Life Cycle Assessment of Silicon-Based Tandem Solar Photovoltaics and their End-of-Life

Authors

DOI:

https://doi.org/10.52394/ijolcas.v2i2.49

Abstract

The rapid global uptake of solar photovoltaics (PV) promises the hope of affordable low-carbon electricity. Most production of PV modules so far, and for the foreseeable future, has been based on silicon wafer cells and while there are further R&D outcomes still to be fully transferred to the silicon cell industry, the next major technology change is likely to be the addition of a thin-film top cell to form an efficient tandem device. The authors have applied life cycle assessment (LCA) to several of the current and potential mass manufactured solar cell technology choices, including different silicon wafer styles and silicon/thin-film tandems. We have demonstrated that the environmental benefits of some paths for efficiency improvements, particularly of the incorporation of atomic hydrogen into silicon wafers, more than compensate for the additional inputs required. Furthermore, we have shown that the stability of top-cell materials for tandems is paramount, to avoid the premature demise of the underlying silicon bottom cell.

The end-of-life has been assumed to be landfill in most preceding LCA studies but there is a growing global need for PV recycling due to the rapid rise in uptake of photovoltaics, which will result in a significant future waste stream. Europe is leading the world in requiring industry stewardship for photovoltaics (and batteries, inverters and other system components) and other jurisdictions, including Australia, are following. However, photovoltaic modules are difficult to dismantle or deconstruct for materials recovery by methods that are both financially and environmentally sustainable. We will use LCA to guide our research on module recycling by chemical, thermal and mechanical methods and their combinations, with an aim to maximize the value of the recovered materials.

Author Biographies

  • Marina Moneiro Lunardi, UNSW Sydney
    PhD Student, School of Photovoltaic and Renewable Energy Engineering
  • Juan Pablo Alvarez-Gaitan, UNSW Sydney
    Research Associate, Sustainability Assessment Program (SAP) , Water Research Centre (WRC)
  • Jose Bilbao, UNSW Sydney
    Lecturer, School of Photovoltaic and Renewable Energy Engineering
  • Richard Paul Corkish, UNSW Sydney

    Chief Operating Officer,

    Australian Centre for Advanced Photovoltaics

References

Lacey S. Global Solar Capacity Set to Surpass Nuclear for the First Time. Greentech Media. 2017.

Frankl P, Nowak S, Gutschner M, Gnos S, Rinke T. International energy agency technology roadmap: solar photovoltaic energy. 2010.

ITRPV. International Technology Roadmap for Photovoltaic Results 2016. 2017.

Hallam B, Chen D, Kim M, Stefani B, Hoex B, Abbott M, et al. The role of hydrogenation and gettering in enhancing the efficiency of next‐generation Si solar cells: An industrial perspective. physica status solidi (a). 2017.

Hallam B, Hamer PG, Wenham SR, Abbott MD, Sugianto A, Wenham AM, et al. Advanced bulk defect passivation for silicon solar cells. IEEE Journal of Photovoltaics. 2014;4:88-95.

Shockley W, Queisser HJ. Detailed balance limit of efficiency of p‐n junction solar cells. Journal of applied physics. 1961;32:510-9.

Green MA. Silicon wafer-based tandem cells: The ultimate photovoltaic solution? SPIE OPTO: International Society for Optics and Photonics; 2014. p. 89810L-L-6.

Green MA. Thin-film solar cells: review of materials, technologies and commercial status. Journal of Materials Science: Materials in Electronics. 2007;18:15-9.

Green MA, Ho-Baillie A, Snaith HJ. The emergence of perovskite solar cells. Nature Photonics. 2014;8:nphoton. 2014.134.

Polman A, Knight M, Garnett EC, Ehrler B, Sinke WC. Photovoltaic materials: Present efficiencies and future challenges. Science. 2016;352:aad4424.

Bailie CD, McGehee MD. High-efficiency tandem perovskite solar cells. MRS Bulletin. 2015;40:681-6.

Corkish R. Some candidate materials for lattice-matched liquid-phase epitaxial growth on silicon. Solar Cells. 1991;31:537-48.

Owens J. Life cycle assessment. Journal of Industrial Ecology. 1997;1:37-49.

Duda M, Shaw JS. Life cycle assessment. Society. 1997;35:38-43.

GaBiSoftware. GaBi LCA Software. thinkstep Global Headquaters. 2016.

