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Comparison between periodic and stochastic parabolic light trapping structures for thin-film microcrystalline Silicon solar cells |
Optics Express, Vol. 20, Issue 28, pp. 29488-29499 (2012)
http://dx.doi.org/10.1364/OE.20.029488
Acrobat PDF (1004 KB)
Abstract
Light trapping is of very high importance for silicon photovoltaics (PV) and especially for thin-film silicon solar cells. In this paper we investigate and compare theoretically the light trapping properties of periodic and stochastic structures having similar geometrical features. The theoretical investigations are based on the actual surface geometry of a scattering structure, characterized by an atomic force microscope. This structure is used for light trapping in thin-film microcrystalline silicon solar cells. Very good agreement is found in a first comparison between simulation and experimental results. The geometrical parameters of the stochastic structure are varied and it is found that the light trapping mainly depends on the aspect ratio (length/height). Furthermore, the maximum possible light trapping with this kind of stochastic structure geometry is investigated. In a second step, the stochastic structure is analysed and typical geometrical features are extracted, which are then arranged in a periodic structure. Investigating the light trapping properties of the periodic structure, we find that it performs very similar to the stochastic structure, in agreement with reports in literature. From the obtained results we conclude that a potential advantage of periodic structures for PV applications will very likely not be found in the absorption enhancement in the solar cell material. However, uniformity and higher definition in production of these structures can lead to potential improvements concerning electrical characteristics and parasitic absorption, e.g. in a back reflector.
© 2012 OSA
1. Introduction
M. Berginski, J. Hüpkes, M. Schulte, G. Schöpe, H. Stiebig, B. Rech, and M. Wuttig, “The effect of front ZnO:Al surface texture and optical transparency on efficient light trapping in silicon thin-film solar cells,” J. Appl. Phys. 101(7), 074903 (2007). [CrossRef]
D. Dominé, F. J. Haug, C. Battaglia, and C. Ballif, “Modeling of light scattering from micro- and nanotextured surfaces,” J. Appl. Phys. 107(4), 044504 (2010). [CrossRef]
C. Battaglia, K. Söderström, J. Escarré, F. J. Haug, D. Dominé, P. Cuony, M. Boccard, G. Bugnon, C. Denizot, M. Despeisse, A. Feltrin, and C. Ballif, “Efficient light management scheme for thin-film silicon solar cells via transparent random nanostructures fabricated by nanoimprinting,” Appl. Phys. Lett. 96(21), 213504 (2010). [CrossRef]
P. Sheng, A. N. Bloch, and R. S. Stepleman, “Wavelength selective absorption enhancement in thin-film solar cells,” Appl. Phys. Lett. 43(6), 579–582 (1983). [CrossRef]
C. Heine and R. H. Morf, “Submicrometer gratings for solar energy applications,” Appl. Opt. 34(14), 2476–2482 (1995). [CrossRef] [PubMed]
M. Peters, M. Rüdiger, H. Hauser, M. Hermle, and B. Bläsi, “Diffractive gratings for crystalline silicon solar cells - optimum parameters and loss mechanisms,” Prog. Photovolt. Res. Appl. 20(7), 862–873 (2012). [CrossRef]
A. Mellor, I. Tobias, A. Marti, M. J. Mendes, and A. Luque, “Upper limits to absorption enhancement in thick solar cells using diffraction gratings,” Prog. Photovolt. Res. Appl. 19(6), 676–687 (2011). [CrossRef]
- 1. The investigated structures should have realistic geometries. Very good light trapping properties were shown theoretically for periodic structures [10,11], but an open question for these structures is still whether they can be produced at acceptable cost.
Z. Yu, A. Raman, and S. Fan, “Fundamental limit of light trapping in grating structures,” Opt. Express 18(S3), A366–A380 (2010). [CrossRef]
- 2. The periodic and random structures should be of geometrical similarity. What we mean by this, the problems connected with this issue, and how we define a similar geometry is discussed in detail in the next section.
