Kim Hyeohn, Kim Gwangmook, Kim Taehoon, Lee Sangwoo, Kang Donyoung, Hwang Min-Soo, Chae Youngcheol, Kang Shinill, Lee Hyungsuk, Park Hong-Gyu, Shim Wooyoung
Department of Materials Science and Engineering, Yonsei University, 50 Yonsei-ro, Seodaemun-Gu, Seoul, 03722, Republic of Korea.
School of Electrical and Electronic Engineering, Yonsei University, 50 Yonsei-ro, Seodaemun-Gu, Seoul, 03722, Republic of Korea.
Small. 2018 Feb;14(8). doi: 10.1002/smll.201703432. Epub 2018 Jan 26.
The fundamental challenge in designing transparent pressure sensors is the ideal combination of high optical transparency and high pressure sensitivity. Satisfying these competing demands is commonly achieved by a compromise between the transparency and usage of a patterned dielectric surface, which increases pressure sensitivity, but decreases transparency. Herein, a design strategy for fabricating high-transparency and high-sensitivity capacitive pressure sensors is proposed, which relies on the multiple states of nanoparticle dispersity resulting in enhanced surface roughness and light transmittance. We utilize two nanoparticle dispersion states on a surface: (i) homogeneous dispersion, where each nanoparticle (≈500 nm) with a size comparable to the visible light wavelength has low light scattering; and (ii) heterogeneous dispersion, where aggregated nanoparticles form a micrometer-sized feature, increasing pressure sensitivity. This approach is experimentally verified using a nanoparticle-dispersed polymer composite, which has high pressure sensitivity (1.0 kPa ), and demonstrates excellent transparency (>95%). We demonstrate that the integration of nanoparticle-dispersed capacitor elements into an array readily yields a real-time pressure monitoring application and a fully functional touch device capable of acting as a pressure sensor-based input device, thereby opening up new avenues to establish processing techniques that are effective on the nanoscale yet applicable to macroscopic processing.
设计透明压力传感器的根本挑战在于如何实现高光学透明度和高压力灵敏度的理想结合。满足这些相互矛盾的要求通常是通过在图案化介电表面的透明度和用途之间进行折中来实现的,这会提高压力灵敏度,但会降低透明度。在此,我们提出了一种制造高透明度和高灵敏度电容式压力传感器的设计策略,该策略依赖于纳米颗粒分散的多种状态,从而提高表面粗糙度和光透射率。我们在表面利用两种纳米颗粒分散状态:(i)均匀分散,其中每个尺寸与可见光波长相当的纳米颗粒(≈500 nm)具有低光散射;(ii)非均匀分散,其中聚集的纳米颗粒形成微米级特征,提高压力灵敏度。使用纳米颗粒分散的聚合物复合材料对该方法进行了实验验证,该复合材料具有高压力灵敏度(1.0 kPa),并表现出优异的透明度(>95%)。我们证明,将纳米颗粒分散的电容器元件集成到阵列中很容易实现实时压力监测应用和能够用作基于压力传感器的输入设备的全功能触摸设备,从而开辟了新途径,以建立在纳米尺度上有效但适用于宏观加工的加工技术。