Lunardi MM, Alvarez-Gaitan JP, Bilbao J, Corkish R. Comparative Life Cycle Assessment of End-of-Life Silicon Solar Photovoltaic Modules. Applied Sciences. 2018;8:1396.

IEC. International Standard IEC 61724: Photovoltaic system performance monitoring œ Guidelines for measurements, data exchange and analysis. Geneva, Switzerland: International Electrotechnical Commission. 1998.

Frischknecht R, Itten R, Sinha P, de Wild-Scholten M, Zhang J, Fthenakis V, et al. Life Cycle Inventories and Life Cycle Assessment of Photovoltaic Systems. International Energy Agency (IEA) PVPS Task 12, Report T12. 2015;4.

Kim K, Gwak J, Ahn SK, Eo Y-J, Park JH, Cho J-S, et al. Simulations of chalcopyrite/c-Si tandem cells using SCAPS-1D. Solar Energy. 2017.

Song N, Young M, Liu F, Erslev P, Wilson S, Harvey SP, et al. Epitaxial Cu2ZnSnS4 thin film on Si (111) 4° substrate. Applied Physics Letters. 2015;106:252102.

Shin B, Zhu Y, Gershon T, Bojarczuk NA, Guha S. Epitaxial growth of kesterite Cu2ZnSnS4 on a Si (001) substrate by thermal co-evaporation. Thin Solid Films. 2014;556:9-12.

Oishi K, Saito G, Ebina K, Nagahashi M, Jimbo K, Maw WS, et al. Growth of Cu2ZnSnS4 thin films on Si (100) substrates by multisource evaporation. Thin Solid Films. 2008;517:1449-52.

Lunardi MM, Ho‐Baillie AWY, Alvarez‐Gaitan JP, Moore S, Corkish R. A life cycle assessment of perovskite/silicon tandem solar cells. Progress in Photovoltaics: Research and Applications. 2017;25:679-95.

Narasinha S, Rohatgi A. Optimized aluminum back surface field techniques for silicon solar cells. Photovoltaic Specialists Conference, Conference Record of the Twenty-sixth IEEE. 1997. p.63-6.

Hallam B, Payne D, Lausch D, Gläser M, Abbott M, Wenham S. Techniques for mitigating light-induced degradation (LID) in commercial silicon solar cells. Photovoltaics International. 2016.

Sopori B. Silicon solar-cell processing for minimizing the influence of impurities and defects. Journal of Electronic Materials. 2002;31:972-80.

Curran MA. Life Cycle Assessment Student Handbook: John Wiley & Sons; 2015.

Lunardi MM, Moore S, Alvarez-Gaitan JP, Yan C, Hao X, Corkish R. A comparative life cycle assessment of chalcogenide/Si tandem solar modules. Energy. 2018.

Lunardi MM, Moore S, Alvarez-Gaitan J, Chang NL, Corkish R. Life Cycle Assessment on Advanced Silicon Solar Modules. Asia-Pacific Solar Research Conference. Melbourne. 2017.

Lunardi MM, Alvarez-Gaitan J, Chang NL, Corkish R. Life cycle assessment on PERC solar modules. Solar Energy Materials and Solar Cells 2018;187:154-159.

Bhattacharya R, Ramanathan K. Cu(In,Ga)Se2 thin film solar cells with buffer layer alternative to CdS. Solar Energy. 2004;77:679-83.

Chelvanathan P, Hossain MI, Amin N. Performance analysis of copper–indium–gallium–diselenide (CIGS) solar cells with various buffer layers by SCAPS. Current Applied Physics. 2010;10:S387-S91.

Kushiya K, Nii T, Sugiyama I, Sato Y, Inamori Y, Takeshita H. Application of Zn-compound buffer layer for polycrystalline CuInSe2-based thin-film solar cells. Japanese journal of applied physics. 1996;35:4383.

Asaduzzaman M, Hosen MB, Ali MK, Bahar AN. Non-Toxic Buffer Layers in Flexible Cu(In,Ga)Se2 Photovoltaic Cell Applications with Optimized Absorber Thickness. International Journal of Photoenergy. 2017:8.

Tsunomura Y, Yoshimine Y, Taguchi M, Baba T, Kinoshita T, Kanno H, et al. Twenty-two percent efficiency HIT solar cell. Solar Energy Materials and Solar Cells. 2009;93:670-3.

