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Aggregation-induced phosphorescence enhancement of Mn-doped ZnS quantum dots: the role of dot-to-dot distance

机译:Aggregation-induced磷光的增强Mn-doped硫化锌量子点:dot-to-dot的角色距离

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摘要

Assembled nanoparticles promote many applications in optics due to their instinct properties. The aggregation-induced phosphorescence enhancement (AIPE) of Mn-doped ZnS quantum dots (QDs) is widely used in biosensing, but the mechanism of such an enhancement is still unproven. This study explores the mechanism of the interesting finding of AIPE of Mn-doped ZnS QDs. To induce the aggregation of QDs, the method of electrostatic assembly was explored herein: negatively charged QDs were aggregated with protamine and positively charged QDs were aggregated with heparin. Using several ligands with hierarchical molecular weights for capping Mn-doped ZnS ODs, it was found that the AIPE of Mn-doped ZnS QDs was exponentially dependent on the dot-to-dot distance in aggregates. Together with detailed analysis of both the steady- and transient-state luminescence behaviors of Mn-doped ZnS QDs before and after aggregation, charge transfer from one dot (surface traps) to another (dopant bands) was identified as the driving factor for AIPE. Moreover, the d-band of the Mn2+ dopants was essential for the AIPE since it acts as the acceptor for the transferred charge from neighboring QDs. These conclusions can significantly contribute for better understanding of this interesting luminescence mechanism and future designing of the most suitable sensing systems.
机译:组装纳米粒子促进许多应用程序在光学由于他们的本能属性。aggregation-induced磷光增强(AIPE) Mn-doped硫化锌量子点(量子点)广泛应用于若,但机制这样一个增强仍未经证实。探讨了有趣的发现机制量子点的AIPE Mn-doped硫化锌。量子点的聚合,静电的方法大会探讨了在此:带负电量子点与鱼精蛋白聚合和积极量子点被指控与肝素聚合。几个与分层的分子配体权重限制Mn-doped硫化锌ODs,发现的AIPE Mn-doped硫化锌量子点指数依赖于dot-to-dot距离在聚集。稳定和瞬态分析量子点的发光行为Mn-doped硫化锌聚合后,电荷转移从一个点(表面陷阱)到另一个(掺杂剂乐队)确认为AIPE的驱动因素。此外,d带Mn2 +掺杂物AIPE必不可少的因为它充当受体的电荷转移量子点相邻。为更好地理解意义重大这个有趣的发光机制未来设计的最合适的传感系统。

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