2. Structure definition
C. van Trigt, “Visual system-response functions and estimating reflectance,” J. Opt. Soc. Am. A 14(4), 741–755 (1997). [CrossRef] [PubMed]
E. Yablonovitch, “Statistical Ray Optics,” J. Opt. Soc. Am. A 72(7), 899–907 (1982). [CrossRef]
Z. Yu, A. Raman, and S. Fan, “Fundamental limit of light trapping in grating structures,” Opt. Express 18(S3), A366–A380 (2010). [CrossRef]
M. Peters, B. Bläsi, S. W. Glunz, A. G. Aberle, J. Luther, and C. Battaglia, “Optical Simulation of Silicon Thin-Film Solar Cells,” En. Proc. 15, 212–219 (2012). [CrossRef]
V. E. Ferry, M. A. Verschuuren, M. C. Lare, R. E. I. Schropp, H. A. Atwater, and A. Polman, “Optimized Spatial Correlations for Broadband Light Trapping Nanopatterns in High Efficiency Ultrathin Film a-Si:H Solar Cells,” Nano Lett. 11(10), 4239–4245 (2011). [CrossRef] [PubMed]
B. Bläsi, H. Hauser, and A. J. Wolf, “Photon management structures for solar cells,” proceedings of SPIE 8438, Photonics for Solar Energy Systems IV, 84380F (2012), doi:. [CrossRef]
3. Simulation methods
3.1 Stochastic structures: scalar scattering theory
D. Dominé, F. J. Haug, C. Battaglia, and C. Ballif, “Modeling of light scattering from micro- and nanotextured surfaces,” J. Appl. Phys. 107(4), 044504 (2010). [CrossRef]
M. Peters, K. Forberich, C. Battaglia, A. G. Aberle, and B. Bläsi, “Comparison of periodic and random structures for scattering in thin-film microcrystalline silicon solar cells,” proceedings of SPIE 8438, Photonics for Solar Energy Systems IV, 84380F (2012), doi:. [CrossRef]
3.2 Periodic structures: rigorous coupled wave analysis (RCWA)
M. G. Moharam, D. A. Pommet, E. B. Grann, and T. K. Gaylord, “Stable implementation of the rigorous coupled-wave analysis for surface-relief gratings: enhanced transmittance matrix approach,” J. Opt. Soc. Am. A 12(5), 1077–1086 (1995). [CrossRef]
3.2 Calculation of solar cell characteristics
P. Lalanne and M. P. Jurek, “Computation of the near-field pattern with the coupled wave method for transverse magnetic polarization,” J. Mod. Opt. 45(7), 1357–1374 (1998). [CrossRef]
B. Bläsi, H. Hauser, and A. J. Wolf, “Photon management structures for solar cells,” proceedings of SPIE 8438, Photonics for Solar Energy Systems IV, 84380F (2012), doi:. [CrossRef]
M. G. Moharam, D. A. Pommet, E. B. Grann, and T. K. Gaylord, “Stable implementation of the rigorous coupled-wave analysis for surface-relief gratings: enhanced transmittance matrix approach,” J. Opt. Soc. Am. A 12(5), 1077–1086 (1995). [CrossRef]
International Electrotechnical Standard, (IEC 60904–1), www.iec.ch.
A. V. Shah, H. Schade, M. Vanecek, J. Meier, E. Vallat-Sauvain, N. Wyrsch, U. Krol, C. Droz, and J. Bailat, “Thin-film Silicon Solar Cell Technology,” Prog. Photovolt. Res. Appl. 12(23), 113–142 (2004). [CrossRef]
| VOC (mV) | jSC (mA cm−2) | FF(%) | η(%) |
|---|---|---|---|
| 540 | 20.4 | 74.0 | 8.2 |
4. Results
4.1 Parameter variation: stochastic structure
B. Bläsi, H. Hauser, and A. J. Wolf, “Photon management structures for solar cells,” proceedings of SPIE 8438, Photonics for Solar Energy Systems IV, 84380F (2012), doi:. [CrossRef]
C. Battaglia, J. Escarre, K. Soederstroem, M. Boccard, and C. Ballif, “Experimental Evaluation of the Light Trapping Potential of Optical Nanostructures for Thin-Film Silicon Solar Cells,” En. Proc. 15, 206–211 (2012). [CrossRef]
- 1. It can be assumed that moderate variations of the texture can be achieved experimentally via slight adjustments of the texturing process, which do not significantly change the shape of the texture
- 2. A similar variation will be considered later for the periodic structure. Due to limitations in the simulation process, only a moderate variation of the parameters was possible here.
