Jiangsu Key Laboratory for Carbon-Based Functional Materials & Devices, Institute of Functional Nano & Soft Materials (FUNSOM), Soochow University, Jiangsu 215123, PR China.
Department of Materials Science & Engineering, University of Washington, Seattle, Washington 98195-2120, United States.
ACS Nano. 2020 May 26;14(5):5998-6006. doi: 10.1021/acsnano.0c01517. Epub 2020 May 12.
The visual aesthetic that involves color, brightness, and glossiness is of great importance for building integrated photovoltaics. Semitransparent organic solar cells (ST-OSCs) are thus considered as the most promising candidate due to their superiority in transparency and efficiency. However, the realization of high color purity with narrow bandpass transmitted light usually causes the severely suppressed transparency in ST-OSCs. Herein, we present a spectrally selective electrode (SSE) by imitating the integrating strategy of beetle cuticle for achieving narrow bandpass ST-OSCs with high efficiency and long-term stability. The proposed SSE allows for efficient light-selective passage, leading to tunable narrow bandpass transmitted light from violet to red. An optimized power conversion efficiency of 15.07% is achieved for colorful ST-OSCs, which exhibit color purity close to 100% and a peak transmittance approaching 30%. Long-term stability is also improved for ST-OSCs made with this SSE due to the light-rejecting and the moisture-blocking abilities. The realization of bright and colorful ST-OSCs also indicates the application potential of SSEs in light-emitting diodes, lasers, and photodetectors.
涉及颜色、亮度和光泽度的视觉美学对于构建集成光伏器件至关重要。半透明有机太阳能电池(ST-OSC)由于其在透明度和效率方面的优势,因此被认为是最有前途的候选者。然而,实现具有窄带通透射光的高颜色纯度通常会导致 ST-OSC 的透明度严重降低。在此,我们通过模仿甲虫外骨骼的积分策略来设计光谱选择性电极(SSE),以实现高效率和长期稳定性的窄带通 ST-OSC。所提出的 SSE 允许高效的光选择通过,从而实现从紫色到红色的可调谐窄带通透射光。对于彩色 ST-OSC,实现了优化的功率转换效率为 15.07%,其颜色纯度接近 100%,峰值透过率接近 30%。由于 SSE 的遮光和防潮能力,使用这种 SSE 的 ST-OSC 的长期稳定性也得到了提高。明亮多彩的 ST-OSC 的实现也表明 SSE 在发光二极管、激光器和光电探测器中的应用潜力。