American Journal of Energy Research
ISSN (Print): 2328-7349 ISSN (Online): 2328-7330 Website: https://www.sciepub.com/journal/ajer Editor-in-chief: Apply for this position
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American Journal of Energy Research. 2023, 11(1), 15-26
DOI: 10.12691/ajer-11-1-2
Open AccessArticle

Solar PV Technology Cost Dynamics and Challenges for US New Entrants

Solomon Evro1, , Cooper R. Wade1 and Olusegun S. Tomomewo1

1Institute for Energy Studies, University of North Dakota, Grand Forks, USA

Pub. Date: February 05, 2023

Cite this paper:
Solomon Evro, Cooper R. Wade and Olusegun S. Tomomewo. Solar PV Technology Cost Dynamics and Challenges for US New Entrants. American Journal of Energy Research. 2023; 11(1):15-26. doi: 10.12691/ajer-11-1-2

Abstract

Renewable energy generation is being used more than ever due to the increasing awareness of climate change. Solar energy has emerged as the fastest-growing energy technology alongside other renewable energy sources, such as wind energy. Although the United States developed photovoltaic solar cell technology and led the first wave of efficiency and cost improvements. In the following years, US companies could not dominate the market and lost their pioneering position. In this work, we reviewed some of the factors why some American companies found it difficult to survive in the solar PV market. It is necessary to review some of the factors that led to the demise of some of the American Solar PV companies, with the hope of identifying the significant issues that impacted these companies so that new entrant into the market will review their position and prepare adequately to counter these forces. This report uses minimum price concepts to assess the evolution of solar photovoltaic manufacturing costs and economic factors in recent years. This analysis shows three different periods of cost improvement corresponding to periods of oil price highs and lows. A model was developed to explain why some US companies find it challenging to compete and enter the market in the second period and used some of these companies as case studies. The model shows that rapidly declining costs are making technology and production equipment obsolete. US companies took long lead times to prove their technology, raise funding, obtain the necessary permits and set up production facilities.

Keywords:
PV modules solar industry solar manufacturing US united states renewable energy market

Creative CommonsThis work is licensed under a Creative Commons Attribution 4.0 International License. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/

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References:

[1]  Marchant, J. (2010). Reconstructed: Archimedes’ flaming “steam cannon.”
 
[2]  Kundapur, A. (2020). 250 years saga of solar box cookers. Journal of Multidisciplinary Engineering Science Studies (JMESS), 6(3).
 
[3]  Knier, G. (2002). How do photovoltaics work. Science@ NASA.
 
[4]  Nayef, M. (2013). Renewable energy at Kuwait Great Burgan oil field. SPE Middle East Oil and Gas Show and Conference.
 
[5]  Fraas, L. M. (2014). History of solar cell development. In Low-cost solar electric power (pp. 1-12). Springer.
 
[6]  Almerini, A. (2022, September 12). The history of solar energy. https://www.solarreviews.com/blog/the-history-of-solar-energy-timeline.
 
[7]  Sovacool, B. K., & Ratan, P. L. (2012). Conceptualizing the acceptance of wind and solar electricity. Renewable and Sustainable Energy Reviews, 16(7), 5268-5279.
 
[8]  Allawi, A., & Birol, F. (2021, September 5). Without help from oil-producing countries, net zero by 2050 is a distant dream. https://www.iea.org/commentaries/without-help-for-oil-producing-countries-net-zero-by-2050-is-a-distant-dream.
 
[9]  Salam, M. A., & Khan, S. A. (2018). Transition towards sustainable energy production–A review of the progress for solar energy in Saudi Arabia. Energy Exploration & Exploitation, 36(1), 3-27.
 
[10]  Krane, J., & Hung, S. Y. (2016). Energy subsidy reform in the persian Gulf: The end of the big oil giveaway. Issue Brief, 04.28. 16. Laird, F. N., & Stefes, C. (2009). The diverging paths of German and United States policies for renewable energy: Sources of difference. Energy Policy, 37(7), 2619-2629.
 
[11]  AlYahya, S., & Irfan, M. A. (2016). The techno-economic potential of Saudi Arabia׳ s solar industry. Renewable and Sustainable Energy Reviews, 55, 697-702.
 
[12]  IEA. (2023). Policies database.
 
[13]  Gambino, M. (2013, June 11). Document Deep Dive: The Patent for the First Practical Solar Cell. Energy Innovation.
 
[14]  Bagnall, D. M., & Boreland, M. (2008). Photovoltaic technologies. Energy Policy, 36(12), 4390-4396.
 
[15]  Goodrich, A., Hacke, P., Wang, Q., Sopori, B., Margolis, R., James, T. L., & Woodhouse, M. (2013). A wafer-based monocrystalline silicon photovoltaics road map: Utilizing known technology improvement opportunities for further reductions in manufacturing costs. Solar Energy Materials and Solar Cells, 114, 110-135.
 
[16]  Chopde, S. S., Patil, M. R., & Shaikh, A. (2016). Solar technology: A way to the prosperity of Indian dairy industry. Indian Journal of Dairy Science, 69(4), 375-381.
 
[17]  IEA. (2022, October 26). Evolution of solar PV module cost by data source, 1970-2020. https://www.iea.org/data-and-statistics/charts/evolution-of-solar-pv-module-cost-by-data-source-1970-2020.
 
