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具有高效深红光发射且发射波长超过700nm的水溶性氧化铝包覆磷化铟核壳量子点。

Water-Soluble Alumina-Coated Indium Phosphide Core-Shell Quantum Dots with Efficient Deep-Red Emission Beyond 700 nm.

作者信息

Saha Avijit, Yadav Ranjana, Rivaux Céline, Aldakov Dmitry, Reiss Peter

机构信息

University Grenoble Alpes, CEA, CNRS, IRIG, SyMMES, STEP, Grenoble, 38000, France.

出版信息

Small. 2024 Nov;20(45):e2404426. doi: 10.1002/smll.202404426. Epub 2024 Jul 26.

DOI:10.1002/smll.202404426
PMID:39058212
Abstract

Solution-processed colloidal III-V semiconductor-based quantum dots (QDs) represent promising and environmentally-friendly alternatives to Cd-based QDs in the realms of optoelectronics and biological applications. While InP-based core-shell QDs have demonstrated efficient light-emitting diode (LED) performance in the visible region, achieving deep-red emission (above 700 nm) with a narrow linewidth has proven challenging. Herein, the study presents a novel strategy for synthesizing InP/ZnSe/ZnS core-shell-shell QDs tailored for emission in the first biological transparency window. The resulting QDs exhibit an emission wavelength up to 725 nm with a narrow peak full width at half maximum (FWHM) down to 107 meV (45 nm). To enhance the biocompatibility and chemical stability of the QDs, their surface is further capped with a layer of amorphous alumina resulting in an InP/ZnSe/ZnS/AlO heterostructure. This surface passivation not only ensures environmental- and photostability but also enhances the photoluminescence quantum yield (PLQY). The alumina capping enables the aqueous phase transfer via surface ligand exchange using mercaptopropionic acid (MPA) while maintaining the initial quantum yield. The resulting QDs demonstrate a significant potential for advancing next-generation optoelectronic technologies and bio-applications.

摘要

溶液法制备的基于III-V族胶体半导体的量子点(QDs)在光电子学和生物应用领域是基于镉的量子点有前景且环保的替代品。虽然基于磷化铟的核壳量子点在可见光区域已展现出高效发光二极管(LED)性能,但实现窄线宽的深红色发射(700nm以上)已证明具有挑战性。在此,该研究提出了一种新颖的策略,用于合成专为在第一个生物透明窗口发射而定制的磷化铟/硒化锌/硫化锌核壳壳量子点。所得量子点表现出高达725nm的发射波长,半高宽窄至107meV(45nm)。为了提高量子点的生物相容性和化学稳定性,其表面进一步用一层非晶氧化铝覆盖,形成磷化铟/硒化锌/硫化锌/氧化铝异质结构。这种表面钝化不仅确保了环境稳定性和光稳定性,还提高了光致发光量子产率(PLQY)。氧化铝覆盖使得能够通过使用巯基丙酸(MPA)的表面配体交换进行水相转移,同时保持初始量子产率。所得量子点在推进下一代光电子技术和生物应用方面展现出巨大潜力。

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