[1] Arias, L.A., et al., A review and analysis of trends related to demand response. Energies, 2018. 11(7): p. 1617.
[2] Green, M.A., et al., Solar cell efficiency tables (Version 64). Progress in Photovoltaics, 2024. 32(7).
[3] Akinoglu, B.G., B. Tuncel, and V. Badescu, Beyond 3rd generation solar cells and the full spectrum project. Recent advances and new emerging solar cells. Sustainable Energy Technologies and Assessments, 2021. 46: p. 101287.
[4] Smets, A., et al., Solar Energy: The physics and engineering of photovoltaic conversion, technologies and systems. 2016: Bloomsbury Publishing.
[5] David, B.M., et al., The path towards a high-performance solution-processed kesterite solar cell. Solar Energy Materials and Solar Cells, 2011. 95(6): p. 1421–1436.
[6] Wang, W., et al., Device characteristics of CZTSSe thin-film solar cells with 12.6% efficiency. Advanced energy materials, 2014. 4(7).
[7] Malerba, C., Cu2ZnSnS4 thin films solar cells: material and device characterization. 2014.
[8] Stanbery, B.J., Copper indium selenides and related materials for photovoltaic devices. Critical reviews in solid state and materials sciences, 2002. 27(2): p. 73–117.
[9] Huang, D. and C. Persson, Band gap change induced by defect complexes in Cu2ZnSnS4. Thin Solid Films, 2013. 535: p. 265–269.
[10] Valdes, M., G. Santoro, and M. Vázquez, Spray deposition of Cu2ZnSnS4 thin films. Journal of Alloys and Compounds, 2014. 585: p. 776–782.
[11] Govind, R., V. Asokan, and D. Velauthapillai, Solar Cells of Cu2ZnSnS4 thin films prepared by chemical bath deposition method.
[12]. Patel, M., I. Mukhopadhyay, and A. Ray, Structural, optical and electrical properties of spray-deposited CZTS thin films under a non-equilibrium growth condition. Journal of Physics D: Applied Physics, 2012. 45(44): p. 445103.
[13] Bhosale, S., et al., Influence of growth temperatures on the properties of photoactive CZTS thin films using a spray pyrolysis technique. Materials Letters, 2014. 129: p. 153–155.
[14] Chtouki, T., et al., Comparative study on the structural, morphological, linear and nonlinear optical properties of CZTS thin films prepared by spin-coating and spray pyrolysis. Materials Today: Proceedings, 2017. 4(4): p. 5146–5153.
[15] Amole, S., et al., Sol-gel spin coating synthesis of TiO2 nanostructure and its optical characterization. Journal of Materials Science and Chemical Engineering, 2019. 7(6): p. 23–34.
[16] Sawaby, A., et al., Structure, optical and electrochromic properties of NiO thin films. Physica B: Condensed Matter, 2010. 405(16): p. 3412–3420.
[17] Chen, S., et al., Crystal and electronic band structure of Cu2ZnSnS4 (X= S and Se) photovoltaic absorbers: First-principles insights. Applied physics letters, 2009. 94(4).
[18] Wang, T., et al., Studies on photocatalytic activity and transmittance spectra of TiO2 thin films prepared by rf magnetron sputtering method. Surface and Coatings Technology, 2002. 155(2-3): p. 141–145.
[19] Khushaim, M., et al., Study of kesterite (CZTS) Cu2ZnSnS4 thin films deposited by spray technique for photovoltaic applications. Journal of Taibah University for Science, 2021. 15(1): p. 329–339.