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湿地类型对生长季沿海湿地中活性磷、铁和硫动态及其耦合的影响。

Effects of wetland types on dynamics and couplings of labile phosphorus, iron and sulfur in coastal wetlands during growing season.

机构信息

Key Laboratory of Humid Sub-tropical Eco-geographical Process of Ministry of Education, Fujian Normal University, Fuzhou 350007, China; School of Geographical Sciences, Fujian Normal University, Fuzhou 350007, China.

Consejo Superior de Investigaciones Científicas (CSIC), Global Ecology Unit CREAF-CSIC-UAB (Universitat Autònoma de Barcelona), Bellaterra, 08193 Barcelona, Catalonia, Spain; CREAF, Cerdanyola del Vallès, 08193 Barcelona, Catalonia, Spain.

出版信息

Sci Total Environ. 2022 Jul 15;830:154460. doi: 10.1016/j.scitotenv.2022.154460. Epub 2022 Mar 9.

Abstract

Wetland type plays an important role in controlling the phosphorus (P) biogeochemical cycle, while its effect on labile P dynamics and coupling with iron (Fe) and sulfur (S) in coastal wetlands remains unclear. In this study, chemical sequential extraction and high-resolution diffusive gradients in thin-film (DGT) techniques were employed to investigate P forms, mobilization, and labile Fe-S-P coupling in several coastal wetland types [i.e., natural wetland (NW), aquaculture pond (AP), artificial (ARW) and natural restored wetlands (NRW)]. Compared with NW, AP decreased the total P by 40.6%. The concentrations of soil organic P and inorganic P (including NaOH-extractable P and HCl-extractable P) were significantly increased in ARW, but decreased in AP and NRW. DGT-labile P, Fe, and S concentrations changed significantly in different wetland types, and the labile P concentrations in AP were significantly higher than those in the others. Similar spatial distribution dynamics and significant positive relationships between labile P, Fe, and S concentrations in NW and AP confirmed that intense reduction in iron and sulfate are the key mechanisms regulating P mobilization. However, these relationships were decoupled in restored wetlands, suggesting that the Fe redox-coupled P mobilization and sulfate reduction were sensitive to wetland changes. The diffusion fluxes of P across the soil-water interface were positive in AP (0.619 pg·cm·s), indicating that P was released from soil to the overlying-water. We concluded that coastal wetland types altered soil P forms, availability, and labile Fe-S-P coupling, and the natural restored wetland could help stabilize the soil P pool and eventually controlled the mobilization and release of P.

摘要

湿地类型在控制磷(P)生物地球化学循环方面起着重要作用,但其对活性磷动态的影响以及与沿海湿地中铁(Fe)和硫(S)的耦合作用尚不清楚。本研究采用化学连续提取和高分辨率扩散梯度薄膜(DGT)技术,研究了几种沿海湿地类型[即自然湿地(NW)、养殖池塘(AP)、人工湿地(ARW)和自然恢复湿地(NRW)]中 P 形态、迁移以及活性 Fe-S-P 耦合作用。与 NW 相比,AP 减少了 40.6%的总磷。ARW 中土壤有机磷和无机磷(包括 NaOH 可提取磷和 HCl 可提取磷)的浓度显著增加,但 AP 和 NRW 中的浓度则降低。DGT 活性磷、Fe 和 S 的浓度在不同湿地类型中发生显著变化,AP 中的活性 P 浓度明显高于其他湿地类型。NW 和 AP 中活性 P、Fe 和 S 浓度具有相似的空间分布动态,且存在显著的正相关关系,表明铁和硫酸盐的强烈还原是调节 P 迁移的关键机制。然而,这些关系在恢复湿地中被解耦,这表明 Fe 氧化还原耦合的 P 迁移和硫酸盐还原对湿地变化敏感。AP 中磷通过土壤-水界面的扩散通量为正值(0.619 pg·cm·s),表明 P 从土壤释放到上覆水中。我们得出结论,沿海湿地类型改变了土壤 P 形态、有效性和活性 Fe-S-P 耦合作用,自然恢复湿地有助于稳定土壤 P 库,从而最终控制 P 的迁移和释放。

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