Xu Xin, Yan Bing
Shanghai Key Lab of Chemical Assessment and Sustainability, School of Chemical Science and Engineering, Tongji University, Siping Road 1239, Shanghai 200092, China.
Mater Horiz. 2023 Jun 6;10(6):2062-2074. doi: 10.1039/d3mh00096f.
It is promising to develop luminescent force-sensitive bionic skin sensor (FBSS) with multiple mechanochromism (MC) responses for the sensing and collection of human biophysical signals. Herein, four bilayer hydrogen-bonded organic framework (HOF)-based polydimethylsiloxane (PDMS) elastic films (1-4) with full-color MC responses are fabricated by doping various luminescent HOF materials (HOF-TJ-1, R, Y, and G) into different PDMS layers. 1-4 as luminescent FBSSs possess stretched-, bended-, and pressed-MC properties. In stretching and bending processes, the color-switching performances of 1-4 are from initial blue to red, yellow, and green, and 4 exhibits an increased blue emission. Under pressing strain of 0-40%, the blue emission of 1-4 is strengthened. In stretched-, bended-, and pressed-MC processes, 1-4 show ultralow detection limits and excellent recyclability with 6000, 20 000, and 10 000 times, respectively. The MC mechanisms in stretched, bent, and pressed processes are investigated in depth finite element simulation. Moreover, three intelligent applications, such as finger motion sensing, hand gesture recognition, and tactile-enhanced palm information collection have been well realized based on luminescent MC responses of 1. This work provides the facile synthetic method to fabricate full-color HOF-based luminescent FBSSs, greatly expands the types of luminescent MC responses, and enriches the applications of luminescent FBSS.
开发具有多种机械变色(MC)响应的发光力敏仿生皮肤传感器(FBSS)用于人类生物物理信号的传感和收集具有广阔前景。在此,通过将各种发光氢键有机框架(HOF)材料(HOF-TJ-1、红色、黄色和绿色)掺杂到不同的聚二甲基硅氧烷(PDMS)层中,制备了四种具有全色MC响应的基于双层氢键有机框架(HOF)的PDMS弹性膜(1-4)。1-4作为发光FBSS具有拉伸、弯曲和受压MC特性。在拉伸和弯曲过程中,1-4的颜色切换性能从初始蓝色变为红色、黄色和绿色,并且4呈现出增强的蓝色发射。在0-40%的压力应变下,1-4的蓝色发射增强。在拉伸、弯曲和受压MC过程中,1-4分别显示出超低检测限和优异的可回收性,循环次数分别为6000次、20000次和10000次。通过有限元模拟深入研究了拉伸、弯曲和受压过程中的MC机制。此外,基于1的发光MC响应,已经很好地实现了三种智能应用,如手指运动传感、手势识别和触觉增强的手掌信息收集。这项工作提供了一种简便的合成方法来制备基于HOF的全色发光FBSS,极大地扩展了发光MC响应的类型,并丰富了发光FBSS的应用。