Ma Liang, Chen You-Long, Yang Da-Jie, Li Hai-Xia, Ding Si-Jing, Xiong Lun, Qin Ping-Li, Chen Xiang-Bai
Hubei Key Laboratory of Optical Information and Pattern Recognition, Wuhan Institute of Technology, Wuhan, 430205, P. R. China.
Beijing Computational Science Research Center, Beijing, 100193, P. R. China.
Nanoscale. 2020 Feb 20;12(7):4383-4392. doi: 10.1039/c9nr09696e.
Plasmon coupling induced intense light absorption and near-field enhancement have vast potential for high-efficiency photocatalytic applications. Herein, (Au/AgAu)@CdS core-shell hybrids with strong multi-interfacial plasmon coupling were prepared through a convenient strategy for efficient photocatalytic hydrogen generation. Bimetallic Au/AgAu cores with an adjustable number of nanogaps (from one to four) were primarily synthesized by well-controlled multi-cycle galvanic replacement and overgrowth processes. Extinction tests and numerical simulations synergistically revealed that the multigap Au/AgAu hybrids possess a gap-dependent light absorption region and a local electric field owing to the multigap-induced multi-interfacial plasmon coupling. With these characteristics, hetero-photocatalysts prepared by further coating of CdS shells on multigap Au/AgAu cores exhibited a prominent gap-dependent photocatalytic hydrogen production activity from water splitting under light irradiation (λ > 420 nm). It is found that the hydrogen generation rates of multigap (Au/AgAu)@CdS have an exponential improvement compared with that of pure CdS as the number of nanogaps increases. In particular, four-gap (Au/AgAu)@CdS core-shell catalysts displayed the highest hydrogen generation rate, that is 96.1 and 47.2 times those of pure CdS and gapless Au@CdS core-shell hybrids. These improvements can be ascribed to the strong plasmon absorption and near-field enhancement induced by the multi-interfacial plasmon coupling, which can greatly improve the light-harvesting efficiency, offer more plasmonic energy, and boost the generation and separation of electron-hole pairs in the multigap catalysts.
等离子体耦合诱导的强光吸收和近场增强在高效光催化应用中具有巨大潜力。在此,通过一种简便的策略制备了具有强多界面等离子体耦合的(Au/AgAu)@CdS核壳杂化物,用于高效光催化产氢。具有可调节纳米间隙数量(从一个到四个)的双金属Au/AgAu核主要通过精确控制的多循环电化学生成和过生长过程合成。消光测试和数值模拟协同表明,由于多间隙诱导的多界面等离子体耦合,多间隙Au/AgAu杂化物具有间隙依赖性光吸收区域和局部电场。基于这些特性,通过在多间隙Au/AgAu核上进一步包覆CdS壳层制备的异质光催化剂在光照射(λ>420 nm)下表现出显著的间隙依赖性光催化水分解产氢活性。研究发现,随着纳米间隙数量的增加,多间隙(Au/AgAu)@CdS的产氢速率与纯CdS相比呈指数级提高。特别是,四间隙(Au/AgAu)@CdS核壳催化剂表现出最高的产氢速率,分别是纯CdS和无间隙Au@CdS核壳杂化物的96.1倍和47.2倍。这些改进可归因于多界面等离子体耦合诱导的强等离子体吸收和近场增强,这可以大大提高光捕获效率,提供更多的等离子体能量,并促进多间隙催化剂中电子-空穴对的产生和分离。