| j0 | δj | jph,min | jph,max | c1 | c2 | c3 |
|---|---|---|---|---|---|---|
| 5.84 | 5.15 | 6.9 | 17.14 | 0.292 | 2.26 | 4.13 |
| mA/cm2 | mA/cm2 | mA/cm2 | mA/cm2 |
- • In the limit of small aspect ratios, the structure becomes planar and thus jph, min corresponds to the result obtained for a planar sample (jph,planar = 6.9 mA/cm2). This value is in reasonable agreement with measured values for planar samples (jph = 7.3 mA/cm2)
- • In the limit of large aspect ratios, the structure should scatter optimally and we would expect the value for a Lambertian scatterer (in our case: jph, Lambert = 18.5 mA/cm2 for a calculation with a planar sample and the absorber layer thickness increased by a factor of 4n2). The actual value obtained for jph, max is, however, considerably lower (17.14 mA/cm2). There are several possible reasons:
- o The Lambertian factor is strictly valid only in the limit of low absorption, which is not the case for all considered wavelengths; for larger absorption, the Lambertian factor is smaller than 4n2.
- o The Lambertian limit only considers absorption enhancement in a simple slab without any other effects; however, our calculation includes the entire cell structure and effects like reflection losses at the front are included.
- o The SST is not very accurate at reproducing large angle scattering, which is of great importance for Lambertian scattering, and therefore results, trend-wise, in an underestimation of the current [29].
S. Fahr, T. Kirchartz, C. Rockstuhl, and F. Lederer, “Approaching the Lambertian limit in randomly textured thin-film solar cells,” Opt. Express 19(S4 Suppl 4), A865–A874 (2011). [CrossRef] [PubMed]
- • It is an interesting question what factors δj are obtained for different scattering structures and if this factor can be used for characterisation purposes.
C. Battaglia, J. Escarre, K. Soederstroem, M. Boccard, and C. Ballif, “Experimental Evaluation of the Light Trapping Potential of Optical Nanostructures for Thin-Film Silicon Solar Cells,” En. Proc. 15, 206–211 (2012). [CrossRef]
4.2 Parameter variation: periodic structure
M. Peters, B. Bläsi, S. W. Glunz, A. G. Aberle, J. Luther, and C. Battaglia, “Optical Simulation of Silicon Thin-Film Solar Cells,” En. Proc. 15, 212–219 (2012). [CrossRef]
- • The initial parameters were obtained from an analysis of the stochastic structure. The current that was obtained for this initial parameter set is jph = 11.5 mA/cm2. This value is almost equal to those obtained for the experiment and the initial setup of the simulated stochastic structure.
- • For the periodic structure, there is no observable connection between the aspect ratio Sh/SΛ and the photocurrent. It seems rather that for certain (Sh, SΛ) combinations, minima and maxima occur for the photocurrent which can be explained by pronounced diffraction and resonance effects. The position of the maximum seems to be more sensitive to the period than to the depth.
5. Summary and discussion
- i. The simulated external quantum efficiency, using internal quantum efficiency data from literature, for the stochastic structure is in good agreement with quantum efficiency measurements for the same sample. As a consequence, also the simulated and measured short-circuit currents are in good agreement. This result serves as a verification that the developed methods deliver realistic results.
- ii. The simulated short-circuit current for the periodic and stochastic structure are almost the same.
- i. The simulated current mainly depends on the Sh/Sl ratio, which basically corresponds to the aspect ratio or roughness of the structure.
- ii. The generated photocurrent can be assumed to be a logistic function of the ratio Sh/Sl, with a linear response in a certain regime. The investigated structure was found to be in this linear regime, so that with an increase in aspect ratio by 10% an increase in current of approximately 0.5 mA/cm2 can be expected.
