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生态学杂志 ›› 2026, Vol. 45 ›› Issue (6): 1974-1982.doi: 10.13292/j.1000-4890.202606.033

• 研究报告 • 上一篇    下一篇

辽河口潮间带沉积物中磷形态的分布特征及其与铁-硫耦合

王熙乾1,韩晓昆1,2,3,郎赟超1,2,3*,刘展航1,揭敬诚1,丁虎1,2,3,张竹卿1,刘丛强1,2,3   

  1. 1天津大学地球系统科学学院, 表层地球系统科学研究院, 天津 300072; 2天津市环渤海地球关键带科学与可持续发展重点实验室, 天津 300072; 3天津环渤海滨海地球关键带国家野外科学观测研究站, 天津 300072)
  • 出版日期:2026-06-10 发布日期:2026-12-01

Distribution characteristics of phosphorus species and their coupling with iron and sulfur in intertidal sediments of the Liaohe River Estuary.

WANG Xiqian1, HAN Xiaokun1,2,3, LANG Yunchao1,2,3*, LIU Zhanhang1, JIE Jingcheng1, DING Hu1,2,3, ZHANG Zhuqing1, LIU Congqiang1,2,3   

  1. (1Institute of Surface-Earth Science, School of Earth System Science, Tianjin University, Tianjin 300072, China; 2Tianjin Key Laboratory of Earth Critical Zone Science and Sustainable Development in Bohai Rim, Tianjin 300072, China; 3Critical Zone Observatory of Bo Hai Coastal Region, Tianjin 300072, China).

  • Online:2026-06-10 Published:2026-12-01

摘要: 为探讨河潮间带沉积物中铁-硫-磷耦合的生物地球化学作用机制,本研究选取辽河口典型潮间带为研究区,通过测定不同潮位沉积物剖面中磷形态组成、铁硫组分含量及关键环境参数,分析磷的赋存形态、分布特征及铁-硫-磷多元素耦合过程。沉积物中总磷(TP,516.48±133.30 mg·kg-1)、有机磷(OP,162.58±56.91 mg·kg-1)和钙结合态磷(HCl-P,187.04±95.58 mg·kg-1)的形态分布特征显示,沉积物中磷主要以无机磷形式存在,而钙结合态磷是无机磷中重要的赋存形态。研究区沉积物磷的分布受水淹频率和人为活动影响显著,其中自然沉积物剖面中铁可结合态磷和有机磷含量垂向变化小,而受人为扰动下的沉积物剖面二者含量变化较大。此外,中、低潮滩沉积物剖面中铁可结合态磷(NaOH-P)与三价铁离子呈显著正相关(r=0.64),揭示了铁氧化物作为潮间带沉积物中磷赋存载体的控制作用,同时异化铁还原过程将Fe(Ⅲ)转化为Fe(Ⅱ)进而破坏矿物结构,并释放结合态磷,该过程在潮间带周期性水淹导致的动态氧化还原条件下尤为显著。表层沉积物硫酸盐与OP呈显著正相关,说明硫循环对磷生物有效性的间接调控作用,即在涨潮形成的微还原环境中,硫酸盐还原菌活性增强,通过硫化物介导的铁氧化物解吸和有机质矿化途径释放可溶性磷。辽河口作为我国北方最大滨海湿地,其沉积物总磷含量显著高于渤海其他海湾,富营养化风险高。本研究结果为滨海湿地生态系统磷循环过程解析及富营养化风险防控提供了理论依据。


关键词: 潮间带, 磷, 铁还原, 硫酸盐, 沉积物, 辽河口, 耦合过程

Abstract: To clarify the biogeochemical coupling mechanism of iron-sulfur-phosphorus in the intertidal zone of estuaries, this study selected the typical intertidal zone of the Liaohe River Estuary as the research area. The phosphorus species and their distribution characteristics, as well as the coupling processes of iron-sulfur-phosphorus were investigated by measuring the content of phosphorus, iron and sulfur species and key environmental variables in the sediment profiles at different tidal levels. The distribution characteristics of total phosphorus (TP, 516.48±133.30 mg·kg-1), organic phosphorus (OP, 162.58±56.91 mg·kg-1), and calcium-bound phosphorus (HCl-P, 187.04±95.58 mg·kg-1) in the sediments showed that the form of inorganic phosphorus was dominant in the sediments and that calcium-bound phosphorus was an important form of inorganic phosphorus. The distribution of phosphorus in the sediments was significantly affected by the frequency of water inundation and human activities. The vertical variations in contents of iron-bound phosphorus and organic phosphorus were minor in the natural sediment profiles, while their contents changed significantly in the sediment profiles disturbed by human activities. In addition, the iron-bound phosphorus (NaOH-P) was significantly positively correlated with the trivalent iron ions (r=0.64) in the sediment profiles of the middle and low tide flats, indicating the controlling role of iron oxides as the carrier of phosphorus in the intertidal zone sediments. Concurrently, the dissimilatory iron reduction process disrupted the mineral structure by converting Fe(Ⅲ) to Fe(Ⅱ) and released bound phosphorus, which was particularly significant under the dynamic redox conditions induced by periodic water inundation in the intertidal zones. There was significant positive correlation between sulfate and OP content in the surface sediments, indicating the indirect regulation of sulfur cycling on phosphorus bioavailability. In the micro-reducing environment formed by the rising tide, the enhanced activity of sulfate-reducing bacteria facilitated the release of soluble phosphorus through sulfide-mediated iron oxide desorption and organic matter mineralization. As the largest coastal wetland in northern China, the Liaohe River Estuary has significantly higher total phosphorus content in sediments than other bays in the Bohai Sea, with a high risk of eutrophication. These results offer critical theoretical foundations for understanding phosphorus cycling mechanisms and advancing eutrophication risk control strategies in coastal wetlands.


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