可穿戴电子应用的柔性和可拉伸基板上的自供电喷墨印刷电致变色薄膜

E. Azhar, T. Alford, Hongbin Yu
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引用次数: 2

摘要

电致变色薄膜已被用作显示应用的非发射材料。这种材料已经被集成到乘用车的防眩后视镜中,以及用于建筑节能的智能窗户中。然而,大多数电致变色材料沉积在刚性衬底上,这阻碍了其在需要低温沉积技术的柔性和可拉伸电子应用中的使用。此外,电化学需要外部电源来驱动潜在的还原/氧化反应。在这项工作中,电致变色材料喷墨印刷在柔性和可拉伸的基材上进行了探索。这些设备是由有机太阳能电池“自供电”的,有机太阳能电池也制造在柔性和可拉伸的衬底上,如PDMS和PET。对合成的WO_3纳米粒子、W-TiO_2纳米粒子和TiO_2纳米粒子复合制备的油墨进行了评价。本研究中使用的纳米颗粒的微观结构通过扫描电子显微镜检查纳米颗粒形态,x射线衍射检查化学和结构表征,动态光散射检查颗粒大小。然后将电致变色层喷墨印刷在柔性和可拉伸的PDMS衬底上,使用合成的银纳米线作为导电且高度透明的电极。在7秒显色时间、8秒漂白时间和0.36-0.75光调制波长为525 nm的条件下,对不同应力条件下的可拉伸电致变色印刷器件和电致变色性能进行了评估。循环伏安法和恒流充放电测量显示出高面电容,在循环操作时稳定性有限。然后将电致变色器件集成到支持物联网(IoT)的开关配置中,由pcdbt:PC_70BM有机光伏电池自供电。采用不同的空穴传输层和衬底对体异质结器件进行了评价,并表现出最强的PCE?3%, V_oc=0.9V, J_sc ?10 - mA /厘米^ 2。所描述的自供电,支持物联网的喷墨印刷电致变色器件,在柔性基板上制造,展示了可穿戴电子产品的潜在应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Self-Powered, Inkjet Printed Electrochromic Films on Flexible and Stretchable Substrate for Wearable Electronics Applications
Electrochromic films have been used as a non-emissive material for display applications. Such materials have already been integrated in antiglare rearview mirrors for passenger vehicles as well as smart windows intended for energy savings for buildings. However, most electrochromic materials are deposited on rigid substrates, which prevent its use in flexible and stretchable electronic applications, where low temperature deposition techniques are desired. Additionally, electrochormics require an external power source to drive the underlying reduction/oxidation reaction. In this work, electrochromic materials inkjet-printed onto flexible and stretchable substrates have been explored. These devices are "self-powered" by organic solar cells also fabricated on flexible and stretchable substrate such as PDMS and PET. A set of inks based on a combination of synthesized and commercially obtained WO_3 nanoparticles, W-TiO_2 and TiO_2 nanoparticles were evaluated. The microstructure of the nanoparticles used in this study were examined under scanning electron microscopy for examining nanoparticle morphology, x-ray diffraction for chemical and structural characterization, and dynamic light scattering for particle size determination. Electrochromic layers were then ink-jet printed on flexible and stretchable PDMS substrates, using synthesized Ag nanowires as conductive, yet highly transparent electrodes. The stretchable printed electrochromic devices under various stress conditions and electrochromic performances were evaluated and demonstrated clear switching behavior under external bias, with 7 second coloration time, 8 second bleaching time, and 0.36-0.75 optical modulation at ?=525 nm. Cyclic voltammetry and galvanostatic charge/discharge measurements demonstrated high areal capacitance, with limited stability upon cycled operation. The electrochromic devices were then integrated in an Internet of Things (IoT)-enabled switching configuration, self-powered by PCDTBT:PC_70BM organic photovoltaics. The bulk heterojunction devices were evaluated with varying hole-transport layers and substrates, and exhibited the strongest performance of PCE? 3%, V_oc=0.9V and J_sc ? 10-15 mA/cm^2. The described self-powered, IoT-enabled, ink-jet printed electrochromic devices, fabricated on flexible substrates, are demonstrative of potential applications for wearable electronics.
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