Xu Dejing, Wang Maolin, Huang Ruozhou, Stoddart J Fraser, Wang Yuping
Stoddart Institute of Molecular Science, Department of Chemistry, Zhejiang University, Hangzhou 310058, PR China.
ZJU-Hangzhou Global Scientific and Technological Innovation Center, Hangzhou 311215, P. R. China.
J Am Chem Soc. 2025 Feb 5;147(5):4450-4458. doi: 10.1021/jacs.4c15655. Epub 2025 Jan 23.
Mechanoluminescent units, when integrated into polymer matrices, undergo structural transformations in response to mechanical force, resulting in changes in fluorescence. This phenomenon holds considerable promise for the development of stress-sensing materials. Despite the high demand for robust, tunable mechanoluminescent mechanophores for force assessment and smart force-responsive materials, strategies for their design and synthesis remain underdeveloped. In an attempt to address this challenge, we have introduced a novel dual-pathway responsive mechanophore, bis(2-(2-(-butyldimethylsilanyloxy)benzylidene)amino)aryl disulfides (), which, when incorporated into polymer chains, exhibits fluorescence upon the combined application of force and chemical stimulus, irrespective of their sequence. This property is facilitated by the disulfide bond's sensitivity to mechanical force and the fluoride anion-induced desilylation and deprotonation. Notably, the force-responsive threshold of the mechanophore can be finely tuned by TBAF treatment, as supported by both experimental and computational studies, providing a simple, yet effective means, to regulate polymer force responsiveness on demand. We believe that the strategy developed in this investigation will shed light on the design of mechanophores for the fabrication of intelligent luminescent polymer materials and advance the development of smart force-reporting systems.
当机械发光单元集成到聚合物基体中时,会响应机械力发生结构转变,从而导致荧光变化。这一现象在应力传感材料的开发方面具有巨大潜力。尽管对用于力评估的坚固、可调节的机械发光发色团以及智能力响应材料有很高的需求,但其设计和合成策略仍未得到充分发展。为了应对这一挑战,我们引入了一种新型的双途径响应发色团,双(2-(2-(-丁基二甲基硅烷氧基)亚苄基)氨基)芳基二硫化物(),当它被并入聚合物链中时,在力和化学刺激联合作用下会发出荧光,而与它们的顺序无关。二硫键对机械力的敏感性以及氟离子诱导的去硅烷化和去质子化促进了这一特性。值得注意的是,通过实验和计算研究均表明,经四丁基氟化铵(TBAF)处理可精细调节该发色团的力响应阈值,从而提供一种简单而有效的方法,按需调节聚合物的力响应性。我们相信,本研究中开发的策略将为用于制造智能发光聚合物材料的发色团设计提供启示,并推动智能力报告系统的发展。