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首页> 外文期刊>ACS nano >Ligand-Induced Chirality in Asymmetric CdSe/CdS Nanostructures: A Close Look at Chiral Tadpoles
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Ligand-Induced Chirality in Asymmetric CdSe/CdS Nanostructures: A Close Look at Chiral Tadpoles

机译:具有不对称CDSE / CDS纳米结构的配体诱导的手性:仔细看看手性蝌蚪

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摘要

Ligand-induced chirality in asymmetric CdSe/CdS core–shell nanocrystals (NCs) has been extensively applied in chiral biosensors, regioselective syntheses and assemblies, circularly polarized luminescence (CPL), and chiroptic-based devices due to their excellent physiochemical properties, such as the tunable quantum confinement effects, surface functionality, and chemical stability. Herein, we present CdSe/CdS NCs with various morphologies such as nanoflowers, tadpoles, and dot/rods (DRs) with chirality induced by surface chiral ligands. The observed circular dichroism (CD) and CPL activities are closely associated with the geometrical characteristics of the nanostructures, such as the shell thickness and the aspect ratio of the CdSe/CdS NCs. Furthermore, in situ observations of the growth of tadpoles with a single tail indicate that the CD response is mainly attributed to the CdS shell, which has a maximum tail length of ~45 nm (approximately λ/10 of the incident light wavelength). On the other hand, the CPL activity is only related to the CdSe core, and the activity benefits from a thin CdS shell with a relatively high photoluminescence quantum yield (QY). Further theoretical models demonstrated the aspect-ratio-dependent g -factor and QY variations in these asymmetric nanostructures. These findings provide insights into not only the asymmetric synthesis of CdSe/CdS NCs, but also the rational design of CdSe/CdS nanostructures with tunable CD and CPL activities.
机译:在不对称CDSE / CDS核 - 壳纳米晶体(NCS)中的配体诱导的手性已被广泛应用于手性生物传感器,区域选择性合成和组件,圆极化发光(CPL)和由于其优异的理化性质,例如可调谐量子限制效果,表面功能和化学稳定性。在此,我们将CDSE / CDS NC具有诸如纳米轧辊,蝌蚪和点/棒(DRS)的各种形态,具有由表面手性配体诱导的手性的。观察到的圆形二色性(CD)和CPL活性与纳米结构的几何特征密切相关,例如壳体厚度和CDSE / CDS NC的纵横比。此外,原位观察蝌蚪的生长具有单个尾部,表明CD响应主要归因于CDS壳,其具有〜45nm的最大尾长(入射光波长的大约λ/ 10 )。另一方面,CPL活性仅与CDSE核心有关,并且活性与具有相对高的光致发光量子产量(QY)的薄CDS壳有益。其他理论模型证明了这些不对称纳米结构中的纵向比依赖性的

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