Granata G, Pagnanelli F, Moscardini E, Havlik T, Toro L. Recycling of photovoltaic panels by physical operations. Solar Energy Materials and Solar Cells. 2014;123:239-48.

European Union. Directive 2012/19/EU of the European Parliament and of the Council of 4 July 2012 on waste electrical and electronic equipment (WEEE). Official Journal of the European Union. 2012:L 197/38-71.

State Council (Cabinet, hereafter SC) of the People's Republic of China (PRC). Waste Electrical and Electronic Products Recycling Regulations. Beijing, China. 2011.

Ministry of Economy Trade and Industry (METI); Ministry of Environment (MOE). Guidelines on End-of-Life Management of PV Modules. Tokyo. Japan. 2015.

Ministry of Environment, Forest and Climate Change. Solid Waste Management Rules and Hazardous and Other Wastes (Management and Transboundary Movement) Rules. Gazette of India, Part II, Section 3. 2016.

The Australian Government. Product Stewardship Act 2011. October 2010.

United States Environmental Protection Agency. Recovery Act of 1976, 42 USC 6901. 1976.

Japan Photovoltaic Energy Association (JPEA). Guidelines for Proving Information for Proper Treatment of Used Solar Cell Modules. 2017.

California Legislative Information. Department of Toxic Substances Control. Senate Bill No. 489 - Hazardous waste: photovoltaic modules. 2015.

Perinotto T. 12 agenda items from state and territory enviro pollies and why they matter. The Fifth Estate. 2017.

IRENA and IEA-PVPS. End-of-Life Management: Solar Photovoltaic Panels. International Renewable Energy Agency and International Energy Agency Photovoltaic Power Systems.Heath SWAWG. End-of-life management Solar Photovoltaic Panels. 2016.

Monier V, Hestin M. Study on photovoltaic panels supplementing the impact assessment for a recast of the WEEE directive. Final Report, ENV G. 2011;4:6.

FirstSolar. URL: <http://www.firstsolar.com/> Accessed in: 30 June 2017.

Assia Biomass Office. Start of Examinations for Recycling Solar Panels. URL: < https://www.asiabiomass.jp/english/topics/1510_01.html> Accessed in: 08 June 2017.

Kadro JM, Pellet N, Giordano F, Ulianov A, Müntener O, Maier J, et al. Proof-of-concept for facile perovskite solar cell recycling. Energy & Environmental Science. 2016;9:3172-9.

PV Cycle. Breakthrough in PV module recycling. Brussels. URL: < http://www.pvcycle.org/press/breakthrough-in-pv-module-recycling/> Accessed in 15 March 2018. February 18th, 2016.

Kenning T. PV Cycle achieves record 96% recycle rate for silicon-based PV modules. URL: < https://www.pv-tech.org/news/pv-cycle-achieves-record-96-recycle-rate-for-silicon-based-pv-modules> Accessed in 10 June 2018. 2016.

Wang T-Y, Hsiao J-C, Du C-H. Recycling of materials from silicon base solar cell module. Photovoltaic Specialists Conference (PVSC), 2012 38th IEEE. 2012. p. 002355-8.

Komoto K. Developments on PV Recycling in Japan. 24th European Photovoltaic Solar Energy Conference. Hamburg. 2014.

Kang S, Yoo S, Lee J, Boo B, Ryu H. Experimental investigations for recycling of silicon and glass from waste photovoltaic modules. Renewable Energy. 2012;47:152-9.

Doi T, Tsuda I, Unagida H, Murata A, Sakuta K, Kurokawa K. Experimental study on PV module recycling with organic solvent method. Solar energy materials and solar cells. 2001;67:397-403.

Park J, Park N. Wet etching processes for recycling crystalline silicon solar cells from end-of-life photovoltaic modules. RSC Advances. 2014;4:34823-9.

Latunussa CE, Ardente F, Blengini GA, Mancini L. Life Cycle Assessment of an innovative recycling process for crystalline silicon photovoltaic panels. Solar Energy Materials and Solar Cells. 2016;156:101-11.

Mark A.J. Huijbregts, Zoran J.N. Steinmann, Pieter M.F. Elshout, Gea Stam, Francesca Verones, Marisa Vieira, et al. ReCiPe2016: a harmonized life cycle impact assessment method at midpoint and endpoint level. 2016.

Downloads

Published

2019-05-07

Issue

Section

Articles