Fei Liu, Yuhan Sun, Ze Wang, Bo Li, Shichao Niu, Junqiu Zhang, Zhiwu Han, Luquan Ren
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引用次数: 0
摘要
抗反射(AR)表面对于柔性显示器、光伏产业、医疗内窥镜、智能窗户等领域至关重要。虽然自然界中具有组织良好的微/纳米结构的生物为生物启发 AR 材料的快速发展提供了一些耦合设计原则,但这些纳米结构的机械脆弱性、柔韧性差和不可调性已被指出是其缺点。本文制备了一种生物启发可逆 AR 薄膜,在宽带(400-900 纳米)范围内具有 4% 的反射率、90% 的透射率和 9% 的雾度。通过控制界面结构形态的可逆变化,在整个可见光波段实现了 AR 性能增强和减弱的灵活切换。只需改变模板,就能获得多种图案化薄膜样品,可用于防伪等智能识别领域。循环测试和光电测试表明,仿生可逆减反射结构具有一定的稳定性,能有效降低机械变形造成的光伏电池转换效率损失。它在防伪、智能窗口、柔性显示、光电元件等领域具有广阔的应用前景。
Reversible Antireflection Materials Inspired by Cicada Wings for Anticounterfeit and Photovoltaic Cells.
Antireflection (AR) surfaces are essential for the fields of flexible displays, photovoltaic industry, medical endoscope, intelligent windows, etc. Although natural creatures with well-organized micro/nanostructures have provided some coupling design principles for the rapid development of bioinspired AR materials, the mechanical vulnerability, poor flexibility, and nonadjustability have been pointed out as the drawback of these nanostructures. Here, a bioinspired reversible AR film with 4% reflectivity, 90% transmittance, and 9% haze in broadband (400-900 nm) was prepared. The flexible switching of AR performance enhancement and weakening throughout the visible wavelength band has been achieved by controlling the reversible change in the morphology of the interface structure. A variety of patterned film samples can be obtained by simply changing the template, which can be used in intelligent identification fields such as anticounterfeiting. The cycle test and photoelectric test show that the bionic reversible antireflection structure has certain stability and can effectively reduce the loss of photovoltaic cell conversion efficiency caused by mechanical deformation. It has broad application prospects in the fields of anticounterfeiting, intelligent window, flexible display, photoelectric element, and so on.
期刊介绍:
ACS Applied Materials & Interfaces is a leading interdisciplinary journal that brings together chemists, engineers, physicists, and biologists to explore the development and utilization of newly-discovered materials and interfacial processes for specific applications. Our journal has experienced remarkable growth since its establishment in 2009, both in terms of the number of articles published and the impact of the research showcased. We are proud to foster a truly global community, with the majority of published articles originating from outside the United States, reflecting the rapid growth of applied research worldwide.