- iii. The logistic function converges towards a maximum current jph,max which is specific for a certain light trapping geometry and solar cell structure. This limit can be substantially lower than the Lambertian limit as was the case for the investigated structure, though higher limits have been demonstrated by other groups.
Acknowledgments
References and links
M. Berginski, J. Hüpkes, M. Schulte, G. Schöpe, H. Stiebig, B. Rech, and M. Wuttig, “The effect of front ZnO:Al surface texture and optical transparency on efficient light trapping in silicon thin-film solar cells,” J. Appl. Phys. 101(7), 074903 (2007). [CrossRef] | |
D. Dominé, F. J. Haug, C. Battaglia, and C. Ballif, “Modeling of light scattering from micro- and nanotextured surfaces,” J. Appl. Phys. 107(4), 044504 (2010). [CrossRef] | |
C. Battaglia, K. Söderström, J. Escarré, F. J. Haug, D. Dominé, P. Cuony, M. Boccard, G. Bugnon, C. Denizot, M. Despeisse, A. Feltrin, and C. Ballif, “Efficient light management scheme for thin-film silicon solar cells via transparent random nanostructures fabricated by nanoimprinting,” Appl. Phys. Lett. 96(21), 213504 (2010). [CrossRef] | |
Press release, Oerlikon, see e.g. SolarServer.com, Archive 2012, KW 03, “PV production: Oerlikon Solar’s 2nd generation “ThinFab”,” presented in Abu Dhabi delivers 23% investment cost reduction and 17% higher capacity; record thin film silicon cell reaches 12.5% efficiency”. | |
P. Sheng, A. N. Bloch, and R. S. Stepleman, “Wavelength selective absorption enhancement in thin-film solar cells,” Appl. Phys. Lett. 43(6), 579–582 (1983). [CrossRef] | |
C. Heine and R. H. Morf, “Submicrometer gratings for solar energy applications,” Appl. Opt. 34(14), 2476–2482 (1995). [CrossRef] [PubMed] | |
S. H. Zaidi, J. M. Gee, and D. S. Ruby, “Visual system-response functions and estimating reflectance,” Proc. 28th IEEE Photovoltaic Specialists Conference, 395–398 (2000). | |
M. Peters, M. Rüdiger, H. Hauser, M. Hermle, and B. Bläsi, “Diffractive gratings for crystalline silicon solar cells - optimum parameters and loss mechanisms,” Prog. Photovolt. Res. Appl. 20(7), 862–873 (2012). [CrossRef] | |
A. Mellor, I. Tobias, A. Marti, M. J. Mendes, and A. Luque, “Upper limits to absorption enhancement in thick solar cells using diffraction gratings,” Prog. Photovolt. Res. Appl. 19(6), 676–687 (2011). [CrossRef] | |
Z. Yu, A. Raman, and S. Fan, “Fundamental limit of light trapping in grating structures,” Opt. Express 18(S3), A366–A380 (2010). [CrossRef] | |
J. Gjessing, A. S. Sudbo, and E. S. Marstein, “A novel back-side light trapping structure for thin silicon solar cells,” J. Euro. Opt. Soc. 6, 11020 1–4 (2011). | |
C. van Trigt, “Visual system-response functions and estimating reflectance,” J. Opt. Soc. Am. A 14(4), 741–755 (1997). [CrossRef] [PubMed] | |
E. Yablonovitch, “Statistical Ray Optics,” J. Opt. Soc. Am. A 72(7), 899–907 (1982). [CrossRef] | |
T. Kirchartz in, “Physics of nanostructured solar cells,” V. Badescu (Edt.), Nova Science Publishers, 1–40 (2009) | |
H. Li, R. Franken, R. L. Stolk, J. K. Rath, and R. E. I. Schropp, “Mechanism of shunting of nanocrystalline silicon solar cells deposited on rough Ag/ZnO substrates,” So. State. Phen. 131–133, 27–32 (2007). | |
M. Peters, B. Bläsi, S. W. Glunz, A. G. Aberle, J. Luther, and C. Battaglia, “Optical Simulation of Silicon Thin-Film Solar Cells,” En. Proc. 15, 212–219 (2012). [CrossRef] | |
