Sandzhieva Maria, Khmelevskaia Darya, Tatarinov Dmitry, Logunov Lev, Samusev Kirill, Kuchmizhak Alexander, Makarov Sergey V
School of Physics and Engineering, ITMO University, St. Petersburg 197101, Russia.
Ioffe Institute, Russian Academy of Sciences, St. Petersburg 194021, Russia.
Nanomaterials (Basel). 2022 Nov 6;12(21):3916. doi: 10.3390/nano12213916.
Silicon nanophotonics has become a versatile platform for optics and optoelectronics. For example, strong light localization at the nanoscale and lack of parasitic losses in infrared and visible spectral ranges make resonant silicon nanoparticles a prospect for improvement in such rapidly developing fields as photovoltaics. Here, we employed optically resonant silicon nanoparticles produced by laser ablation for boosting the power conversion efficiency of organic solar cells. Namely, we created colloidal solutions of spherical nanoparticles with a range of diameters (80-240 nm) in different solvents. We tested how the nanoparticles' position in the device, their concentration, silicon doping, and method of deposition affected the final device efficiency. The best conditions optimization resulted in an efficiency improvement from 6% up to 7.5%, which correlated with numerical simulations of nanoparticles' optical properties. The developed low-cost approach paves the way toward highly efficient and stable solution-processable solar cells.
硅纳米光子学已成为光学和光电子学领域一个多功能的平台。例如,在纳米尺度上强烈的光局域化以及在红外和可见光谱范围内不存在寄生损耗,使得共振硅纳米颗粒有望在诸如光伏等快速发展的领域中得到改进。在此,我们采用激光烧蚀法制备的光学共振硅纳米颗粒来提高有机太阳能电池的功率转换效率。具体而言,我们在不同溶剂中制备了一系列直径(80 - 240 nm)的球形纳米颗粒的胶体溶液。我们测试了纳米颗粒在器件中的位置、它们的浓度、硅掺杂以及沉积方法如何影响最终器件的效率。最佳条件优化使效率从6%提高到了7.5%,这与纳米颗粒光学性质的数值模拟结果相关。所开发的低成本方法为高效且稳定的可溶液加工太阳能电池铺平了道路。