Proton-Induced Reversible Spin-State Switching in Octanuclear FeIII Spin-Crossover Metal–Organic Cages

化学 质子 旋转交叉 自旋(空气动力学) 自旋态 金属 结晶学 无机化学 核物理学 物理 有机化学 工程类 航空航天工程
作者
Zhikun Liu,Xue-Yang Ji,Meng Yu,Yu‐Xia Li,Jie‐Sheng Hu,Yu‐Meng Zhao,Zi‐Shuo Yao,Jun Tao
出处
期刊:Journal of the American Chemical Society [American Chemical Society]
卷期号:146 (31): 22036-22046
标识
DOI:10.1021/jacs.4c07469
摘要

Responsive spin-crossover (SCO) metal–organic cages (MOCs) are emerging dynamic platforms with potential for advanced applications in magnetic sensing and molecular switching. Among these, FeIII-based MOCs are particularly noteworthy for their air stability, yet they remain largely unexplored. Herein, we report the synthesis of two novel FeIII MOCs using a bis-bidentate ligand approach, which exhibit SCO activity above room temperature. These represent the first SCO-active FeIII cages and feature an atypical {FeN6}-type coordination sphere, uncommon for FeIII SCO compounds. Our study reveals that these MOCs are sensitive to acid/base variations, enabling reversible magnetic switching in solution. The presence of multiple active proton sites within these SCO-MOCs facilitates multisite, multilevel proton-induced spin-state modulation. This behavior is observed at room temperature through 1H NMR spectroscopy, capturing the subtle proton-induced spin-state transitions triggered by pH changes. Further insights from extended X-ray absorption fine structure (EXAFS) and theoretical analyses indicate that these magnetic alterations primarily result from the protonation and deprotonation processes at the NH active sites on the ligands. These processes induce changes in the secondary coordination sphere, thereby modulating the magnetic properties of the cages. The capability of these FeIII MOCs to integrate magnetic responses with environmental stimuli underscores their potential as finely tunable magnetic sensors and highlights their versatility as molecular switches. This work paves the way for the development of SCO-active materials with tailored properties for applications in sensing and molecular switching.
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