State Key Laboratory of Supramolecular Structure and Materials, College of Chemistry, Jilin University , Changchun 130012, PR China.
Institute of Atomic and Molecular Physics, Jilin University , Changchun 130012, PR China.
J Am Chem Soc. 2015 Oct 14;137(40):12906-13. doi: 10.1021/jacs.5b06550. Epub 2015 Sep 29.
Metal nanoclusters (NCs) as a new class of phosphors have attracted a great deal of interest owing to their unique electronic structure and subsequently molecule-like optical properties. However, limited successes have been achieved in producing the NCs with excellent luminescent performance. In this paper, we demonstrate the significant luminescence intensity enhancement of 1-dodecanethiol (DT)-capped Cu NCs via self-assembly strategy. By forming compact and ordered assemblies, the original nonluminescent Cu NCs exhibit strong emission. The flexibility of self-assembly allows to further control the polymorphism of Cu NCs assemblies, and hence the emission properties. Comparative structural and optical analysis of the polymorphic NCs assemblies permits to establish a relationship between the compactness of assemblies and the emission. First, high compactness reinforces the cuprophilic Cu(I)···Cu(I) interaction of inter- and intra-NCs, and meanwhile, suppresses intramolecular vibration and rotation of the capping ligand of DT, thus enhancing the emission intensity of Cu NCs. Second, as to the emission energy that depends on the distance of Cu(I)···Cu(I), the improved compactness increases average Cu(I)···Cu(I) distance by inducing additional inter-NCs cuprophilic interaction, and therewith leads to the blue shift of NCs emission. Attributing to the assembly mediated structural polymorphism, the NCs assemblies exhibit distinct mechanochromic and thermochromic luminescent properties. Metal NCs-based white light-emitting diodes are further fabricated by employing the NCs assemblies with blue-green, yellow, and red emissions as phosphors.
金属纳米团簇(NCs)作为一类新型荧光体,由于其独特的电子结构和随后的分子光学性质而引起了极大的兴趣。然而,在制备具有优异发光性能的 NCs 方面,取得的成功有限。在本文中,我们通过自组装策略证明了 1-十二硫醇(DT)封端的 Cu NCs 的显著发光强度增强。通过形成紧密有序的组装体,原始非发光的 Cu NCs 表现出强发射。自组装的灵活性允许进一步控制 Cu NCs 组装体的多晶型性,从而控制发射特性。对多晶型 NCs 组装体的结构和光学分析比较允许建立组装体的紧密性与发射之间的关系。首先,高紧凑性增强了 NC 间和 NC 内的亲铜 Cu(I)···Cu(I)相互作用,同时抑制了配体 DT 的分子内振动和旋转,从而增强了 Cu NCs 的发射强度。其次,对于依赖于 Cu(I)···Cu(I)距离的发射能量,改善的紧凑性通过诱导额外的 NC 间亲铜相互作用来增加平均 Cu(I)···Cu(I)距离,从而导致 NCs 发射的蓝移。由于组装介导的结构多晶型性,NCs 组装体表现出明显的机械变色和热致变色发光特性。进一步通过采用具有蓝绿色、黄色和红色发射的 NCs 组装体作为荧光体,制备了基于金属 NCs 的白色发光二极管。