具有长寿命电荷分离态和高度循环稳定性的多孔聚硒藻,可用于异相光催化反应和制氢

Yujing Gao, Qi Sun, Chenjing Liu, Yawen Li, Sikun Zhang, Guoping Li, Gang He
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摘要

通过 S2 反应,成功合成了一种高度稳定的异质光催化剂--多孔聚硒维欧根(POP-SeV)。与单体相比,POP-SeV 具有很强的可见光吸收能力、更强的电子受体特性和更长的自由基阳离子寿命。同时,飞秒瞬态吸收(fs-TA)表明,四面体多阳离子结构的形成有利于分子激发态的快速生成,并延长了电荷分离态的持续时间。由于其显著特点,POP-SeV 被用作光催化剂,用于可见光诱导的交叉脱氢偶联(CDC)反应,收率高达 82%。此外,该催化剂的用途还进一步扩展到制氢领域,并取得了显著的成果,例如高制氢率(300 μmol-h-g)和表观量子产率(0.13%)。值得注意的是,POP-SeV 在光催化过程中表现出极高的稳定性和可重复使用性,这使其有别于那些可溶性 SeV 基光催化剂。这不仅首次实现了 SeV 基体系的完全异相光催化,而且为提高紫胶衍生物在太阳能转化和利用中的应用效果提供了新的策略。
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Porous polyselenoviologen with long-lived charge separated states and highly cyclic stability for heterogeneous photocatalytic reaction and hydrogen production
A highly stable heterogeneous photocatalyst, porous polyselenoviologen (POP-SeV), was successfully synthesized via S2 reaction. Compared to the monomer, POP-SeV exhibited strong visible-light absorption, enhanced electron acceptor property, and prolonged lifetime of radical cations. Simultaneously, the femtosecond transient absorption (fs-TA) illustrated that the formation of tetrahedral multi-cationic structure is conducive to the rapid generation of molecular excited states and extending the duration of charge-separated states. Due to its remarkable characteristics, the POP-SeV was employed as a photocatalyst for visible-light-induced cross-dehydrogenative coupling (CDC) reactions with a highly efficient yield (82 %). Additionally, its utilization was further extended to the hydrogen generation, demonstrating remarkable outcomes such as a high rate of H generation (300 μmol·h·g), and an apparent quantum yield (0.13 %). Notably, POP-SeV displayed great stability and reusability in the photocatalytic process, which can distinguish it from those soluble SeV-based photocatalysts. The catalytic efficiency of POP-SeV remained virtually unaffected even after undergoing several recycling cycles, which not only achieved the complete heterogeneous photocatalysis of SeV-based systems for the first time but also provided a new strategy to improve the application effect of viologen derivatives in solar energy conversion and utilization.
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