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分级氮化碳负载单原子铁催化剂用于串联微塑料降解和产氢

Tandem microplastic degradation and hydrogen production by hierarchical carbon nitride-supported single-atom iron catalysts.

作者信息

Lin Jingkai, Hu Kunsheng, Wang Yantao, Tian Wenjie, Hall Tony, Duan Xiaoguang, Sun Hongqi, Zhang Huayang, Cortés Emiliano, Wang Shaobin

机构信息

School of Chemical Engineering, The University of Adelaide, North Terrace, Adelaide, SA, 5005, Australia.

Nano-Institute Munich, Faculty of Physics, Ludwig-Maximilians-Universität München, Munich, Germany.

出版信息

Nat Commun. 2024 Oct 10;15(1):8769. doi: 10.1038/s41467-024-53055-1.

Abstract

Microplastic pollution, an emerging environmental issue, poses significant threats to aquatic ecosystems and human health. In tackling microplastic pollution and advancing green hydrogen production, this study reveals a tandem catalytic microplastic degradation-hydrogen evolution reaction (MPD-HER) process using hierarchical porous carbon nitride-supported single-atom iron catalysts (FeSA-hCN). Through hydrothermal-assisted Fenton-like reactions, we accomplish near-total ultrahigh-molecular-weight-polyethylene degradation into C-C organics with 64% selectivity of carboxylic acid under neutral pH, a leap beyond current capabilities in efficiency, selectivity, eco-friendliness, and stability over six cycles. The system demonstrates versatility by degrading various daily-use plastics across different aquatic settings. The mixture of FeSA-hCN and plastic degradation products further achieves a hydrogen evolution of 42 μmol h under illumination, outperforming most existing plastic photoreforming methods. This tandem MPD-HER process not only provides a scalable and economically feasible strategy to combat plastic pollution but also contributes to the hydrogen economy, with far-reaching implications for global sustainability initiatives.

摘要

微塑料污染是一个新出现的环境问题,对水生生态系统和人类健康构成重大威胁。在应对微塑料污染和推进绿色制氢方面,本研究揭示了一种使用分级多孔氮化碳负载的单原子铁催化剂(FeSA-hCN)的串联催化微塑料降解-析氢反应(MPD-HER)过程。通过水热辅助类芬顿反应,我们实现了将超高分子量聚乙烯几乎完全降解为C-C有机物,在中性pH条件下羧酸选择性达64%,在效率、选择性、生态友好性和六个循环的稳定性方面超越了当前的能力。该系统通过在不同水生环境中降解各种日常使用的塑料展示了其通用性。FeSA-hCN与塑料降解产物的混合物在光照下进一步实现了42 μmol h的析氢量,优于大多数现有的塑料光重整方法。这种串联MPD-HER过程不仅为对抗塑料污染提供了一种可扩展且经济可行的策略,还对氢经济做出了贡献,对全球可持续发展倡议具有深远意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6442/11464750/3ed6037ad620/41467_2024_53055_Fig1_HTML.jpg

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