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Articles

Enhanced photocurrent in thin-film GaAs solar cells with embedded Al nanoparticles

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Pages 815-823 | Received 03 Sep 2018, Accepted 26 Dec 2018, Published online: 07 Mar 2019

References

  • Atwater, H. A., and A. Polman. 2010. Plasmonics for improved photovoltaic devices. Nature Materials 9:205–13. doi:10.1038/nmat2629.
  • Das, S., A. Kundu, H. Saha, and S. K. Datta. 2012. Role of metal and dielectric nanoparticles in the performance enhancement of silicon solar cells. Journal of Modern Optics 59:1219–31. doi:10.1080/09500340.2012.710347.
  • FDTD Solutions, www.lumerical.com
  • Green, M. A. 2003. Third generation photovoltaics. Berlin and Heidelberg: Springer.
  • Green, M. A., and S. Pillai. 2012. Harnessing plasmonics for solar cells. Nature Photonics 6:130–32. doi:10.1038/nphoton.2012.30.
  • Hedayati, M. K., and M. Elbahri. 2016. Antireflective coatings: Conventional stacking layers and ultrathin plasmonic metasurfaces – A mini-review. Materials 9:497. doi:10.3390/ma9060497.
  • Hovhannisyan, A. S. 2008. Single-layer antireflection coatings for GaAs solar cells. Journal of Contemporary Physics 43:136. doi:10.3103/S1068337208030080.
  • Hylton, N. P., X. F. Li, V. Giannini, K. H. Lee, N. J. Ekins-Daukes, J. Loo, D. Vercruysse, P. Van Dorpe, H. Sodabanlu, M. Sugiyama, et al. 2013. Loss mitigation in plasmonic solar cells: Aluminum nanoparticles for broadband photocurrent enhancements in GaAs photodiodes. Scientific Reports 3:1–6. doi:10.1038/srep02874.
  • Knight, M. W., Y. Wang, A. S. Urban, A. Sobhani, B. Y. Zheng, P. Nordlander, and N. J. Halas. 2013. Embedding plasmonic nanostructure diodes enhances hot electron emission. Nano Letters 13:1687. doi:10.1021/nl400196z.
  • Palik, E. 1985. Handbook of optical constants of solids. New York: Academic.
  • Pudasaini, P. R., and A. A. Arturo. 2012. Nanostructured thin film silicon solar cells efficiency improvement using gold nanoparticles. Physica Status Solidi A 209:1475–80. doi:10.1002/pssa.201228022.
  • Shi, B., W. Wang, X. Yu, L. Yang, and Y. Xu. 2017. Enhancement of optical absorption in silicon thin-film soalr cells with metallic nanoparticles. Optical Engineering 56:057105. doi:10.1117/1.OE.56.5.057105.
  • Shim, J. P., S. B. Choi, D. J. Kong, D. J. Seo, H. J. Kim, and D. S. Lee. 2016. Ag nanoparticles-embedded surface plasmonic InGaN-based solar cells via scattering and localized field enhancement. Optics Express 24:A1176. doi:10.1364/OE.24.0A1176.
  • Singh, G., and S. S. Verma. 2018a. Enhanced efficiency of thin film GaAs solar cells with plasmonic metal nanoparticles. Energy Sources, Part A: Recovery, Utilization and Environmental Effects 40:155–62. doi:10.1080/15567036.2017.1407840.
  • Singh, G., and S. S. Verma. 2018b. Optimized size and period of Al nanoparticles for thin film GaAs solar cells. 2nd International Conference on Condensed Matter and Applied Physics, AIP Conf. Proc. 1953:060014–1–060014–4. doi:10.1063/1.5032745
  • Sun, C., J. Su, and X. Wang. 2015. A design of thin film silicon solar cells based on silver nanoparticle arrays. Plasmonics 10:633. doi:10.1007/s11468-014-9849-2.
  • Sun, C., P. Jiang, and B. Jiang. 2008. Broadband moth-eye antireflection coatings on silicon. Applied Physics Letters 92:061112. doi:10.1063/1.2870080.
  • Sun, C., and X. Wang. 2015. Efficient light trapping structures of thin film silicon solar cells based on silver nanoparticle arrays. Plasmonics 10:1307–14. doi:10.1007/s11468-015-9934-1.
  • Wang, J. Y., F. J. Tsai, J. J. Huang, C. Y. Chen, N. Li, Y. W. Kiang, and C. C. Yang. 2010. Enhancing InGaN-basedsolar cell efficiency through localized surface plasmon interaction by embedding Ag nanoparticles in the absorbing layer. Optics Express 18:2682–94. doi:10.1364/OE.18.025008.
  • Wang, P. H., M. Theuring, M. Vehse, V. Steenhoff, C. Agert, and A. G. Brolo. 2017. Light trapping in a-Si: Hthin film solar cells using silver nanostructures. AIP Advances 7:015019. doi:10.1063/1.4973987.
  • Wen, L., Z. Zhao, X. Li, Y. Shen, H. Guo, and Y. Wang. 2011. Theoretical analysis and modeling of light trapping in high efficiency GaAs nanowire array solar cells. Applied Physics Letters 99:143116. doi:10.1063/1.3647847.
  • Xiao-Nan, L., Y. Zong-Heng, and Z. Long. 2014. Study of thin-film GaAs solar cells with culindrical Ag nanoparticles and distributed Bragg reflector. Optoelectronics Letters 10:0038–0042. doi:10.1007/s11801-014-3195-7.
  • Ye, F., M. J. Burns, and M. J. Naughton. 2011. Embedded metallic nanopatterns for enhanced optical absorption. Proceedings of SPIE 8111:811103.
  • Zhang, Y., Z. Ouyang, N. Stokes, B. Jia, Z. Shi, and M. Gu. 2012. Low cost and high performance Al nanoparticles for broadband light trapping in Si wafer solar cells. Applied Physics Letters 100:151101. doi:10.1063/1.3703121.

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