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一种容纳 InP/ZnS 量子点的首次宽开放 LDH 结构:迈向高效且光稳定的红色发光磷光体的新途径。

A First Wide-Open LDH Structure Hosting InP/ZnS QDs: A New Route Toward Efficient and Photostable Red-Emitting Phosphor.

作者信息

Valleix Rodolphe, Zhang Qian, Boyer Damien, Boutinaud Philippe, Chadeyron Geneviève, Feng Yongjun, Okuno Hanako, Réveret François, Hintze-Bruening Horst, Leroux Fabrice

机构信息

Université Clermont Auvergne, Clermont Auvergne INP, CNRS, ICCF, Clermont-Ferrand, F-63000, France.

State Key Laboratory of Chemical Resource Engineering, Beijing Engineering Center for Hierarchical Catalysts, University of Chemical Technology, No. 15 Beisanhuan East Road, Beijing, 100029, China.

出版信息

Adv Mater. 2021 Sep;33(38):e2103411. doi: 10.1002/adma.202103411. Epub 2021 Aug 2.

Abstract

The architecture of Zn-Al layered double hydroxides (LDHs), organo-modified with bola-amphiphiles molecules, is matching its interlayer space to the size of narrow-band red-emitting InP/ZnS core-shell quantum dots (QDs) to form original high-performance functional organic-inorganic QD-bola-LDH hybrids. The success of size-matching interlayer space (SMIS) approach is confirmed by X-ray diffraction, small angle X-ray scattering (SAXS), TEM, STEM-HAADF, and photoluminescence investigations. The QD-Bola-LDH hybrid exhibits a photoluminescence quantum yield three times higher than that of pristine InP/ZnS QDs and provides an easy dispersion into silicone-based resins, what makes the SMIS approach a change of paradigm compared to intercalation chemistry using common host structures. Moreover, this novel hybrid presents low QD-QD energy transfer comparable to that obtained for QDs in suspension. Composite silicone films incorporating InP/ZnS (0.27 wt%) QD-bola-LDH hybrids further show remarkable improved photostability relative to pristine QDs. An LED overlay consisting of a blue LED chip and silicone films loaded with QD-bola-LDH hybrids and YAG:Ce phosphors exhibits a color rendering index close to 94.

摘要

用双功能双亲分子进行有机改性的锌铝层状双氢氧化物(LDHs)的结构,使其层间空间与窄带红色发光的InP/ZnS核壳量子点(QDs)的尺寸相匹配,从而形成了新型的高性能功能性有机-无机量子点-双功能双亲分子-LDHs杂化物。通过X射线衍射、小角X射线散射(SAXS)、透射电子显微镜(TEM)、扫描透射电子显微镜-高角度环形暗场成像(STEM-HAADF)和光致发光研究证实了尺寸匹配层间空间(SMIS)方法的成功。量子点-双功能双亲分子-LDHs杂化物的光致发光量子产率比原始InP/ZnS量子点高出三倍,并且易于分散在有机硅基树脂中,这使得SMIS方法与使用常见主体结构的插层化学相比成为一种范式转变。此外,这种新型杂化物表现出与悬浮液中的量子点相当的低量子点-量子点能量转移。包含InP/ZnS(0.27 wt%)量子点-双功能双亲分子-LDHs杂化物的复合有机硅薄膜相对于原始量子点进一步显示出显著提高的光稳定性。由蓝色LED芯片以及负载有量子点-双功能双亲分子-LDHs杂化物和YAG:Ce荧光粉的有机硅薄膜组成的LED覆盖层显示出接近94的显色指数。

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