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基于稀土配合物的功能材料:从分子设计、性能调控到独特应用

Rare Earth Complex-Based Functional Materials: From Molecular Design and Performance Regulation to Unique Applications.

作者信息

Su Pingru, Song Fujia, Cao Jing, Yan Chun-Hua, Tang Yu

机构信息

State Key Laboratory of Applied Organic Chemistry, Key Laboratory of Nonferrous Metal Chemistry and Resources Utilization of Gansu Province, College of Chemistry and Chemical Engineering, Lanzhou University, Lanzhou 730000, China.

State Key Laboratory of Baiyunobo Rare Earth Resource Researches and Comprehensive Utilization, Baotou Research Institute of Rare Earths, Baotou 014030, China.

出版信息

Acc Chem Res. 2025 Jan 21;58(2):218-230. doi: 10.1021/acs.accounts.4c00649. Epub 2025 Jan 2.

Abstract

ConspectusRare earth (RE) elements, due to their unique electronic structures, exhibit excellent optical, electrical, and magnetic properties and thus have found widespread applications in the fields of electronics, optics, and biomedicine. A significant advancement in the use of RE elements is the formation of RE complexes. RE complexes, created by the coordination of RE ions with organic ligands, not only offer high molecular design flexibility but also incorporate features such as a broad absorption band and efficient energy transfer of organic ligands. Through the "antenna effect", organic ligands can transfer energy to RE ions, enhancing their luminescence efficiency. Moreover, the modification of the ligands can influence the local environment of the RE ions, thereby regulating their electronic structures and energy-level distributions. This makes it one of the important avenues for the efficient development and utilization of RE resources.The meticulous design of organic ligands during molecular synthesis enables the precise construction and regulation of RE complex structures, which are essential for probing molecular-level structure-performance relations and developing functional materials in fields such as optoelectronics, sensing, and catalysis/energy. Despite notable advancements, challenges persist in refining synthesis methodologies, innovating RE complex-based materials, enhancing stability, gaining better control over device functionality, and realizing high-value applications. This Account summarizes the recent advancements in molecular design and performance regulation achieved by our research group, particularly focusing on the synthesis and functional regulation of RE complex-based materials. We have employed strategies such as coordination self-assembly, in situ coordination, and microstructural evolution to achieve the precise synthesis and functional modulation of RE complex-based materials. These approaches have allowed us to finely tune properties such as the luminescence, electrical performance, and catalytic performance of various material systems. Consequently, we have made considerable strides in multidimensional optical information storage, the development of intelligent biological probes, the preparation of nanocatalysts, and the enhancement of inorganic-organic hybrid perovskite solar cell devices. Finally, we are committed to conducting an in-depth analysis of the challenges and opportunities that arise from the precise synthesis methods, performance regulation strategies, and innovative applications of RE complex-based functional materials. Additionally, we aim to propose potential solutions to current issues. This Account comprehensively summarizes the developments in RE complex-based materials to stimulate innovative thinking and new research directions and to establish a foundation for function-oriented precise synthesis methods.

摘要

综述

稀土(RE)元素因其独特的电子结构,展现出优异的光学、电学和磁学性质,因此在电子、光学和生物医学领域得到了广泛应用。稀土元素应用的一项重大进展是稀土配合物的形成。稀土配合物由稀土离子与有机配体配位而成,不仅具有高分子设计灵活性,还具备有机配体的宽吸收带和高效能量转移等特性。通过“天线效应”,有机配体可将能量转移至稀土离子,提高其发光效率。此外,配体的修饰可影响稀土离子的局部环境,从而调节其电子结构和能级分布。这使其成为稀土资源高效开发利用的重要途径之一。

在分子合成过程中对有机配体进行精心设计,能够精确构建和调控稀土配合物结构,这对于探究分子水平的结构 - 性能关系以及开发光电子学、传感和催化/能源等领域的功能材料至关重要。尽管取得了显著进展,但在完善合成方法、创新基于稀土配合物的材料、提高稳定性、更好地控制器件功能以及实现高价值应用等方面仍存在挑战。本综述总结了我们研究小组近期在分子设计和性能调控方面取得的进展,特别关注基于稀土配合物材料的合成与功能调控。我们采用了配位自组装、原位配位和微观结构演化等策略,实现了基于稀土配合物材料的精确合成和功能调制。这些方法使我们能够精细调节各种材料体系的发光、电学性能和催化性能等性质。因此,我们在多维光学信息存储、智能生物探针开发、纳米催化剂制备以及无机 - 有机杂化钙钛矿太阳能电池器件性能提升方面取得了长足进展。最后,我们致力于深入分析基于稀土配合物功能材料的精确合成方法、性能调控策略和创新应用所带来的挑战与机遇。此外,我们旨在提出当前问题的潜在解决方案。本综述全面总结了基于稀土配合物材料的发展情况,以激发创新思维和新的研究方向,并为面向功能的精确合成方法奠定基础。

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