Problem statement: High cost of the solar cells is one of the important limitations in extensively using of the photovoltaic panels. Thin monocrystalline silicon solar cell could be reduce the cost but lost the absorption efficiency. Surface texturing help to enhance absorption. Using of advance texturing by diffraction grating was suggested for high absorption. It is necessary to investigate the scattering effect of diffraction grating with other solar cell parameter for optimization. In first step we concentrate on p-n junction position impact by modeling. Approach: The effect of position of p-n junction on the output current for both micro rectangular texturing and planer surface in solar cell has been investigated by ray tracing. Modeling of nine pairs solar cells with the same texture and planer surfaces but with different p-n junction position are done by using Atlas software. The output short current is a criterion for determining of efficiency performance. By comparing of the short current for each pair we was find the impacts of texturing and p-n junction depth on the monocrystalline thin film. Results: Light scattering due to diffraction grating inside the silicon with rectangular depth of 5 µm and a range of 5-40 µm p-n junction depths are investigated. The difference of short current in textured to bare silicon showed the enhancement from 4-8 µA when the p-n junction depths vary from 5-45 µm. Conclusions: Comparison of short current output confirms the correlation between p-n junction depth and texturing. Advanced texturing improve the solar cell efficiency but the effectiveness change with the p-n junction depth and need a simultaneous optimization for getting the high efficiency solar cell.
[1]
K. Sopian,et al.
Evaluation of 1D and 2D texturing of monocrystalline solar cell
,
2008
.
[2]
S. Michael,et al.
Application of the SILVACO/ATLAS software package in modeling and optimization of state-of-the-art photovoltaic devices
,
2002,
The 2002 45th Midwest Symposium on Circuits and Systems, 2002. MWSCAS-2002..
[3]
S. H. Zaidi,et al.
Deeply etched grating structures for enhanced absorption in thin c-Si solar cells
,
2002,
Conference Record of the Twenty-Ninth IEEE Photovoltaic Specialists Conference, 2002..
[4]
Martin A. Green,et al.
Progress and outlook for high-efficiency crystalline silicon solar cells
,
2001
.
[5]
M. Brereton.
Classical Electrodynamics (2nd edn)
,
1976
.
[6]
D. A. Dunnett.
Classical Electrodynamics
,
2020,
Nature.