Hou Shuo, Huang Ming-Hui, Li Yu-Bing, Xu Shuai, Lin Xin, Fu Xiao-Yan, Xiao Fang-Xing
College of Materials Science and Engineering, Fuzhou University, New Campus, Minhou, Fujian Province 350108, China.
Inorg Chem. 2020 Nov 16;59(22):16654-16664. doi: 10.1021/acs.inorgchem.0c02643. Epub 2020 Oct 31.
Transition metal chalcogenide quantum dots (TMC QDs) represent promising light-harvesting antennas because of their fascinating physicochemical properties including quantum confinement effect and suitable energy band structures. However, TMC QDs generally suffer from poor photoactivities and photostability due to deficiency of active sites and ultrafast recombination rate of photoinduced charge carriers. Here, we demonstrate how to rationally arouse the charge transfer kinetic of TMC QDs by close monolayered graphene (GR) encapsulation via a ligand-dominated layer-by-layer (LbL) assembly utilizing oppositely charged TMC QDs and GR nanosheets as the building blocks. The assembly units were spontaneously and intimately integrated in an alternate integration mode, thereby resulting in the multilayered three-dimensional (3D) TMC QDs/GR ensembles. It was unveiled that multifarious photoactivities of TMC QDs/GR nanocomposites toward versatile photoredox organic catalysis including photocatalytic aromatic alcohols oxidation to aldehydes and nitroaromatics reduction to amino derivatives under visible light irradiation are conspicuously boosted because of spatially multilayered monolayered GR encapsulation which are superior to those of TMC QDs counterparts. The substantially enhanced photoactivities of TMC QDs/GR nanocomposites arise from reasons including improved light absorption and enhanced charge separation efficacy because of GR encapsulation together with unique stacking mode between TMC QDs and GR endowed by LbL assembly. Our work would provide a promising and efficacious route to smartly accelerate the charge transfer kinetic of TMC QDs for solar energy conversion.
过渡金属硫族化物量子点(TMC QDs)因其具有迷人的物理化学性质,包括量子限域效应和合适的能带结构,而成为有前景的光捕获天线。然而,由于活性位点的缺乏和光生电荷载流子的超快复合率,TMC QDs通常具有较差的光活性和光稳定性。在此,我们展示了如何通过以带相反电荷的TMC QDs和GR纳米片为构建单元,利用配体主导的逐层(LbL)组装方法,通过紧密的单层石墨烯(GR)封装来合理激发TMC QDs的电荷转移动力学。组装单元以交替整合模式自发且紧密地整合在一起,从而形成多层三维(3D)TMC QDs/GR聚集体。结果表明,由于空间多层单层GR封装,TMC QDs/GR纳米复合材料在可见光照射下对多种光氧化还原有机催化反应的多种光活性显著增强,包括光催化芳族醇氧化为醛以及硝基芳烃还原为氨基衍生物,这优于TMC QDs对应物。TMC QDs/GR纳米复合材料光活性的大幅增强源于多种原因,包括由于GR封装导致的光吸收改善和电荷分离效率提高,以及LbL组装赋予的TMC QDs与GR之间独特的堆叠模式。我们的工作将为智能加速TMC QDs的电荷转移动力学以实现太阳能转换提供一条有前景且有效的途径。