耗散系统
纳米团簇
材料科学
配体(生物化学)
亚稳态
离子
纳米技术
桥联配体
超分子化学
配位复合体
配位聚合物
拓扑(电路)
化学物理
聚合物
化学
结晶学
物理
金属
热力学
晶体结构
有机化学
冶金
生物化学
受体
数学
组合数学
复合材料
作者
Peng Zhao,Linjie Xu,Bohan Li,Yuanfeng Zhao,Yingshuai Zhao,Yan Lü,Minghui Cao,Guoqi Li,Tsu‐Chien Weng,Heng Wang,Yijun Zheng
标识
DOI:10.1002/adma.202311818
摘要
Abstract Accurate structure control in dissipative assemblies (DSAs) is vital for precise biological functions. However, accuracy and functionality of artificial DSAs are far from this objective. Herein, a novel approach is introduced by harnessing complex chemical reaction networks rooted in coordination chemistry to create atomically‐precise copper nanoclusters (CuNCs), specifically Cu 11 (µ 9 ‐Cl)(µ 3 ‐Cl) 3 L 6 Cl (L = 4‐methyl‐piperazine‐1‐carbodithioate). Cu(I)–ligand ratio change and dynamic Cu(I)–Cu(I) metallophilic/coordination interactions enable the reorganization of CuNCs into metastable CuL 2 , finally converting into equilibrium [CuL·Y]Cl (Y = MeCN/H 2 O) via Cu(I) oxidation/reorganization and ligand exchange process. Upon adding ascorbic acid (AA), the system goes further dissipative cycles. It is observed that the encapsulated/bridging halide ions exert subtle influence on the optical properties of CuNCs and topological changes of polymeric networks when integrating CuNCs as crosslink sites. CuNCs duration/switch period could be controlled by varying the ions, AA concentration, O 2 pressure and pH. Cu(I)‐Cu(I) metallophilic and coordination interactions provide a versatile toolbox for designing delicate life‐like materials, paving the way for DSAs with precise structures and functionalities. Furthermore, CuNCs can be employed as modular units within polymers for materials mechanics or functionalization studies.
科研通智能强力驱动
Strongly Powered by AbleSci AI