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老化阳离子天然有机物在水生微塑料聚集-沉降中的被忽视作用

Overlooked role of aged cationic natural organic matter in aquatic microplastics aggregation-sedimentation.

作者信息

Peng Qian, Feng Zhiyan, Li Miao, Qin Chencheng, Guo Xiaoai, Wu Jiaxin, Shu Aoqiang, Liu Lin, Wu Xiaodong, Chen J Paul, Yuan Xingzhong, Wang Hou

机构信息

College of Environmental Science and Engineering, Key Laboratory of Environmental Biology and Pollution Control, Hunan University, Changsha 410082, PR China.

College of Materials Science and Engineering, Nanjing Tech University, Nanjing 210009, PR China.

出版信息

Water Res. 2025 Sep 15;284:123949. doi: 10.1016/j.watres.2025.123949. Epub 2025 Jun 2.

Abstract

Environmental behavior of microplastics (MPs) is critically modulated by natural organic matter (NOM), yet the role of aged cationic biopolymers like chitosan (CTS) remains less understood. Herein, we demonstrate the unparalleled ability of aged-CTS to drive aggregation-sedimentation of two types of MPs: conventional polystyrene (PS) and biodegradable polymethyl methacrylate (PMMA), challenging the paradigm of NOM as omnipresent stabilizers. CTS exhibited strong aggregation-sedimentation for both MPs while metal cations failed to induce PMMA aggregation. Remarkably, the optimal aged-CTS achieved a greater MPs aggregation capacity of 5.0 g/g without elevating total organic carbon or leaching ecotoxic by-products. The binding of aged-CTS and MPs was primarily attributed to electrostatic interactions, van der Waals forces, and hydrogen bonding. -NH group on the surface of aged-CTS can be protonated to -NH, thereby strengthening electrostatic interaction. These groups exhibit selective affinity toward the O=C-O group of both PMMA and its hydrolyzed derivatives through hydrogen bonding (-0.05 a.u. < δ < -0.02 a.u.), which surpasses the π-hydrogen bonding effect observed in PS-CTS. While over 90 % MPs removal was achieved in pure suspensions, the complex biofilm in real water matrices inevitably reduced aged-CTS flocculation efficiency, highlighting the environment-dependent challenges of NOM-mediated remediation. This work redefines aged NOM's role in MPs environmental fate, proposing aged CTS as a nature-inspired coagulant for sustainable MPs management that could reduce MPs' threat.

摘要

微塑料(MPs)的环境行为受到天然有机物(NOM)的关键调节,然而,像壳聚糖(CTS)这样的老化阳离子生物聚合物的作用仍鲜为人知。在此,我们证明了老化CTS在驱动两种类型的微塑料:传统聚苯乙烯(PS)和可生物降解聚甲基丙烯酸甲酯(PMMA)的聚集-沉降方面具有无与伦比的能力,挑战了NOM作为无处不在的稳定剂的范式。CTS对两种微塑料都表现出强烈的聚集-沉降,而金属阳离子未能诱导PMMA聚集。值得注意的是,最佳老化CTS在不提高总有机碳或不浸出生态毒性副产物的情况下,实现了更高的微塑料聚集能力,达到5.0 g/g。老化CTS与微塑料的结合主要归因于静电相互作用、范德华力和氢键。老化CTS表面的-NH基团可质子化为-NH,从而加强静电相互作用。这些基团通过氢键(-0.05 a.u. < δ < -0.02 a.u.)对PMMA及其水解衍生物的O=C-O基团表现出选择性亲和力,这超过了在PS-CTS中观察到的π-氢键效应。虽然在纯悬浮液中微塑料去除率超过90%,但实际水基质中的复杂生物膜不可避免地降低了老化CTS的絮凝效率,突出了NOM介导修复的环境依赖性挑战。这项工作重新定义了老化NOM在微塑料环境归宿中的作用,提出老化CTS作为一种受自然启发的凝聚剂,用于可持续的微塑料管理,以减少微塑料的威胁。

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