V. E. Ferry, M. A. Verschuuren, M. C. Lare, R. E. I. Schropp, H. A. Atwater, and A. Polman, “Optimized Spatial Correlations for Broadband Light Trapping Nanopatterns in High Efficiency Ultrathin Film a-Si:H Solar Cells,” Nano Lett. 11(10), 4239–4245 (2011). [CrossRef] [PubMed] | |
B. Bläsi, H. Hauser, and A. J. Wolf, “Photon management structures for solar cells,” proceedings of SPIE 8438, Photonics for Solar Energy Systems IV, 84380F (2012), doi:. [CrossRef] | |
M. Peters, K. Forberich, C. Battaglia, A. G. Aberle, and B. Bläsi, “Comparison of periodic and random structures for scattering in thin-film microcrystalline silicon solar cells,” proceedings of SPIE 8438, Photonics for Solar Energy Systems IV, 84380F (2012), doi:. [CrossRef] | |
K. Jäger, R. A. C. M. M. van Swaaij, and M. Zeman, “A Full Scalar Scattering Model for Nano-Textured Interfaces”, in “Optical Nanostructures and Advanced Materials for Photovoltaics,” proceedings of the Optical Society of America, PWC5 (2011). | |
B. Vet, B. Grancic, O. Isabella, S. Solntsev, and M. Zeman, “Optical and Electrical Simulations of Advanced Silicon Based Solar Cell Devices,” Proceedings of the 24th European Photovoltaic Solar Energy Conference 2682–2685 (2009). | |
M. G. Moharam, D. A. Pommet, E. B. Grann, and T. K. Gaylord, “Stable implementation of the rigorous coupled-wave analysis for surface-relief gratings: enhanced transmittance matrix approach,” J. Opt. Soc. Am. A 12(5), 1077–1086 (1995). [CrossRef] | |
P. Lalanne and M. P. Jurek, “Computation of the near-field pattern with the coupled wave method for transverse magnetic polarization,” J. Mod. Opt. 45(7), 1357–1374 (1998). [CrossRef] | |
International Electrotechnical Standard, (IEC 60904–1), www.iec.ch. | |
H. E. A. Elgamel, “High efficiency polycrystalline silicon solar cells using low temperature PECVD process,” IEEE Trans. Electron. Dev. 45, 2131–2137 (1998). | |
A. V. Shah, H. Schade, M. Vanecek, J. Meier, E. Vallat-Sauvain, N. Wyrsch, U. Krol, C. Droz, and J. Bailat, “Thin-film Silicon Solar Cell Technology,” Prog. Photovolt. Res. Appl. 12(23), 113–142 (2004). [CrossRef] | |
A. V. Shah, ed., “Thin-film Silicon Solar Cell Cells,” EPFL Press 1st edition, 216 - 231 (2010). | |
C. Battaglia, J. Escarre, K. Soederstroem, M. Boccard, and C. Ballif, “Experimental Evaluation of the Light Trapping Potential of Optical Nanostructures for Thin-Film Silicon Solar Cells,” En. Proc. 15, 206–211 (2012). [CrossRef] | |
S. Fahr, T. Kirchartz, C. Rockstuhl, and F. Lederer, “Approaching the Lambertian limit in randomly textured thin-film solar cells,” Opt. Express 19(S4 Suppl 4), A865–A874 (2011). [CrossRef] [PubMed] | |
D. Domine, “The role of front electrodes and intermediate reflectors in the optoelectronic properties of high efficiency micromorph solar cells,” PhD Thesis, University of Neuchatel (2009). | |
C. Battaglia, C. M. Hsu, K. Söderström, J. Escarré, F. J. Haug, M. Charrière, M. Boccard, M. Despeisse, D. T. L. Alexander, M. Cantoni, Y. Cui, and C. Ballif, “Light Trapping in Solar Cells: Can Periodic Beat Random?” ACS Nano 6(3), 2790–2797 (2012). [CrossRef] [PubMed] |
OCIS Codes
(050.1950) Diffraction and gratings : Diffraction gratings
(290.5880) Scattering : Scattering, rough surfaces
(350.6050) Other areas of optics : Solar energy
ToC Category:
Solar Energy
