A leaf-inspired photon management scheme using optically tuned bilayer nanoparticles for ultra-thin and highly efficient photovoltaic devices

被引:93
作者
Das, Sonali [1 ]
Hossain, Mohammad Jobayer [2 ]
Leung, Siu-Fung [3 ,4 ]
Lenox, Anya [1 ,5 ]
Jung, Yeonwoong [1 ,6 ,7 ]
Davis, Kristopher [2 ,6 ]
He, Jr-Hau [3 ,4 ]
Roy, Tania [6 ,7 ]
机构
[1] Univ Cent Florida, NanoSci Technol Ctr, Orlando, FL 32826 USA
[2] Univ Cent Florida, CREOL, Coll Opt & Photon, Orlando, FL 32816 USA
[3] KAUST, Comp Elect & Math Sci & Engn, Thuwal 239556900, Saudi Arabia
[4] KAUST, KAUST Solar Ctr, Thuwal 239556900, Saudi Arabia
[5] Univ Cent Florida, Dept Chem, Orlando, FL 32816 USA
[6] Univ Cent Florida, Dept Mat Sci & Engn, Orlando, FL 32816 USA
[7] Univ Cent Florida, Dept Elect & Comp Engn, Orlando, FL 32816 USA
关键词
Leaf inspired; Hierarchical; Graphene Si Schottky junction solar cell; All dielectric; Whispering gallery resonator; BROAD-BAND; SOLAR-CELLS; ANTIREFLECTION; CONVERSION; OXIDE;
D O I
10.1016/j.nanoen.2018.12.072
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
We present a leaf-inspired biomimetic omnidirectional photon management scheme for ultrathin flexible graphene silicon Schottky junction solar cell. An all-dielectric approach comprising lossless spheroidal silica and titania nanoparticle bilayers is used for mimicking the two essential light trapping mechanisms of a leaf - focusing and waveguiding, and scattering. The ratio of the nanoparticle diameters of the two optically tuned layers plays a crucial role in confining the incident light through whispering gallery modes and subsequent forward scattering into the substrate via strong leaky channels. The scheme does not employ any nanostructuring of the silicon substrate, thereby preventing the optical gain from being offset by recombination losses, completely decoupling the optical and electrical performances of the device. The light-trapping scheme shows ultralow broadband reflection of only 10.3% and causes a 30% increase in efficiency compared to a bare graphene/silicon solar cell. An efficiency of similar to 9% is obtained for solar cell with 20 mu m thick n-silicon absorber and doped bilayer graphene, resulting in highest (1.89) watt/gram utilization of silicon among all graphene/silicon solar cells. The light-trapping nanoparticle-embellished solar cell retains its characteristics for > 10(3) bending cycles for a bend radius as low as 3 mm, demonstrating its flexibility, durability and reliability.
引用
收藏
页码:47 / 56
页数:10
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