材料科学
聚合物
超分子化学
变形(气象学)
极限抗拉强度
纳米技术
混合材料
复合材料
压力(语言学)
灵敏度(控制系统)
配位聚合物
基质(化学分析)
超分子聚合物
聚合物网络
铜
纳米颗粒
拉伸试验
拉伸应变
作者
Emma Contini,Laura Contini,Lucrezia Gatti,Francesco Mongioì,Daniele Fazzi,Tommaso Maria Brugo,Damiano Genovese,Lucia Maini,Chiara Gualandi
标识
DOI:10.1016/j.mattod.2025.11.034
摘要
• Hybrid coordination polymers (HCPs) are used as additives in polymers. • Mechanoluminochromic materials with high sensitivity and reproducibility are obtained. • The HCP allows to sense both in-plane and out-of-plane mechanical stresses. • The HCP mechanoluminochromism persists across various polymer matrices. Mechanochromic materials are studied as optical probes for mechanical stress in self-diagnostic devices. They rely on mechanoresponsive components undergoing structural changes (e.g. bond cleavage, conformational change, supramolecular rearrangement) upon application of a mechanical force. Depending on the active component, the state-of-the-art approaches face significant limitations: scarce optical changes, difficulty in detecting low stresses and deformation, response limited to specific deformation modes, and some lack scalability. This study proposes the use of mechanoluminochromic copper (I) iodide-based hybrid coordination polymers as a scalable and universal solution to achieve mechanoluminochromism across various polymer types and sensitivity to all deformation modes. [(CuI)3-Br-py] n is used as additive for developing highly sensitive mechanoluminochromic polymeric materials responding to both in-plane and out-of-plane mechanical stresses, including tensile, compression, impact, and scratching. The strong and persistent mechanoluminochromic response is found to linearly correlate to the strain (under tensile deformation) and to the force (under impact), independent from the additive concentration, and tunable by the polymer matrix features.
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