Fan Xiangqian, Ding Yan, Liu Yang, Liang Jiajie, Chen Yongsheng
School of Materials Science and Engineering, National Institute for Advanced Materials , Nankai University , Tianjin 300350 , People's Republic of China.
Key Laboratory of Functional Polymer Materials of Ministry of Education, College of Chemistry , Nankai University , Tianjin 300350 , People's Republic of China.
ACS Nano. 2019 Jul 23;13(7):8124-8134. doi: 10.1021/acsnano.9b03161. Epub 2019 Jun 20.
Skin-mountable and transparent devices are highly desired for next-generation electronic applications but are susceptible to unexpected ruptures or undesired scratches, which can drastically reduce the device lifetime. Developing wearable and transparent materials with healable function that can recover their original functionality after mechanical damage under mild and noninvasive repairing operation is thus imperative. Herein, we demonstrate that the incorporation of ultrasmall quantities of plasmonic silver nanoparticle (AgNP)@MXene nanosheet hybrids to serve as photothermal fillers in waterborne elastic polyurethane enables high transparency as well as effective light-triggered healing capabilities for wearable composite coatings. The AgNP@MXene hybrid functions as a highly effective photon captor, energy transformer, and molecular heater due to the amalgamation of (1) ultrahigh photothermal conversion efficiency, high thermal conductivity, and structural properties of MXene, (2) the outstanding plasmonic effect of AgNPs, and (3) the synergistic effects from their hybrids. The resulting wearable composite coating with ultralow loading of plasmonic AgNP@MXene hybrids (0.08 wt % or 0.024 vol %) can produce a significant temperature increase of ∼111 ± 2.6 °C after the application of 600 mW cm light irradiation for 5 min, while maintaining a high optical transmittance of ∼83% at a thickness of ∼60 μm. This local temperature increase can rapidly heal the mechanical damage to the composite coating, with a healing efficiency above 97%.
可贴合皮肤且透明的器件在下一代电子应用中备受青睐,但容易出现意外破裂或 undesired 划痕,这会大幅缩短器件寿命。因此,开发具有可自愈功能的可穿戴透明材料至关重要,这种材料在温和且无创的修复操作下,机械损伤后能恢复其原始功能。在此,我们证明,在水性弹性聚氨酯中加入超少量等离子体银纳米颗粒(AgNP)@MXene 纳米片杂化物作为光热填料,可实现高透明度以及可穿戴复合涂层有效的光触发自愈能力。由于(1)MXene 的超高光热转换效率、高导热性和结构特性,(2)AgNPs 出色的等离子体效应,以及(3)它们杂化物的协同效应的融合,AgNP@MXene 杂化物起到了高效光子捕获器、能量转换器和分子加热器的作用。所得等离子体 AgNP@MXene 杂化物超低负载量(0.08 wt%或 0.024 vol%)的可穿戴复合涂层,在 600 mW/cm²光照射 5 分钟后,可产生约 111±2.6°C 的显著温度升高,同时在约 60μm 厚度下保持约 83%的高透光率。这种局部温度升高可迅速修复复合涂层的机械损伤,愈合效率高于 97%。