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作为用于检测外部刺激的发光传感器的Pt(II)配合物晶体中Pt···Pt相互作用的控制:近期成果与展望。

Control of Pt···Pt interactions in Pt(II) complex crystals as luminescence sensors for the detection of external stimuli: recent achievements and perspectives.

作者信息

Yoshida Masaki, Kato Masako

机构信息

Department of Applied Chemistry for Environment, School of Biological and Environmental Sciences, Kwansei Gakuin University, 1 Gakuen-Uegahara, Sanda, Hyogo, 669-1330, Japan.

Department of Chemistry, Graduate School of Science, Osaka University, 1-1 Machikaneyama, Toyonaka, Osaka, 560-0043, Japan.

出版信息

Anal Sci. 2025 Apr 30. doi: 10.1007/s44211-025-00778-w.

Abstract

This review summarizes recent advances in the control of the luminescent chromic behavior of Pt(II) complex crystals, focusing on the design strategies of their molecular and packing structures. Square-planar Pt(II) complexes exhibit unique chromic luminescence owing to flexible Pt···Pt interactions, enabling their use as highly sensitive optical sensors to visualize external stimuli and environmental changes. However, the energy of the Pt···Pt interaction is relatively weak, making it difficult to precisely design and control the chromic luminescence based on the Pt···Pt interactions. This review discusses the challenging control of Pt···Pt interactions based on molecular assembly and presents design strategies using hydrogen bonding, halogen interactions, π-π stacking, and ion-pairing and counterion effects, with specific examples for each approach. Future research will focus on expanding analytical approaches, integrating these materials into sensing devices, and exploring synergies between chromic luminescence and other physical properties such as magnetism and conductivity. These advancements are expected to lead to innovative sensing technologies and significant breakthroughs in analytical chemistry and materials science.

摘要

本综述总结了铂(II)配合物晶体发光变色行为控制方面的最新进展,重点关注其分子和堆积结构的设计策略。平面正方形铂(II)配合物由于灵活的Pt···Pt相互作用而表现出独特的变色发光特性,使其能够用作高灵敏度光学传感器来可视化外部刺激和环境变化。然而,Pt···Pt相互作用的能量相对较弱,这使得基于Pt···Pt相互作用精确设计和控制变色发光变得困难。本综述讨论了基于分子组装对Pt···Pt相互作用进行挑战性控制的问题,并介绍了利用氢键、卤素相互作用、π-π堆积以及离子对和抗衡离子效应的设计策略,并为每种方法提供了具体示例。未来的研究将集中在扩展分析方法、将这些材料集成到传感装置中,以及探索变色发光与其他物理性质(如磁性和导电性)之间的协同作用。这些进展有望带来创新的传感技术,并在分析化学和材料科学领域取得重大突破。

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