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具有荧光和非线性光学性质的可熔铝分子环

Meltable Aluminum Molecular Rings with Fluorescence and Nonlinear Optical Properties.

作者信息

Wang San-Tai, Fang Wei-Hui, Zhang Jian

机构信息

State Key Laboratory of Structural Chemistry, Fujian Institute of Research on the Structure of Matter, Chinese Academy of Sciences, Fuzhou, Fujian, 350002, P. R. China.

University of Chinese Academy of Sciences, Chinese Academy of Sciences, Beijing, 100049, P. R. China.

出版信息

Angew Chem Int Ed Engl. 2024 Mar 11;63(11):e202400161. doi: 10.1002/anie.202400161. Epub 2024 Feb 5.

Abstract

Crystal-liquid-glass, which combines the tunable properties of crystalline compounds with the processability of glasses, has emerged as a new class of materials for fabricating bulk-shapable devices in real applications. Inspired by the characteristics of deep eutectic solvent (DES) mixtures involving significant depressions in melting points compared to their neat constituent components, in this study, we designed and synthesized the first examples of meltable aluminum oxo clusters (AlOCs) via lattice doping with DESs at the molecular level. The abundant and strong hydrogen bonding between the aluminum molecular ring, DES components, and lattice solvents is postulated to be the root that affords melting point depressions and, thus, "melting" clusters. We prepared a transparent bubble-free glass film under autogenous pressure using a hot-press method. These cluster-based films exhibited luminescent and nonlinear optical properties similar to those of pristine crystalline compounds. Our study belongs to the interdisciplinary disciplines of chemistry and physics. It not only breaks the limitations of crystalline glass on metal and ligand types but also acts as a general guide for extending the range of meltable crystalline materials.

摘要

晶态-液态-玻璃态材料结合了晶体化合物的可调性质与玻璃的可加工性,已成为一类新型材料,可用于实际应用中制造具有整体形状的器件。受深共熔溶剂(DES)混合物特性的启发,与纯组分相比,其熔点显著降低,在本研究中,我们通过在分子水平上用DES进行晶格掺杂,设计并合成了首例可熔融的铝氧簇(AlOCs)。铝分子环、DES组分和晶格溶剂之间丰富而强大的氢键被认为是导致熔点降低从而使簇“熔融”的根源。我们使用热压法在自生压力下制备了透明无气泡的玻璃薄膜。这些基于簇的薄膜表现出与原始晶体化合物相似的发光和非线性光学性质。我们的研究属于化学和物理学的交叉学科。它不仅打破了晶态玻璃在金属和配体类型上的限制,还为扩展可熔融晶体材料的范围提供了一般性指导。

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