Zhang Yufeng, Zhang Shuai, Liang Chen, Shi Junqing, Ji Lei
Frontiers Science Center for Flexible Electronics (FSCFE), Shaanxi Institute of Flexible Electronics (SIFE) & Shaanxi Institute of Biomedical Materials and Engineering (SIBME), Northwestern Polytechnical University (NPU), 127 West Youyi Road, Xi'an, 710072, China.
School of Chemistry and Chemical Engineering, Northwestern Polytechnical University (NPU), 127 West Youyi Road, Xi'an, 710072, China.
Adv Mater. 2023 Aug;35(32):e2302732. doi: 10.1002/adma.202302732. Epub 2023 Jun 28.
Stimuli-responsive materials, especially multi-stimuli-responsive materials, can sense external stimuli such as light, heat, and force, have shown great potential in drug delivery, data storage, encryption, energy-harvesting, and artificial intelligence. Conventional multi-stimuli-responsive materials are sensitive to each independent stimulus, causing losses in the diversity and accuracy of the identification for practical application. Herein, a unique phenomenon of sequential-stimuli induced stepwise-response generated from elaborately designed single-component organic materials is reported, which shows large bathochromic shifts up to 5800 cm under sequential stimuli of force and light. In contrast to multi-stimuli-responsive materials, the response of these materials strictly relies on the sequence of stimuli, allowing logicality, rigidity, and accuracy to be integrated into one single-component material. The molecular keypad lock is built based on these materials, pointing promising to a future for this logical response in significant practical applications. This breakthrough gives a new drive to classical stimuli-responsiveness and provides a fundamental design strategy for new generations of high-performance stimuli-responsive materials.
刺激响应材料,尤其是多刺激响应材料,能够感知光、热和力等外部刺激,在药物递送、数据存储、加密、能量收集和人工智能等领域展现出巨大潜力。传统的多刺激响应材料对每个独立刺激都敏感,这在实际应用中导致识别的多样性和准确性受损。在此,报道了一种由精心设计的单组分有机材料产生的顺序刺激诱导逐步响应的独特现象,该现象在力和光的顺序刺激下显示出高达5800 cm的大的红移。与多刺激响应材料不同,这些材料的响应严格依赖于刺激的顺序,从而使逻辑性、刚性和准确性整合到一种单组分材料中。基于这些材料构建了分子按键锁,预示着这种逻辑响应在重大实际应用中的光明前景。这一突破为经典的刺激响应性赋予了新动力,并为新一代高性能刺激响应材料提供了基本设计策略。