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首页> 外文期刊>Nanotechnology >Luminescent, low-toxic and stable gradient-alloyed Fe:ZnSe(S)@ZnSe(S) core:shell quantum dots as a sensitive fluorescent sensor for lead ions
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Luminescent, low-toxic and stable gradient-alloyed Fe:ZnSe(S)@ZnSe(S) core:shell quantum dots as a sensitive fluorescent sensor for lead ions

机译:发光,低毒性和稳定的梯度合金Fe:Znse(S)@Znse核心:壳量子点作为铅离子的敏感荧光传感器

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摘要

In this paper, an aqueous-based approach is introduced for facile, fast, and green synthesis of gradient-alloyed Fe-doped ZnSe(S)@ZnSe(S) core:shell quantum dots (QDs) with intense and stable emission. Co-utilization of co-nucleation and growth doping strategies, along with systematic optimization of emission intensity, provide a well-controllable/general method to achieve internally doped QDs (d-dots) with intense emission. Results indicate that the alloyed ZnSe(S)@ZnSe(S) core:shell QDs have a gradient structure that consists of a Se-rich core and a S-rich shell. This gradient structure cannot only passivate the core d-dots by means of the wider band gap S-rich shell, but also minimizes the lattice mismatch between alloyed core-shell structures. Using this novel strategy and utilizing the wider band gap S-rich shell can obviously increase the cyan emission intensity and also drastically improve the emission stability against chemical and optical corrosion. Furthermore, the cytotoxicity experiments indicate that the obtained d-dots are nontoxic nanomaterials, and thus they can be considered as a promising alternative to conventional Cd-based QDs for fluorescent probes in biological fields. Finally, it is demonstrated that the present low-toxicity and gradient-alloyed core:shell d-dots can be used as sensitive chemical detectors for Pb2+ ions with excellent selectivity, small detection limit, and rapid response time.
机译:在本文中,引入了基于梯度合金的Fe-掺杂ZnSe(S)核心的梯度,快速和绿色合成的水性方法:具有强烈且稳定的发射壳量子点(QDS)。共成核和生长掺杂策略的共同利用以及系统优化的发射强度,提供了可控制的/一般方法,以实现具有强烈排放的内部掺杂的QDS(D点)。结果表明,合金ZnSE @ZnSE核心:壳QD具有梯度结构,包括富含SE的核心和富氏壳。该梯度结构不能通过较宽的带隙S的壳体钝化芯D点,而且还可以最小化合金芯壳结构之间的格子错配。利用这种新颖的策略和利用更广泛的带隙S的壳体可以显然增加青色发射强度,并且还彻底改善了化学和光学腐蚀的排放稳定性。此外,细胞毒性实验表明所获得的D点是无毒的纳米材料,因此它们可以被认为是对生物领域中的荧光探针的常规CD基QDS的有希望的替代方案。最后,证明目前的低毒性和梯度合金化芯:壳体D点可用作PB2 +离子的敏感化学检测器,具有优异的选择性,小检测极限和快速响应时间。

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