Liu Fang, Li Shujia, Hu Ruoxin, Shao Na
College of Chemistry, Beijing Normal University, Beijing, People's Republic of China.
Luminescence. 2017 Aug;32(5):723-729. doi: 10.1002/bio.3242. Epub 2016 Nov 18.
Core-shell structured quantum dot (QD)-silica fluorescent nanoparticles have attracted a great deal of attention due to the excellent optical properties of QDs and the stability of silica. In this study, core-shell structured CdTe/CdS@SiO @CdTe@SiO fluorescent nanospheres were synthesized based on the Stöber method using multistep silica encapsulation. The second silica layer on the CdTe QDs maintained the optical stability of nanospheres and decreased adverse influences on the probe during subsequent processing. Red-emissive CdTe/CdS QDs (630 nm) were used as a built-in reference signal and green-emissive CdTe QDs (550 nm) were used as a responding probe. The fluorescence of CdTe QDs was greatly quenched by added S , owing to a S -induced change in the CdTe QDs surface state in the shell. Upon addition of Cd to the S -quenched CdTe/CdS@SiO @CdTe@SiO system, the responding signal at 550 nm was dramatically restored, whereas the emission at 630 nm remained almost unchanged; this response could be used as a ratiometric 'off-on' fluorescent probe for the detection of Cd . The sensing mechanism was suggested to be: the newly formed CdS-like cluster with a higher band gap facilitated exciton/hole recombination and effectively enhanced the fluorescence of the CdTe QDs. The proposed probe shows a highly sensitive and selective response to Cd and has potential application in the detection of Cd in environmental or biological samples.
核壳结构的量子点(QD)-二氧化硅荧光纳米颗粒因其量子点优异的光学性能和二氧化硅的稳定性而备受关注。在本研究中,基于斯托伯法采用多步二氧化硅包封合成了核壳结构的CdTe/CdS@SiO₂@CdTe@SiO₂荧光纳米球。CdTe量子点上的第二层二氧化硅保持了纳米球的光学稳定性,并降低了后续处理过程中对探针的不利影响。发射红光的CdTe/CdS量子点(630nm)用作内置参考信号,发射绿光的CdTe量子点(550nm)用作响应探针。由于壳层中硫诱导的CdTe量子点表面态变化,添加硫后CdTe量子点的荧光被极大地猝灭。向硫猝灭的CdTe/CdS@SiO₂@CdTe@SiO₂体系中添加镉后,550nm处的响应信号显著恢复,而630nm处的发射几乎保持不变;这种响应可作为一种用于检测镉的比率型“关-开”荧光探针。传感机制被认为是:新形成的具有更高带隙的类CdS簇促进了激子/空穴复合,并有效地增强了CdTe量子点的荧光。所提出的探针对镉表现出高度灵敏和选择性的响应,在环境或生物样品中镉的检测方面具有潜在应用。