Photonic crystals-based light-trapping approach in solar cells

Nano-Optics ◽  
2020 ◽  
pp. 337-345
Author(s):  
Sithara P. Sreenilayam ◽  
Éanna McCarthy ◽  
Karsten Fleischer ◽  
Stephen Goodnick ◽  
Stuart Bowden ◽  
...  
2011 ◽  
Vol 110-116 ◽  
pp. 497-502
Author(s):  
Wei Ping Chu ◽  
Fuh Shyang Juang ◽  
Jian Shian Lin ◽  
Tien Chai Lin ◽  
Chen Wei Kuo

We utilize photonic crystals to enhanced lighttrapping in a-Si:H thin film solar cells. The photonic crystals effectively increase Haze ratio of glass and decrease reflectance of a-Si:H solar cells. Therefore, increase the photon path length to obtain maximum absorption of the absorber layer. The photonic crystals can effective in harvesting weakly absorbing photons with energies just above the band edge. We were spin coated UV glue on the glass, and then nanoimprint of photonic crystals pattern. Finally, used UV lamp was curing of UV glue on the glass. When the 45∘composite photonic crystals structures, the haze was increase to 87.9 %, resulting the short circuit current density and efficiency increasing to 13.96 mA/cm2 and 7.39 %, respectively. Because 45∘composite photonic crystals easy to focus on the point of light lead to the effect of scattering can’t achieve. So, we designs 90∘V-shaped photonic crystals structures to increase scattering. When the 90∘V-shaped photonic crystals structures, the Haze was increase to 93.9 %. Therefore, the short circuit current density and Efficiency increasing to 15.62 mA/cm2 and 8.09 %, respectively. We observed ~35 % enhancement of the short-circuit current density and ~31 % enhancement of the conversion efficiency.


Author(s):  
D. Duche ◽  
JJ. Simon ◽  
L. Escoubas ◽  
Ph. Torchio ◽  
J. Le Rouzo ◽  
...  

2014 ◽  
Vol 22 (S5) ◽  
pp. A1229 ◽  
Author(s):  
Léo Peres ◽  
Valérie Vigneras ◽  
Sophie Fasquel

2008 ◽  
Author(s):  
J. Üpping ◽  
A. Bielawny ◽  
P. T. Miclea ◽  
R. B. Wehrspohn

2017 ◽  
Vol 25 (12) ◽  
pp. A502 ◽  
Author(s):  
S. Dottermusch ◽  
A. Quintilla ◽  
G. Gomard ◽  
A. Roslizar ◽  
V. R. Voggu ◽  
...  

2007 ◽  
Vol 989 ◽  
Author(s):  
Rana Biswas ◽  
Dayu Zhou

AbstractA major route to improving solar cell efficiencies is by improving light trapping in solar absorber layers. Traditional light trapping schemes involve a textured metallic back reflector that also introduces losses at optical wavelengths. Here we develop alternative light trapping schemes with a-Si:H thin film solar cells, that do not use metallic components, thereby avoiding losses. We utilize low loss one-dimensional photonic crystals as distributed Bragg reflectors (DBR) at the backside of the solar cells. The DBR is constructed with alternating layers of crystalline Si and SiO2. Between the DBR and the absorber layer, there is a layer of 2D photonic crystal composed of amorphous silicon and SiO2. The 2D photonic crystal layer will diffract light at oblique angles, so that total internal reflection is formed inside the absorber layer. We have achieved enhanced light-trapping in both crystalline and amorphous silicon solar cells at near-infrared wavelengths where absorption lengths are very large. Very high absorption is achieved throughout optical wavelengths. The optical modeling is performed with a rigorous 3 dimensional scattering matrix approach where Maxwell¡¯s equations are solved in Fourier space.


Plasmonics ◽  
2018 ◽  
Vol 14 (2) ◽  
pp. 335-346 ◽  
Author(s):  
Ke Chen ◽  
Yuanyuan Wang ◽  
Haisuo Wang ◽  
Rui Wu ◽  
Xiaopeng Yu ◽  
...  

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