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用于线性偏振光发射的CdSe-CdS量子棒的纳米纤维导向各向异性自组装:量子棒取向显微镜的证据

Nanofiber-Directed Anisotropic Self-Assembly of CdSe-CdS Quantum Rods for Linearly Polarized Light Emission Evidenced by Quantum Rod Orientation Microscopy.

作者信息

Chakrabarty Arkajyoti, Raffy Guillaume, Maity Mitasree, Gartzia-Rivero Leire, Marre Samuel, Aymonier Cyril, Maitra Uday, Del Guerzo André

机构信息

Institut des Sciences Moléculaires, UMR 5255, Université de Bordeaux, CNRS, 351 Cours de la Libération, 33400, Talence, France.

ICMCB, Bordeaux INP, UMR 5026, Université de Bordeaux, CNRS, 87 av. du Dr. Schweitzer, 33600, Pessac, France.

出版信息

Small. 2018 Sep;14(37):e1802311. doi: 10.1002/smll.201802311. Epub 2018 Aug 15.

Abstract

Hybrid soft materials composed of CdSe-CdS nanorods or "quantum rods" (QRs) and the fluorescent 2,3-didecyloxyanthracene (DDOA) low molecular weight organogelator are obtained through self-assembly. Spectroscopy, microscopy, and rheology studies show that the QRs and DDOA coassemble, thereby stabilizing the organogels. Depending on the QR load and excitation wavelength, single nanofibers (NFs) of the hybrid gel display either sharp polarized red luminescence (under green excitation), or dual perpendicularly polarized blue and red emissions (under UV excitation). Transmission electron microscopy, microspectroscopy, and quantum rod orientation microscopy (QROM) reveal that QRs align along the organogel NFs with order parameters reaching 76% and 87%. This paves the way for obtaining surfaces of QR/NF assemblies yielding sharp red linearly polarized emission. In addition, this work demonstrates that QRs can be used more generally to probe nanostructured soft materials, even nonemissive ones. QROM allows to establish maps of the orientation of single QRs dispersed onto or within a gel network by measuring the polarization of the emission of the individual QRs. As occurs within this work in which QRs and NFs interact, the orientation of each QR reveals information on the underlying nanostructure (such as surface striation, bundle formation, and helicity).

摘要

通过自组装获得了由CdSe-CdS纳米棒或“量子棒”(QRs)与荧光性2,3-二癸氧基蒽(DDOA)低分子量有机凝胶剂组成的混合软材料。光谱学、显微镜学和流变学研究表明,量子棒和DDOA共同组装,从而使有机凝胶稳定。根据量子棒的负载量和激发波长,混合凝胶的单根纳米纤维(NFs)在绿色激发下显示出尖锐的偏振红色发光,或在紫外激发下显示出垂直偏振的蓝色和红色双重发射。透射电子显微镜、显微光谱学和量子棒取向显微镜(QROM)显示,量子棒沿着有机凝胶纳米纤维排列,有序参数分别达到76%和87%。这为获得产生尖锐红色线性偏振发射的量子棒/纳米纤维组件表面铺平了道路。此外,这项工作表明,量子棒可以更广泛地用于探测纳米结构软材料,甚至是非发射性材料。QROM通过测量单个量子棒发射的偏振,能够建立分散在凝胶网络上或内部的单个量子棒取向图。正如在这项量子棒与纳米纤维相互作用的工作中所发生的那样,每个量子棒的取向揭示了关于底层纳米结构(如表面条纹、束状形成和螺旋度)的信息。

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