History
Original Manuscript: September 27, 2012
Revised Manuscript: December 6, 2012
Manuscript Accepted: December 6, 2012
Published: December 19, 2012
Citation
M. Peters, C. Battaglia, K. Forberich, B. Bläsi, N. Sahraei, and A.G. Aberle, "Comparison between periodic and stochastic parabolic light trapping structures for thin-film microcrystalline Silicon solar cells," Opt. Express 20, 29488-29499 (2012)
http://www.opticsinfobase.org/oe/abstract.cfm?URI=oe-20-28-29488
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References
- M. Berginski, J. Hüpkes, M. Schulte, G. Schöpe, H. Stiebig, B. Rech, and M. Wuttig, “The effect of front ZnO:Al surface texture and optical transparency on efficient light trapping in silicon thin-film solar cells,” J. Appl. Phys.101(7), 074903 (2007). [CrossRef]
- D. Dominé, F. J. Haug, C. Battaglia, and C. Ballif, “Modeling of light scattering from micro- and nanotextured surfaces,” J. Appl. Phys.107(4), 044504 (2010). [CrossRef]
- C. Battaglia, K. Söderström, J. Escarré, F. J. Haug, D. Dominé, P. Cuony, M. Boccard, G. Bugnon, C. Denizot, M. Despeisse, A. Feltrin, and C. Ballif, “Efficient light management scheme for thin-film silicon solar cells via transparent random nanostructures fabricated by nanoimprinting,” Appl. Phys. Lett.96(21), 213504 (2010). [CrossRef]
- Press release, Oerlikon, see e.g. SolarServer.com, Archive 2012, KW 03, “PV production: Oerlikon Solar’s 2nd generation “ThinFab”,” presented in Abu Dhabi delivers 23% investment cost reduction and 17% higher capacity; record thin film silicon cell reaches 12.5% efficiency”.
- P. Sheng, A. N. Bloch, and R. S. Stepleman, “Wavelength selective absorption enhancement in thin-film solar cells,” Appl. Phys. Lett.43(6), 579–582 (1983). [CrossRef]
- C. Heine and R. H. Morf, “Submicrometer gratings for solar energy applications,” Appl. Opt.34(14), 2476–2482 (1995). [CrossRef] [PubMed]
- S. H. Zaidi, J. M. Gee, and D. S. Ruby, “Visual system-response functions and estimating reflectance,” Proc. 28th IEEE Photovoltaic Specialists Conference, 395–398 (2000).
- M. Peters, M. Rüdiger, H. Hauser, M. Hermle, and B. Bläsi, “Diffractive gratings for crystalline silicon solar cells - optimum parameters and loss mechanisms,” Prog. Photovolt. Res. Appl.20(7), 862–873 (2012). [CrossRef]
- A. Mellor, I. Tobias, A. Marti, M. J. Mendes, and A. Luque, “Upper limits to absorption enhancement in thick solar cells using diffraction gratings,” Prog. Photovolt. Res. Appl.19(6), 676–687 (2011). [CrossRef]
- Z. Yu, A. Raman, and S. Fan, “Fundamental limit of light trapping in grating structures,” Opt. Express18(S3), A366–A380 (2010). [CrossRef]
- J. Gjessing, A. S. Sudbo, and E. S. Marstein, “A novel back-side light trapping structure for thin silicon solar cells,” J. Euro. Opt. Soc.6, 11020 1–4 (2011).
- C. van Trigt, “Visual system-response functions and estimating reflectance,” J. Opt. Soc. Am. A14(4), 741–755 (1997). [CrossRef] [PubMed]
- E. Yablonovitch, “Statistical Ray Optics,” J. Opt. Soc. Am. A72(7), 899–907 (1982). [CrossRef]
- T. Kirchartz in, “Physics of nanostructured solar cells,” V. Badescu (Edt.), Nova Science Publishers, 1–40 (2009)
- H. Li, R. Franken, R. L. Stolk, J. K. Rath, and R. E. I. Schropp, “Mechanism of shunting of nanocrystalline silicon solar cells deposited on rough Ag/ZnO substrates,” So. State. Phen.131–133, 27–32 (2007).
