Upcycling Polyethylene Terephthalate Plastic to C2 Chemicals in Parallel With Nitrate Reduction to Ammonia or Electric Energy Generation

IF 7.2 2区 材料科学 Q2 CHEMISTRY, PHYSICAL Chemistry of Materials Pub Date : 2025-01-25 DOI:10.1021/acs.chemmater.4c03111
Zhentao Tu, Xiaoyang He, Xuan Liu, Dengke Xiong, Shujie Xue, Deli Wu, Jianying Wang, Zuofeng Chen
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Abstract

The resource utilization of waste plastics and nitrogen-containing wastewater has an important environmental impact. Herein, we present self-supporting CuPd alloy nanosheets as bifunctional catalysts for selective electrooxidation of ethylene glycol (EG) from polyethylene terephthalate (PET) hydrolysate to glycolic acid (GA, a C–C bond preserved product with more than 20-time added value) and for efficient electroreduction of nitrate in wastewater to ammonium. Remarkable Faraday efficiencies of ∼93% for GA production and ∼92% for nitrate reduction were achieved. In situ Fourier transform infrared spectroscopy identified crucial intermediates in GA production, elucidating the C–C bond preserved C2 pathway for EG-to-GA conversion. Meanwhile, density functional theory calculations revealed a deeper d-band center arising from the synergistic interaction between Pd and Cu atoms, which facilitates GA desorption, thereby avoiding overoxidation for high selectivity. For nitrate reduction, differential electrochemical mass spectrometry and theoretical calculations were applied, identifying NO2* hydrogenation as the rate-determining step. Furthermore, we propose an innovative electroforming architecture integrating EG oxidation with a nitrate reduction or oxygen reduction reaction. This architecture, activated by CuPd/NF electrodes, can operate in switching mode throughout the day. It allows the production of high-value GA from PET hydrolysate while simultaneously producing NH4+ in the daytime by coupling with nitrate reduction, or generating electricity during the night by coupling with ORR, offering a competitive solution for resource utilization of wastes.

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废塑料和含氮废水的资源化利用对环境有着重要影响。在此,我们将自支撑铜钯合金纳米片作为双功能催化剂,用于选择性电氧化聚对苯二甲酸乙二酯(PET)水解产物中的乙二醇(EG),将其转化为乙醇酸(GA,一种保留 C-C 键的产品,具有 20 倍以上的附加值),以及将废水中的硝酸盐高效电还原为铵。生产 GA 和还原硝酸盐的法拉第效率分别达到了显著的 93% 和 92%。原位傅立叶变换红外光谱鉴定出了产生 GA 的关键中间产物,阐明了 C-C 键保留的 C2 EG 转化为 GA 的途径。同时,密度泛函理论计算显示,由于钯原子和铜原子之间的协同作用,产生了一个更深的 d 波段中心,这有利于 GA 的解吸,从而避免过氧化,实现高选择性。在硝酸盐还原方面,应用了差分电化学质谱法和理论计算,确定 NO2* 氢化是决定速率的步骤。此外,我们还提出了一种创新的电铸结构,将 EG 氧化与硝酸盐还原或氧气还原反应整合在一起。该结构由 CuPd/NF 电极激活,可全天以切换模式运行。它允许从 PET 水解物中生产高价值的 GA,同时在白天通过与硝酸盐还原反应的耦合产生 NH4+,或在夜间通过与 ORR 的耦合发电,为废物资源化提供了一个有竞争力的解决方案。
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来源期刊
Chemistry of Materials
Chemistry of Materials 工程技术-材料科学:综合
CiteScore
14.10
自引率
5.80%
发文量
929
审稿时长
1.5 months
期刊介绍: The journal Chemistry of Materials focuses on publishing original research at the intersection of materials science and chemistry. The studies published in the journal involve chemistry as a prominent component and explore topics such as the design, synthesis, characterization, processing, understanding, and application of functional or potentially functional materials. The journal covers various areas of interest, including inorganic and organic solid-state chemistry, nanomaterials, biomaterials, thin films and polymers, and composite/hybrid materials. The journal particularly seeks papers that highlight the creation or development of innovative materials with novel optical, electrical, magnetic, catalytic, or mechanical properties. It is essential that manuscripts on these topics have a primary focus on the chemistry of materials and represent a significant advancement compared to prior research. Before external reviews are sought, submitted manuscripts undergo a review process by a minimum of two editors to ensure their appropriateness for the journal and the presence of sufficient evidence of a significant advance that will be of broad interest to the materials chemistry community.
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