而,不同结晶度铁氧化物对稻田土壤镉形态转化与甲烷排放的影响仍不清楚。【目的】阐明不同结晶度铁氧化物对稻田土壤镉形态转化和甲烷排放的影响,并揭示其作用机制。【方法】选取典型无定形铁氧化物(水铁矿)与结晶态铁氧化物(纤铁矿)为代表,通过厌氧-好氧交替的土壤培养实验,结合动力学模型与微生物分析。【结果】在厌氧条件下,与对照相比,土壤有效态镉含量在水铁矿和纤铁矿处理下分别降低了31.2%和52.7%。厌氧阶段纤铁矿加速了有效态镉转化为铁锰氧化物结合态镉,其转化速率为水铁矿处理的1.76倍,并且有效态镉部分与有机质结合或与硫形成共沉淀,进一步转化为残渣态镉。在好氧阶段,加入水铁矿和纤铁矿较对照有效态镉分别降低37.2%和42.7%。与水铁矿相比,纤铁矿处理更明显地抑制了铁锰氧化物结合态镉向有效态镉的逆转化。相较之下,结晶态的纤铁矿在干湿交替过程中表现出更强的镉固定能力。此外,水铁矿和纤铁矿通过与产甲烷古菌竞争电子供体,均显著降低了土壤中产甲烷功能基因mcrA的拷贝数,使土壤甲烷排放量减少96.6%。【结论】结晶态纤铁矿更有利于实现镉污染高效修复同步甲烷减排。上述结论为实现稻田土壤镉污染治理同步甲烷减排提供了重要的科学依据。

关键词: 水稻土, 结晶度, 铁氧化物, 镉, 甲烷

Abstract:

