Department of Organic Chemistry, Indian Institute of Science, Bangalore, 560012, Karnataka, India.
Nanoscale. 2017 Oct 19;9(40):15494-15504. doi: 10.1039/c7nr05659a.
Facile synthesis of luminescent metal nanoclusters (NCs) accompanied by emission color tuning is currently an active area of research. In this work we describe a rapid (1 s) room temperature synthesis of luminescent Au NCs from completely nonluminescent NCs through the incorporation of Zn. The nanoclusters are initially stabilized by mercaptopropionate, and the coordination of Zn with the carboxylate groups of the ligands rigidifies the Au(i) thiolates restricting the intramolecular rotation-vibrational motion. This significantly reduces the nonradiative relaxation of the excited state to produce yellow luminescent NCs (λ = 580 nm, QY: 6%, τ = 0.2 ms) with almost a million-fold emission enhancement. The enhanced luminescence is due to the self-assembly mediated aggregation induced emission (AIE) of NCs. These NCs on aging for 24 hours transform to highly ordered green emitting NCs (λ = 500 nm, QY: 20%, τ = 20 ns). The blue shift in emission is due to the dominance of inter Au(i)-Au(i) interaction and inter-NC Zn interaction over the intra modes. TEM images show this distinct transition, a decrease in inter NC distance with increased self-assembly. Excited state relaxation dynamics associated with Au(i) thiolate shell dynamics in yellow and green emitting NCs is explained based on the time resolved fluorescence study. The rapid formation of luminescent NCs from nl-NCs has been used for efficient visual and fluorimetric detection of Zn.
通过锌的掺入,实现了发光金属纳米团簇(NCs)的简便合成及其发射颜色调谐,这是当前的一个活跃研究领域。在这项工作中,我们描述了一种通过室温下快速(1 秒)合成完全不发光的 NCs 转化为发光 Au NCs 的方法。纳米团簇最初由巯基丙酸稳定,锌与配体的羧酸盐配位使 Au(i)硫醇盐刚性化,限制了分子内的旋转-振动运动。这显著减少了激发态的非辐射弛豫,从而产生了黄色发光 NCs(λ = 580nm,QY:6%,τ = 0.2ms),其发射增强了近百万倍。增强的发光是由于 NCs 的自组装介导的聚集诱导发光(AIE)。这些 NCs 在老化 24 小时后转变为高度有序的绿色发光 NCs(λ = 500nm,QY:20%,τ = 20ns)。发射的蓝移是由于 Au(i)-Au(i)相互作用和 NC 之间的 Zn 相互作用对内部模式的主导作用。TEM 图像显示了这种明显的转变,随着自组装的增加,NC 之间的距离减小。基于时间分辨荧光研究,解释了黄色和绿色发光 NCs 中 Au(i)硫醇壳层动力学与激发态弛豫动力学之间的关系。从非发光 NCs 快速形成发光 NCs 已被用于高效的视觉和荧光检测 Zn。