Enhanced Photobiocatalytic Cascades at Pickering Droplet Interfaces

IF 15.6 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Ke Li, Houbing Zou*, Xili Tong and Hengquan Yang*, 
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Abstract

Developing new methods to engineer photobiocatalytic reactions is of utmost significance for artificial photosynthesis, but it remains a grand challenge due to the intrinsic incompatibility of biocatalysts with photocatalysts. In this work, photocatalysts and enzymes were spatially colocalized at Pickering droplet interfaces, where the reaction microenvironment and the spatial distance between two distinct catalysts were exquisitely regulated to achieve unprecedented photobiocatalytic cascade reactions. As proof of the concept, ultrathin graphitic carbon nitride nanosheets loaded with Au nanoparticles were precisely positioned in the outer interfacial layer of Pickering oil droplets to produce H2O2 under light irradiation, while enzymes were exactly placed in the inner interfacial layer to catalyze the subsequent biocatalytic oxidation reactions using in situ formed H2O2 as an oxidant. In the alkene epoxidation and thioether oxidation, our interfacial photobiocatalytic cascades showed a 2.0–5.8-fold higher overall reaction efficiency than the photobiocatalytic cascades in the bulk water phase. It was demonstrated that spatial localization of the photocatalyst and the enzyme at Pickering oil droplet interfaces not only provided their respective preferable reaction environments and intimate proximity for rapid H2O2 transport but also protected the enzyme from oxidative inactivation caused by the photogenerated species. These remarkable interfacial effects contributed to the significantly enhanced photobiocatalytic cascading efficiency. Our work presents an innovative photobiocatalytic reaction system with manifold benefits, providing a cutting-edge platform for solar-driven chemical transformations via photobiocatalysis.

Abstract Image

Abstract Image

增强皮克林液滴界面的光生物催化级联。
开发工程化光生物催化反应的新方法对人工光合作用具有极其重要的意义,但由于生物催化剂与光催化剂之间固有的不相容性,这仍然是一个巨大的挑战。在这项工作中,光催化剂和酶在皮克林液滴界面上进行了空间共定位,反应微环境和两种不同催化剂之间的空间距离得到了精细调节,从而实现了前所未有的光生物催化级联反应。作为该概念的证明,将负载金纳米粒子的超薄氮化石墨碳纳米片精确定位在皮克林油滴的外界面层,在光照射下产生 H2O2,同时将酶精确定位在内侧界面层,利用原位形成的 H2O2 作为氧化剂催化后续的生物催化氧化反应。在烯环氧化和硫醚氧化反应中,界面光生物催化级联的总反应效率比体水相中的光生物催化级联高出 2.0-5.8 倍。研究表明,光催化剂和酶在皮克林油滴界面上的空间定位不仅为它们提供了各自理想的反应环境,并为 H2O2 的快速传输提供了密切的邻近性,而且还保护了酶免受光生物种造成的氧化失活。这些显著的界面效应大大提高了光生物催化的级联效率。我们的工作展示了一个具有多方面优势的创新光生物催化反应系统,为通过光生物催化进行太阳能驱动的化学转化提供了一个前沿平台。
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来源期刊
CiteScore
24.40
自引率
6.00%
发文量
2398
审稿时长
1.6 months
期刊介绍: The flagship journal of the American Chemical Society, known as the Journal of the American Chemical Society (JACS), has been a prestigious publication since its establishment in 1879. It holds a preeminent position in the field of chemistry and related interdisciplinary sciences. JACS is committed to disseminating cutting-edge research papers, covering a wide range of topics, and encompasses approximately 19,000 pages of Articles, Communications, and Perspectives annually. With a weekly publication frequency, JACS plays a vital role in advancing the field of chemistry by providing essential research.
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