- M. Peters, B. Bläsi, S. W. Glunz, A. G. Aberle, J. Luther, and C. Battaglia, “Optical Simulation of Silicon Thin-Film Solar Cells,” En. Proc.15, 212–219 (2012). [CrossRef]
- V. E. Ferry, M. A. Verschuuren, M. C. Lare, R. E. I. Schropp, H. A. Atwater, and A. Polman, “Optimized Spatial Correlations for Broadband Light Trapping Nanopatterns in High Efficiency Ultrathin Film a-Si:H Solar Cells,” Nano Lett.11(10), 4239–4245 (2011). [CrossRef] [PubMed]
- B. Bläsi, H. Hauser, and A. J. Wolf, “Photon management structures for solar cells,” proceedings of SPIE 8438, Photonics for Solar Energy SystemsIV, 84380F (2012), doi:. [CrossRef]
- M. Peters, K. Forberich, C. Battaglia, A. G. Aberle, and B. Bläsi, “Comparison of periodic and random structures for scattering in thin-film microcrystalline silicon solar cells,” proceedings of SPIE 8438, Photonics for Solar Energy SystemsIV, 84380F (2012), doi:. [CrossRef]
- K. Jäger, R. A. C. M. M. van Swaaij, and M. Zeman, “A Full Scalar Scattering Model for Nano-Textured Interfaces”, in “Optical Nanostructures and Advanced Materials for Photovoltaics,” proceedings of the Optical Society of America, PWC5 (2011).
- B. Vet, B. Grancic, O. Isabella, S. Solntsev, and M. Zeman, “Optical and Electrical Simulations of Advanced Silicon Based Solar Cell Devices,” Proceedings of the 24th European Photovoltaic Solar Energy Conference 2682–2685 (2009).
- M. G. Moharam, D. A. Pommet, E. B. Grann, and T. K. Gaylord, “Stable implementation of the rigorous coupled-wave analysis for surface-relief gratings: enhanced transmittance matrix approach,” J. Opt. Soc. Am. A12(5), 1077–1086 (1995). [CrossRef]
- P. Lalanne and M. P. Jurek, “Computation of the near-field pattern with the coupled wave method for transverse magnetic polarization,” J. Mod. Opt.45(7), 1357–1374 (1998). [CrossRef]
- International Electrotechnical Standard, (IEC 60904–1), www.iec.ch .
- H. E. A. Elgamel, “High efficiency polycrystalline silicon solar cells using low temperature PECVD process,” IEEE Trans. Electron. Dev.45, 2131–2137 (1998).
- A. V. Shah, H. Schade, M. Vanecek, J. Meier, E. Vallat-Sauvain, N. Wyrsch, U. Krol, C. Droz, and J. Bailat, “Thin-film Silicon Solar Cell Technology,” Prog. Photovolt. Res. Appl.12(23), 113–142 (2004). [CrossRef]
- A. V. Shah, ed., “Thin-film Silicon Solar Cell Cells,” EPFL Press 1st edition, 216 - 231 (2010).
- C. Battaglia, J. Escarre, K. Soederstroem, M. Boccard, and C. Ballif, “Experimental Evaluation of the Light Trapping Potential of Optical Nanostructures for Thin-Film Silicon Solar Cells,” En. Proc.15, 206–211 (2012). [CrossRef]
- S. Fahr, T. Kirchartz, C. Rockstuhl, and F. Lederer, “Approaching the Lambertian limit in randomly textured thin-film solar cells,” Opt. Express19(S4Suppl 4), A865–A874 (2011). [CrossRef] [PubMed]
- D. Domine, “The role of front electrodes and intermediate reflectors in the optoelectronic properties of high efficiency micromorph solar cells,” PhD Thesis, University of Neuchatel (2009).
- C. Battaglia, C. M. Hsu, K. Söderström, J. Escarré, F. J. Haug, M. Charrière, M. Boccard, M. Despeisse, D. T. L. Alexander, M. Cantoni, Y. Cui, and C. Ballif, “Light Trapping in Solar Cells: Can Periodic Beat Random?” ACS Nano6(3), 2790–2797 (2012). [CrossRef] [PubMed]
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