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首页> 外文期刊>Physical chemistry chemical physics: PCCP >The composition effect on the optical properties of aqueous synthesized Cu-In-S and Zn-Cu-In-S quantum dot nanocrystals
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The composition effect on the optical properties of aqueous synthesized Cu-In-S and Zn-Cu-In-S quantum dot nanocrystals

机译:组成对水性合成Cu-In-S和Zn-Cu-In-S量子点纳米晶体光学性能的影响

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摘要

Multiternary quantum dots (QDs), because of the large degree of freedom in their structure and composition, have a wide tunability in their bandgap but also exhibit an increased uncertainty and complexity in their optical properties. In this work, we synthesized the ternary Cu-In-S (CIS) and quaternary Zn-Cu-In-S (ZCIS) QDs with different composition ratios via a facile aqueous route. The CIS QDs show multi-peak photoluminescence with their peak intensity dependent on the Cu : In ratio, which was illustrated using a donor-acceptor pair recombination process. Upon incorporation of Zn into the CIS QDs under similar conditions, the acquired ZCIS QDs exhibit blue-shifted photoluminescence (PL) spectra with an enhanced emission intensity and a narrowed spectral width (B100 nm). A comparative study reveals that, reducing the Cu : In ratio in the CIS QDs and increasing the Zn content in the alloyed ZCIS QDs are both feasible strategies for bandgap engineering, although the influences on optical properties of the QDs were different. The XRD and EDX spectra revealed that the widening of the bandgap of the ZCIS QDs was correlated with the alloyed nanostructures and the preferential substitution of Cu by Zn. Compared to the Cu : In ratio variation, incorporation of Zn into CIS QDs is an effective strategy to achieve a more homogeneous absorption band and a wide range of emission wavelength tunability. After ZnS shell coating, the ZCIS/ZnS QDs show a further enhanced PL intensity with a prolonged fluorescence lifetime. Unlike CIS QDs, the blue shift in PL upon the shell growth was not pronounced for ZCIS QDs, for which a surface reconstruction mechanism was proposed and discussed. Finally, the as-prepared ZCIS/ZnS QDs were employed for in vitro cell imaging and exhibited good biocompatibility to macrophage cells.
机译:由于三元量子点(QD)的结构和组成具有很大的自由度,因此它们的带隙具有广泛的可调性,但其光学特性也呈现出增加的不确定性和复杂性。在这项工作中,我们通过一种简便的水合成路线合成了具有不同组成比的三元Cu-In-S(CIS)和四元Zn-Cu-In-S(ZCIS)QD。 CIS QD表现出多峰光致发光,其峰强度取决于Cu:In比率,这使用施主-受主对重组过程进行了说明。在相似条件下将Zn掺入CIS QD中时,获得的ZCIS QD表现出蓝移光致发光(PL)光谱,具有增强的发射强度和窄的光谱宽度(B100 nm)。一项比较研究表明,降低CIS量子点中的Cu:In比和增加合金ZCIS量子点中的Zn含量都是带隙工程的可行策略,尽管它们对量子点的光学性能的影响不同。 XRD和EDX光谱表明,ZCIS量子点的带隙变宽与合金化的纳米结构以及铜被锌的优先取代有关。与Cu:In比率变化相比,将Zn掺入CIS QDs是实现更均匀的吸收带和宽范围的发射波长可调性的有效策略。 ZnS壳涂层后,ZCIS / ZnS QD表现出进一步增强的PL强度,并延长了荧光寿命。与CIS QD不同,对于ZCIS QD,壳生长时PL的蓝移并不明显,为此提出并讨论了表面重建机制。最后,将制备好的ZCIS / ZnS QD用于体外细胞成像,并显示出与巨噬细胞良好的生物相容性。

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