Iron (Fe) cycling plays a crucial role in the biogeochemical cycling of both heavy metals and greenhouse gases in paddy soils. While dissimilatory iron reduction is known to drive the fate of contaminants and carbon, the specific effects of iron oxide crystallinity on cadmium (Cd) transformation and methane (CH4) emissions in paddy soils remain poorly understood. Amorphous iron oxides, characterized by a high surface area and exceptional reactivity, contrast sharply with their crystalline counterparts, which possess greater thermodynamic stability and ordered structures. Elucidating how this fundamental mineralogical property governs both Cd transformation and methanogenic activity is critical for developing targeted strategies for soil remediation and climate change mitigation in rice-based agricultural systems. [Objective] The objective was to elucidate the underlying mechanisms by which iron oxide crystallinity governs these coupled processes. [Methods] In this study, we conducted a controlled soil culture experiment designed to simulate the typical hydrological cycles of paddy fields. The experiment incorporated alternating anaerobic and aerobic conditions, mimicking a complete flooding-draining cycle over a 40-day incubation period. Two representative iron oxides with contrasting crystallinity were selected: amorphous ferrihydrite (Fh), a poorly crystalline, high-surface-area mineral that forms rapidly under oxidizing conditions, and crystalline lepidocrocite (Lep), a more ordered and thermodynamically stable γ-FeOOH phase commonly found in seasonally reduced soils. Their impacts on soil Cd transformation and CH4 emissions were systematically investigated using chemical extraction methods, kinetic modeling, and molecular microbiological analyses. [Results] The results showed that the presence of iron oxides profoundly altered Cd geochemistry. Under anaerobic conditions, which are characteristic of the flooded period, both iron oxides significantly reduced the concentration of available Cd (defined as the sum of dissolved, exchangeable, and specifically adsorbed Cd) in the soil. Compared to the control treatment without iron oxide addition, the available Cd content decreased by 31.2% in the ferrihydrite treatment and by 52.7% in the lepidocrocite treatment. This reduction was primarily attributed to the transformation of available Cd into more stable fractions during the anaerobic phase. Kinetic modeling of the fractionation data provided deeper mechanistic insight, revealing that the presence of lepidocrocite promoted the transformation of available Cd into the Fe-Mn oxide bound fraction at a rate 1.76 times higher than that observed in the ferrihydrite treatment. In addition, a portion of the available Cd was redirected into other stable pools, including the organic matter-bound fraction and sulfide precipitates formed under strongly reducing conditions, ultimately contributing to a measurable increase in the residual Cd fraction, which is considered largely immobile under normal environmental conditions. During the aerobic phase of the simulated drainage period, the re-oxidation of the soil environment led to the partial remobilization of Cd in the control treatment. However, both iron oxide treatments continued to exhibit significantly lower available Cd concentrations compared to the control. Specifically, available Cd was reduced by 37.2% and 42.7% in the ferrihydrite and lepidocrocite treatments, respectively, relative to the control. Notably, the lepidocrocite treatment was more effective than ferrihydrite at inhibiting the remobilization of Fe-Mn oxide bound Cd back into available forms during this oxidative stage. This observation strongly suggests that Cd associated with, or transformed under the influence of, crystalline iron oxides is more resistant to remobilization upon aeration compared to that associated with amorphous ferrihydrite. The superior performance of lepidocrocite stems from its stronger binding energy and its structural stability under phase transformation in reducing conditions, whereas cadmium associated with ferrihydrite is more susceptible to release during the phase transformation of ferrihydrite. Overall, compared with ferrihydrite, crystalline lepidocrocite demonstrated a superior capacity for Cd immobilization throughout the entire flooding-draining alternation. This finding underscores the critical importance of mineral stability in achieving long-term, sustainable metal sequestration in dynamic soil environments. In addition to their profound influence on Cd dynamics, both iron oxides significantly suppressed methane emissions from the soil. Over the entire anaerobic incubation period, the cumulative CH4 emissions were reduced by an average of 96.6% in the iron oxide-amended treatments compared to the control, with no statistically significant difference observed between the ferrihydrite and lepidocrocite treatments. This dramatic suppression is attributed to the role of iron oxides as competitive electron acceptors. In anaerobic soils, fermentative microorganisms break down organic matter, producing acetate and H2, which are primary substrates for methanogenic archaea. The presence of ferrihydrite and lepidocrocite fueled dissimilatory iron-reducing bacteria, which outcompete methanogens for these common electron donors due to the higher energy yield of iron reduction. This electron competition was corroborated by molecular analysis of the soil microbiota. The decrease in the methanogen community abundance provided a mechanistic explanation for the nearly complete inhibition of methane production. Quantitative polymerase chain reaction targeting the methyl-coenzyme M reductase alpha subunit gene, which encodes a key enzyme in the methanogenic pathway, revealed that the copy numbers were significantly lower in both iron oxide treatments compared to the control. These findings collectively demonstrate that iron oxide minerals, regardless of their crystallinity, serve as a crucial link between heavy metal fate and greenhouse gas emissions in paddy soil ecosystems. By effectively adsorbing Cd and suppressing CH4 production through competition with methanogens for electron donors, they possess the dual functionality to simultaneously mitigate Cd pollution and suppress CH4 release. Crucially, the crystallinity of the iron oxide dictates the efficiency and stability of Cd immobilization. While amorphous ferrihydrite is effective, crystalline lepidocrocite promotes faster and more stable sequestration of Cd into non-bioavailable fractions, particularly the Fe-Mn oxide bound pool, and more effectively prevents its remobilization during oxidative events. In contrast, the suppression of methanogenesis appears to be primarily a function of the presence of bioavailable Fe(Ⅲ) as an electron acceptor, with crystallinity playing a less significant role under the high iron loading conditions of this study. [Conclusion] Crystalline lepidocrocite more effectively enables the simultaneous remediation of cadmium contamination and mitigation of methane emissions. The findings highlight the potential of regulating the iron redox cycle as a nature-based solution for sustainable soil management, providing important scientific evidence for simultaneously achieving Cd pollution remediation and CH4 emission reduction in paddy soils.

Key words: paddy soil, crystallinity, iron oxides, cadmium, methane

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