Biblio
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“Effects of heavy alkali elements in Cu (In, Ga) Se2 solar cells with efficiencies up to 22.6%”, physica status solidi (RRL)–Rapid Research Letters, vol. 10, pp. 583–586, 2016.
, “High-efficiency Cu(In,Ga)Se2 cells and modules”, Solar energy materials and solar cells, vol. 119, pp. 51–58, 2013.
, “Fabrication and Characterization of CuO-based Solar Cells”, Journal of Materials Science Research, vol. 1, no. 1, 2011.
, “Green synthesis of tunable Cu(In1−xGax)Se2 nanoparticles using non-organic solvents”, Green Chemistry, vol. 12, no. 7, p. 1248, 2010.
, “Structure and photovoltaic activity of cupric oxide-based thin film solar cells”, Journal of the Ceramic Society of Japan, vol. 118, no. 1383, pp. 1021 - 1023, 2010.
, “World’s Highest Efficiency Triple-junction Solar Cells Fabricated by Inverted Layers Transfer Process”, 35 IEEE Photovoltaic Specialist Conference. Honolulu HI, USA, 2010.
, “Development of CZTS-based thin film solar cells”, Thin Solid Films, vol. 517, pp. 2455–2460, 2009.
, “Exact analytical solutions of the parameters of real solar cells using Lambert W-function”, Solar Energy Materials and Solar Cells, vol. 81, no. 2, pp. 269 - 277, 2004.
, “ZnSe thin films grown by chemical vapour deposition for application as buffer layer in CIGSS solar cells”, Thin Solid Films, vol. 361-362, pp. 172 - 176, 2000.
, “Na incorporation in Mo and CuInSe2 from production processes”, Solar energy materials and solar cells, vol. 59, pp. 255–264, 1999.
, “Buried contact concentrator solar cells”, Progress in Photovoltaics: Research and Applications, vol. 2, pp. 171-176, 1994.
, “The electrical properties of zinc selenide”, Journal of Physics D: Applied Physics, vol. 9, no. 5, pp. 799 - 810, 1976.
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