[18]  Powell, D. M., Winkler, M. T., Goodrich, A., & Buonassisi, T. (2013). Modeling the cost and minimum sustainable price of crystalline silicon photovoltaic manufacturing in the United States. IEEE Journal of Photovoltaics, 3(2), 662-668.
 
[19]  Bojek, P. (2022). Solar PV: Technology deep dive.
 
[20]  West, J. (2014). Too little, too early: California’s transient advantage in the photovoltaic solar industry. The Journal of Technology Transfer, 39(3), 487-501.
 
[21]  Bernreuter. (2020). Polysilicon Price Trend: What is driving the roller-coaster ride of the polysilicon price? https://www.bernreuter.com/polysilicon/price-trend/.
 
[22]  Murtaugh, D. (2022). Solar Polysilicon Prices Climb Again as Extreme Shortage Builds.
 
[23]  Pvinsights. (2019). PVinsights announces worldwide 2010 top 10 ranking of PV module makers. http://pvinsights.com/Report/ReportPMM04A.php.
 
[24]  Pickerel, K. (2021). The US solar industry has a Chinese problem. Solar Power World.
 
[25]  Gaddy, B. (2015, January 23). What happened to US Solar? A Case Study on OptiSolar. https://bengaddy.com/blog/2015/01/23/us-solar-part-1-optisolar/.
 
[26]  BP, S. R. (2022). Statistical Review of World Energy. https://www.bp.com/en/global/corporate/energy-economics/statistical-review-of-world-energy.html.
 
[27]  Solar Energy Research, Development And Demonstration Act (1974), 42USC5551 H.R.16276 (1974). https://www.congress.gov/bill/93rd-congress/house-bill/16276.
 
[28]  Rice, W. (1979). Federal policy on solar: Piecemeal. Sol. Age;(United States), 4(11).
 
[29]  Vakulchuk, R., Overland, I., & Scholten, D. (2020). Renewable energy and geopolitics: A review. Renewable and Sustainable Energy Reviews, 122, 109547.
 
[30]  Laird, F. N., & Stefes, C. (2009). The diverging paths of German and United States policies for renewable energy: Sources of difference. Energy Policy, 37(7), 2619-2629.
 
[31]  Roessner, J. D. (1982). Government-industry relationships in technology commercialization: The case of photovoltaics. Solar Cells, 5(2), 101-134.
 
[32]  Hughes, L., & Lipscy, P. Y. (2013). The politics of energy. Annual Review of Political Science, 16(1), 449-469.
 
[33]  Keohane, R. O. (2005). After hegemony: Cooperation and discord in the world political economy. Princeton university press.
 
[34]  Cherp, A., Vinichenko, V., Jewell, J., Suzuki, M., & Antal, M. (2017). Comparing electricity transitions: A historical analysis of nuclear, wind and solar power in Germany and Japan. Energy Policy, 101, 612-628.
 
[35]  Helm, D. (2002). Energy policy: Security of supply, sustainability and competition. Energy Policy, 30(3), 173-184.
 
[36]  Ikenberry, G. J. (1986). The irony of state strength: Comparative responses to the oil shocks in the 1970s. International Organization, 40(1), 105-137.
 
[37]  Wüstenhagen, R., & Bilharz, M. (2006). Green energy market development in Germany: Effective public policy and emerging customer demand. Energy Policy, 34(13), 1681-1696.
 
[38]  Paul, M., & Eichacker, N. (2020). Why we should be funding more Solyndras.
 
[39]  Weber, E. (2017, August 25). Photovoltaics moving into the terawatt age. https://www.spiedigitallibrary.org/conference-proceedings-of-spie/10368/2277978/Photovoltaics-moving-into-the-terawatt-age.
 
[40]  Hutchinson, A. (2009). Solar panel Drops to $1 per Watt: Is this a Milestone or the Bottom for Silicon-Based Panels? Popular Mechanics.
 
[41]  Lüdeke-Freund, F., Massa, L., Bocken, N., Brent, A., & Musango, J. (2016). Business models for shared value. Network for Business Sustainability: South Africa.
 
[42]  Lott, M. (2011). Illuminating Energy Funding Flaws? Scientific American.
 
[43]  Noyes, H. T. (1919). Planning for a New Manufacturing Plant. The ANNALS of the American Academy of Political and Social Science, 85(1), 66-89.
 
[44]  McCabe, J. (2012). The End of Abound Solar: What Have We Learned? Renewable Energy World. https://www.renewableenergyworld.com/solar/the-end-of-abound-solar-what-have-we-learned/#gref.
 
[45]  Lee, T. D., & Ebong, A. U. (2017). A review of thin film solar cell technologies and challenges. Renewable and Sustainable Energy Reviews, 70, 1286-1297.
 
[46]  Park, N.-G. (2015). Perovskite solar cells: An emerging photovoltaic technology. Materials Today, 18(2), 65-72.
 
[47]  Hussain, K., & Gagliardi, A. (2022). Modelling tandem/multi-junction hybrid perovskite–organic solar cells: A combined drift–diffusion and kinetic Monte Carlo study. Solar Energy, 243, 193-202.