原子分散催化剂:用于高效稳定的工业电合成H2O2

IF 30.8 1区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Yapeng Du, Xueqin Mu, Shengchen Wang, Yifan Zhang, Fanjiao Chen, Mengyang Zhang, Junlin Li, Pingping Cao, Jiayao Yuan, Yue Zhang, Linsheng Liu, Zhengyang Liu, Qin Ma, Suli Liu, Dingsheng Wang and Zhihui Dai
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引用次数: 0

摘要

过氧化氢(H2O2)是一种在医疗保健和环境应用中至关重要的绿色化学品,由于能源密集型和污染的蒽醌工艺,它面临生产限制。双电子氧还原反应(2e - ORR)提供了一条可持续的合成途径,但需要高效的催化剂才能实现工业化。原子分散催化剂(adc)具有最大的原子利用率和可调的活性位点,已成为2e - orr驱动的H2O2生产的关键材料。然而,诸如聚集引起的失活等挑战阻碍了它们的工业部署。本文系统地分析了原子尺度的催化机理和ADC设计策略的进展,包括配位工程、协同位点工程和载体优化。尖端表征技术-如用于跟踪adc结构演变的球差电子显微镜,用于监测中间体的原位光谱和DFT建模-揭示了关键的结构-活性关系。此外,电合成的H2O2在下游应用中具有变革性的潜力,例如用于污染物降解和塑料废物增值的电fenton反应。通过将机理见解与实际工程方法相结合,这项工作为克服adc的稳定性问题和扩大H2O2产量提供了路线图。它是基础研究和产业实施的桥梁,为推进绿色化学合成和循环经济技术提供战略指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Atomically dispersed catalysts: for the efficient and stable industrial electrosynthesis of H2O2

Atomically dispersed catalysts: for the efficient and stable industrial electrosynthesis of H2O2

Atomically dispersed catalysts: for the efficient and stable industrial electrosynthesis of H2O2

Hydrogen peroxide (H2O2), a green chemical vital in healthcare and environmental applications, faces production limitations due to the energy-intensive and polluting anthraquinone process. The two-electron oxygen reduction reaction (2e ORR) offers a sustainable synthesis route, yet requires efficient catalysts for industrialization. Atomically dispersed catalysts (ADCs), with maximized atomic utilization and tunable active sites, have emerged as pivotal materials for 2e ORR-driven H2O2 production. However, challenges such as agglomeration-induced deactivation hinder their industrial deployment. This review systematically analyzes atomic-scale catalytic mechanisms and advances in ADC design strategies, including coordination engineering, synergistic site engineering, and carrier optimization. Cutting-edge characterization techniques—such as spherical aberration electron microscopy for tracking the structural evolution of ADCs, in situ spectroscopy for monitoring intermediates, and DFT modeling—reveal critical structure–activity relationships. Furthermore, electrosynthesized H2O2 demonstrates transformative potential in downstream applications, such as Electro-Fenton reactions for pollutant degradation and plastic waste valorization. By integrating mechanistic insights with practical engineering approaches, this work provides a roadmap for overcoming the stability issues of ADCs and scaling up H2O2 production. It bridges fundamental research and industrial implementation, offering strategic guidance for advancing green chemical synthesis and circular economy technologies.

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来源期刊
Energy & Environmental Science
Energy & Environmental Science 化学-工程:化工
CiteScore
50.50
自引率
2.20%
发文量
349
审稿时长
2.2 months
期刊介绍: Energy & Environmental Science, a peer-reviewed scientific journal, publishes original research and review articles covering interdisciplinary topics in the (bio)chemical and (bio)physical sciences, as well as chemical engineering disciplines. Published monthly by the Royal Society of Chemistry (RSC), a not-for-profit publisher, Energy & Environmental Science is recognized as a leading journal. It boasts an impressive impact factor of 8.500 as of 2009, ranking 8th among 140 journals in the category "Chemistry, Multidisciplinary," second among 71 journals in "Energy & Fuels," second among 128 journals in "Engineering, Chemical," and first among 181 scientific journals in "Environmental Sciences." Energy & Environmental Science publishes various types of articles, including Research Papers (original scientific work), Review Articles, Perspectives, and Minireviews (feature review-type articles of broad interest), Communications (original scientific work of an urgent nature), Opinions (personal, often speculative viewpoints or hypotheses on current topics), and Analysis Articles (in-depth examination of energy-related issues).
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