Department of Electronic and Computer Engineering, The Hong Kong University of Science and Technology , Clear Water Bay, Kowloon, Hong Kong, China.
ACS Nano. 2014 Jun 24;8(6):6484-90. doi: 10.1021/nn5023878. Epub 2014 Jun 5.
Thin film photovoltaic (PV) technologies are highly attractive for low-cost solar energy conversion and possess a wide range of potential applications from building-integrated PV generation to portable power sources. Inverted nanocones (i-cones) have been demonstrated as a promising structure for practical thin film PV devices/modules, owning to their antireflection effect, self-cleaning function, superior mechanical robustness, and so forth. In this work, we have demonstrated a low-cost and scalable approach to achieve perfectly ordered i-cone arrays. Thereafter, thin film amorphous silicon (a-Si:H) solar cells have been fabricated based on various i-cone substrates with different aspect ratios and pitches to investigate the impact of geometry of i-cone nanostructures on the performance of the as-obtained PV devices. Intriguingly, the optical property investigations and device performance characterizations demonstrated that the 0.5-aspect-ratio i-cone-based device performed the best on both light absorption capability and energy conversion efficiency, which is 34% higher than that of the flat counterpart. Moreover, the i-cone-based device enhanced the light absorption and device performance over the flat reference device omnidirectionally. These results demonstrate a viable and convenient route toward scalable fabrication of nanostructures for high-performance thin film PV devices based on a broad range of materials.
薄膜光伏 (PV) 技术在低成本太阳能转换方面极具吸引力,并且在从建筑集成光伏发电到便携式电源等各个领域都具有广泛的潜在应用。倒置纳米锥 (i-锥) 因其具有抗反射效应、自清洁功能、优越的机械强度等优点,已被证明是一种很有前途的实用薄膜 PV 器件/模块结构。在这项工作中,我们展示了一种低成本且可扩展的方法来实现完美有序的 i-锥阵列。此后,基于不同纵横比和间距的各种 i-锥衬底,制备了薄膜非晶硅(a-Si:H)太阳能电池,以研究 i-锥纳米结构的几何形状对所获得的 PV 器件性能的影响。有趣的是,光学性质研究和器件性能表征表明,在光吸收能力和能量转换效率方面,纵横比为 0.5 的 i-锥基器件的性能最好,比平面对照物高出 34%。此外,i-锥基器件在各个方向上都增强了光吸收和器件性能,优于平面参考器件。这些结果表明,基于广泛的材料,为高性能薄膜 PV 器件制造可扩展的纳米结构提供了一种可行且方便的途径。