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依赖水的生物降解微塑料对土壤中砷形态分布的影响:酶降解和同步辐射 X 射线分析的见解。

Water-dependent effects of biodegradable microplastics on arsenic fractionation in soil: Insights from enzyme degradation and synchrotron-based X-ray analysis.

机构信息

State Environmental Protection Key Laboratory of Environmental Risk Assessment and Control on Chemical Process, School of Resource and Environmental Engineering, East China University of Science and Technology, Shanghai 200237, China.

State Environmental Protection Key Laboratory of Environmental Risk Assessment and Control on Chemical Process, School of Resource and Environmental Engineering, East China University of Science and Technology, Shanghai 200237, China; Shanghai Institute of Pollution Control and Ecological Security, Shanghai 200092, China.

出版信息

J Hazard Mater. 2024 Sep 15;477:135275. doi: 10.1016/j.jhazmat.2024.135275. Epub 2024 Jul 20.

Abstract

The abundance of biodegradable microplastics (BMPs) is increasing in soil due to the widespread use of biodegradable plastics. However, the influence of BMPs on soil metal biogeochemistry, especially arsenic (As), under different water regimes is still unclear. In this study, we investigated the effects of two types of BMPs (PLA-MPs and PBAT-MPs) on As fractionation in two types of soils (black soil and fluvo-aquic soil) under three water regimes including drying (Dry), flooding (FL), and alternate wetting and drying (AWD). The results show that BMPs had limited indirect effects on As fractionation by altering soil properties, but had direct effects by adsorbing and releasing As during their degradation. Enzyme degradation experiments show that the degradation of PLA-MPs led to an increased desorption of 4.76 % for As(III) and 15.74 % for As(V). Synchrotron-based X-ray fluorescence (μ-XRF) combined with micro-X-ray absorption near edge structure (μ-XANES) analysis show that under Dry and AWD conditions, As on the BMPs primarily bind with Fe hydrated oxides in the form of As(V). Conversely, 71.57 % of As on PBAT-MP under FL conditions is in the form of As(III) and is primarily directly adsorbed onto its surface. This study highlights the role of BMPs in soil metal biogeochemistry.

摘要

由于可生物降解塑料的广泛使用,土壤中可生物降解微塑料(BMPs)的丰度正在增加。然而,在不同水分条件下,BMPs 对土壤金属生物地球化学,特别是砷(As)的影响尚不清楚。在这项研究中,我们研究了两种类型的 BMPs(PLA-MPs 和 PBAT-MPs)在三种水分条件下(干燥(Dry)、淹没(FL)和交替干湿(AWD))对两种土壤(黑土和潮土)中 As 形态的影响。结果表明,BMPs 通过改变土壤性质对 As 形态的间接影响有限,但通过在降解过程中吸附和释放 As 具有直接影响。酶降解实验表明,PLA-MPs 的降解导致 As(III)的解吸增加了 4.76%,As(V)的解吸增加了 15.74%。基于同步加速器的 X 射线荧光(μ-XRF)与微 X 射线吸收近边结构(μ-XANES)分析相结合的结果表明,在 Dry 和 AWD 条件下,BMPs 上的 As 主要以 As(V)的形式与 Fe 水合氧化物结合。相反,FL 条件下 PBAT-MP 上的 71.57%的 As 以 As(III)的形式存在,并且主要直接吸附在其表面上。本研究强调了 BMPs 在土壤金属生物地球化学中的作用。

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