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Materials for Solar Energy Conversion


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Mekhilef, S., Saidur, R., Safari, A., A review on solar energy use in industries. Renewable Sustainable Energy Rev., 15, 4, 1777–1790, 2011.

      2. Muneer, T., Maubleu, S., Asif, M., Prospects of solar water heating for textile industry in Pakistan. Renewable Sustainable Energy Rev., 10, 1, 1–23, 2006.

      3. Bazen, E.F. and Brown, M.A., Feasibility of solar technology (photovoltaic) adoption: A case study on Tennessee’s poultry industry. Renewable Energy, 34, 3, 748–754, 2009.

      4. Mekhilef, S., Circular economy and renewable energy through industrial applications, in: Constructing a Green Circular Society, vol. 24, p. 121.

      6. Tampakis, S. et al., Citizens’ views on various forms of energy and their contribution to the environment. Renewable Sustainable Energy Rev., 20, 473482, 2013.

      7. Devabhaktuni, V. et al., Solar energy: Trends and enabling technologies. Renewable Sustainable Energy Rev., 19, 555–564, 2013.

      8. Xia, X. and Xia, J., Evaluation of potential for developing renewable sources of energy to facilitate development in developing countries, in: 2010 Asia-Pacific Power and Energy Engineering Conference, IEEE, 2010.

      9. Iqbal, M., An introduction to solar radiation, Elsevier, Amsterdam, Netherlands, 2012.

      10. Khaniki, H.B., Thermal Design and Analysis of a Small Satellite, Applied Science and Research Association, Lisle, USA, 1994.

      11. Tiwari, G.N. and Mishra, R.K., Advanced renewable energy sources, Royal Society of Chemistry, Burlington House, London, 2012.

      12. Kongtragool, B. and Wongwises, S., A review of solar-powered Stirling engines and low temperature differential Stirling engines. Renewable Sustainable Energy Rev., 7, 2, 131–154, 2003.

      13. Langniss, O. and Ince, D., Solar water heating: a viable industry in developing countries. Refocus, 5, 3, 18–21, 2004.

      14. Schnitzer, H., Brunner, C., Gwehenberger, G., Minimizing greenhouse gas emissions through the application of solar thermal energy in industrial processes. J. Cleaner Prod., 15, 13–14, 1271–1286, 2007.

      15. Goyal, R. and Tiwari, G., Performance of a reverse flat plate absorber cabinet dryer: a new concept. Energy Convers. Manage., 40, 4, 385–392, 1999.

      16. Proctor, D. and Morse, R., Solar energy for the Australian food processing industry. Sol. Energy, 19, 1, 63–72, 1977.

      17. Kalogirou, S., The potential of solar industrial process heat applications. Appl. Energy, 76, 4, 337–361, 2003.

      18. Li, Z.-S. et al., Application and development of solar energy in building industry and its prospects in China. Energy Policy, 35, 8, 4121–4127, 2007.

      19. Kulkarni, G.N., Kedare, S.B., Bandyopadhyay, S., Design of solar thermal systems utilizing pressurized hot water storage for industrial applications. Sol. Energy, 82, 8, 686–699, 2008.

      20. Kalogirou, S.A., Solar thermal collectors and applications. Prog. Energy Combust. Sci., 30, 3, 23–295, 2004.

      21. Kalogirou, S., Lloyd, S., Ward, J., Modelling, optimisation and performance evaluation of a parabolic trough solar collector steam generation system. Sol. Energy, 60, 1, 49–59, 1997.

      23. Smith, C.C., Solar process drying of potato products, in: International Conference on Energy Use Management, 24–28 Oct 1977, Pergamon Press, Tucson, Arizona (USA), 1977.

      24. Nogueira, M. and Black, A., Basics of Solar Electricity: Photovoltaics (PV), in: Northern California Solar Energy Resource Guide, pp. 1–4, 2003.

      25. Libo, W., Zhengming, Z., Jianzheng, L., A single-stage three-phase grid-connected photovoltaic system with modified MPPT method and reactive power compensation. IEEE Trans. Energy Convers., 22, 4, 881–886, 2007.

      26. Park, J.-H. et al., Dual-module-based maximum power point tracking control of photovoltaic systems. IEEE Trans. Ind. Electron., 53, 4, 1036–1047, 2006.

      27. Bruton, T., General trends about photovoltaics based on crystalline silicon. Sol. Energy Mater. Sol. Cells, 72, 1–4, 3–10, 2002.

      28. Braga, A. et al., New processes for the production of solar-grade polycrystalline silicon: A review. Solar Energy Mater. Sol. Cells, 92, 4, 418–424, 2008.

      29. Yang, J., Banerjee, A., Guha, S., Amorphous silicon based photovoltaics— from earth to the “final frontier”. Solar Energy Mater. Sol. Cells, 78, 1–4, 597–612, 2003.

      30. Green, M.A. et al., Crystalline silicon on glass (CSG) thin-film solar cell modules. Sol. Energy, 77, 6, 857–863, 2004.

      31. Parida, B., Iniyan, S., Goic, R., A review of solar photovoltaic technologies. Renewable Sustainable Energy Rev., 15, 3, 1625–1636, 2011.

      32. Crabtree, G.W. and Lewis, N.S., Solar energy conversion. Phys. Today, 60, 3, 37–42, 2007.

      33. Ferekides, C.S. et al., High efficiency CSS CdTe solar cells. Thin Solid Films, 361, 520–526, 2000.

      34. Kazem, H.A. and Chaichan, M.T., Effect of humidity on photovoltaic performance based on experimental study. Int. J. Appl. Eng. Res. (IJAER), 10, 23, 43572–43577, 2015.

      35. Al-Waeli, A.H. et al., Comparison study of indoor/outdoor experiments of a photovoltaic thermal PV/T system containing SiC nanofluid as a coolant. Energy, 151, 33–44, 2018.

      36. Yu, B. et al., Performance study on a novel hybrid solar gradient utilization system for combined photocatalytic oxidation technology and photovoltaic/thermal technology. Appl. Energy, 215, 699–716, 2018.

      37. Rahbar, K. et al., Heat recovery of nano-fluid based concentrating Photovoltaic Thermal (CPV/T) Collector with Organic Rankine Cycle. Energy Convers. Manage., 179, 373–396, 2019.

      39. https://www.statista.com/statistics/263471/industrial-energy-consumption-worldwide/

      40. https://www.irena.org/publications/2020/Mar/Renewable-Capacity-Statistics-2020

      1 * Corresponding author: [email protected]

      2

      Development of Solar Cells

       Mohan Kumar Anand Raj, Rajasekar Rathanasamy* and Moganapriya Chinnasamy

       Department of Mechanical Engineering, Kongu Engineering College, Erode, Tamil Nadu, India

       Abstract

      Nowadays, it is necessary to switch over from traditional fossil fuel power generation to alternative source power generation due to environmental degradation. Solar cell is a device