Zaeimian Masoumeh Saber, Gallian Brandon, Harrison Clay, Wang Yu, Zhao Jialong, Zhu Xiaoshan
Department of Electrical and Biomedical Engineering, University of Nevada Reno, NV, USA.
Biomedical Engineering Program, University of Nevada Reno, NV, USA.
J Alloys Compd. 2018 Oct 15;765:236-244. doi: 10.1016/j.jallcom.2018.06.173. Epub 2018 Jun 19.
In this work, Mn-doped AZIS/ZnS NCs were prepared using a nucleation doping approach with the tuning of Mn and Ag levels in their synthesis. The optical properties of Mn:AZIS/ZnS NCs are found to be significantly affected by Ag and Mn levels. Specifically, more Ag and Mn atoms in Mn:AZIS/ZnS NCs cause their fluorescence red-shift, and as the Ag or Mn level reaches a high threshold, the fluorescence lifetime of Mn:AZIS/ZnS NC has a significant drop. The reasons for the effects of Mn and Ag levels on NC optical properties were explored and discussed. Through this study, it is also found that with certain Ag and Mn levels in synthesis, some Mn:AZIS/ZnS NCs present optimal optical properties including high brightness (QY > 40%), long fluorescence lifetime (> 1.2 ms), low energy for excitation (excitable at 405 nm), and no reabsorption. The feasibility of the optimized NCs for time-gated fluorescence measurement using a portable/compact instrument was further demonstrated, which indicates the application potential of the NCs in time-gated biosensing including point-of-care testing. Notably, this study also discloses that Mn:AZIS/ZnS NCs with different lifetimes can be achieved by tuning Mn and Ag levels in synthesis, which may further broaden the applications of Mn:AZIS/ZnS NCs in multiplexing detection/measurement.
在本工作中,采用成核掺杂方法制备了锰掺杂的AZIS/ZnS纳米晶,并在合成过程中对锰和银的含量进行了调控。发现锰掺杂的AZIS/ZnS纳米晶的光学性质受银和锰含量的显著影响。具体而言,锰掺杂的AZIS/ZnS纳米晶中更多的银和锰原子会导致其荧光红移,并且当银或锰的含量达到高阈值时,锰掺杂的AZIS/ZnS纳米晶的荧光寿命会显著下降。探讨并讨论了锰和银含量对纳米晶光学性质产生影响的原因。通过本研究还发现,在合成过程中具有一定的银和锰含量时,一些锰掺杂的AZIS/ZnS纳米晶呈现出最佳的光学性质,包括高亮度(量子产率>40%)、长荧光寿命(>1.2毫秒)、低激发能量(可在405纳米激发)且无再吸收。进一步证明了使用便携式/紧凑型仪器对优化后的纳米晶进行时间分辨荧光测量的可行性,这表明了纳米晶在包括即时检测在内的时间分辨生物传感中的应用潜力。值得注意的是,本研究还揭示了通过在合成过程中调控锰和银的含量可以实现具有不同寿命的锰掺杂的AZIS/ZnS纳米晶,这可能会进一步拓宽锰掺杂的AZIS/ZnS纳米晶在多重检测/测量中的应用。