State Key Laboratory of Clean Energy Utilization, Zhejiang University, Hangzhou 310027, China.
State Key Laboratory of Clean Energy Utilization, Zhejiang University, Hangzhou 310027, China.
J Hazard Mater. 2021 Oct 5;419:126486. doi: 10.1016/j.jhazmat.2021.126486. Epub 2021 Jun 25.
Microplastics (MPs) derived from plastic wastes have attracted wide attention throughout the world due to the wide distribution, easy transition, and potential threats to organisms. This study proposes efficient Mg/Zn modified magnetic biochar adsorbents for microplastic removal. For polystyrene (PS) microspheres (1 µm, 100 mg/mL) in aqueous solution, the removal efficiencies of magnetic biochar (MBC), Mg modified magnetic biochar (Mg-MBC), and Zn modified magnetic biochar (Zn-MBC) were 94.81%, 98.75%, and 99.46%, respectively. It is supposed that the adsorption process was a result of electrostatic interaction and chemical bonding interaction between microplastics and biochar. The coexisting HPO and organic matters in real water significantly affected the removal efficiency of Zn-MBC due to competitive adsorption effect. Microplastic degradation and adsorbent regeneration were accomplished by thermal treatment simultaneously. The degradation of adsorbed MPs was promoted by the catalytic active sites originated from Mg and Zn, releasing adsorption sites. Thermal regeneration maintained the adsorption capability. Even after five adsorption-pyrolysis cycles, MBC (95.02%), Mg-MBC (94.60%), and Zn-MBC (95.79%) showed high microplastic removal efficiency. Therefore, the low-cost, eco-friendly, and robust Mg/Zn-MBCs have promising potential for application in microplastic removal.
由于微塑料(MPs)在全球范围内广泛分布、易于迁移且对生物具有潜在威胁,因此来源于塑料废物的 MPs 引起了广泛关注。本研究提出了高效的 Mg/Zn 改性磁性生物炭吸附剂用于去除微塑料。对于水中 1 µm、100 mg/mL 的聚苯乙烯(PS)微球,磁性生物炭(MBC)、Mg 改性磁性生物炭(Mg-MBC)和 Zn 改性磁性生物炭(Zn-MBC)的去除效率分别为 94.81%、98.75%和 99.46%。据推测,吸附过程是微塑料和生物炭之间静电相互作用和化学键合相互作用的结果。实际水中共存的 HPO 和有机物由于竞争吸附作用,会显著影响 Zn-MBC 的去除效率。微塑料的降解和吸附剂的再生可同时通过热解处理完成。吸附的 MPs 的降解是由 Mg 和 Zn 产生的催化活性位点促进的,释放出吸附位点。热再生保持了吸附能力。即使经过五次吸附-热解循环,MBC(95.02%)、Mg-MBC(94.60%)和 Zn-MBC(95.79%)仍表现出很高的微塑料去除效率。因此,低成本、环保且坚固的 Mg/Zn-MBC 具有在微塑料去除方面应用的巨大潜力。