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A levelized cost of energy approach to select and optimise emerging PV technologies: The relative impact of degradation, cost and initial efficiency

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  • Nieto-Díaz, Balder A.
  • Crossland, Andrew F.
  • Groves, Christopher

Abstract

A model of levelized cost of energy (LCOE) is presented which accounts for the significant ‘burn-in’ losses common in photovoltaic (PV) devices with organic (OPV) and perovskite (PVK) absorber layers. This model is used to quantify the relative importance of burn-in, module cost and initial efficiency for a realistic grid-scale PV installation situated in Fiji. The effectiveness of improvements in PV technology in reducing LCOE is shown to depend critically upon the current status of the technology. Predictions of LCOE for specific state-of-the-art OPV and PVK devices sourced from the literature are presented, some of which are shown to have potential to compete at the grid scale. However, devices with state-of-the-art initial efficiencies are not necessarily those with state-of-the-art LCOE, emphasizing the need to characterize lifetime energy yield and for an LCOE approach to select the most promising candidate technologies.

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  • Nieto-Díaz, Balder A. & Crossland, Andrew F. & Groves, Christopher, 2021. "A levelized cost of energy approach to select and optimise emerging PV technologies: The relative impact of degradation, cost and initial efficiency," Applied Energy, Elsevier, vol. 299(C).
  • Handle: RePEc:eee:appene:v:299:y:2021:i:c:s0306261921007145
    DOI: 10.1016/j.apenergy.2021.117302
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    1. Jaemin Kong & Suhee Song & Minji Yoo & Ga Young Lee & Obum Kwon & Jin Kuen Park & Hyungcheol Back & Geunjin Kim & Seoung Ho Lee & Hongsuk Suh & Kwanghee Lee, 2014. "Long-term stable polymer solar cells with significantly reduced burn-in loss," Nature Communications, Nature, vol. 5(1), pages 1-8, December.
    2. Quinn Burlingame & Xiaheng Huang & Xiao Liu & Changyeong Jeong & Caleb Coburn & Stephen R. Forrest, 2019. "Intrinsically stable organic solar cells under high-intensity illumination," Nature, Nature, vol. 573(7774), pages 394-397, September.
    3. G. Grancini & C. Roldán-Carmona & I. Zimmermann & E. Mosconi & X. Lee & D. Martineau & S. Narbey & F. Oswald & F. De Angelis & M. Graetzel & Mohammad Khaja Nazeeruddin, 2017. "One-Year stable perovskite solar cells by 2D/3D interface engineering," Nature Communications, Nature, vol. 8(1), pages 1-8, August.
    4. Derya Baran & Nicola Gasparini & Andrew Wadsworth & Ching Hong Tan & Nimer Wehbe & Xin Song & Zeinab Hamid & Weimin Zhang & Marios Neophytou & Thomas Kirchartz & Christoph J. Brabec & James R. Durrant, 2018. "Robust nonfullerene solar cells approaching unity external quantum efficiency enabled by suppression of geminate recombination," Nature Communications, Nature, vol. 9(1), pages 1-9, December.
    5. Zhiping Wang & Qianqian Lin & Francis P. Chmiel & Nobuya Sakai & Laura M. Herz & Henry J. Snaith, 2017. "Efficient ambient-air-stable solar cells with 2D–3D heterostructured butylammonium-caesium-formamidinium lead halide perovskites," Nature Energy, Nature, vol. 2(9), pages 1-10, September.
    6. Jin-Wook Lee & Zhenghong Dai & Tae-Hee Han & Chungseok Choi & Sheng-Yung Chang & Sung-Joon Lee & Nicholas De Marco & Hongxiang Zhao & Pengyu Sun & Yu Huang & Yang Yang, 2018. "2D perovskite stabilized phase-pure formamidinium perovskite solar cells," Nature Communications, Nature, vol. 9(1), pages 1-10, December.
    7. Tomas Leijtens & Giles E. Eperon & Sandeep Pathak & Antonio Abate & Michael M. Lee & Henry J. Snaith, 2013. "Overcoming ultraviolet light instability of sensitized TiO2 with meso-superstructured organometal tri-halide perovskite solar cells," Nature Communications, Nature, vol. 4(1), pages 1-8, December.
    8. Jing Wang & Jie Zhang & Yingzhi Zhou & Hongbin Liu & Qifan Xue & Xiaosong Li & Chu-Chen Chueh & Hin-Lap Yip & Zonglong Zhu & Alex K. Y. Jen, 2020. "Highly efficient all-inorganic perovskite solar cells with suppressed non-radiative recombination by a Lewis base," Nature Communications, Nature, vol. 11(1), pages 1-9, December.
    9. Tran, Thomas T.D. & Smith, Amanda D., 2018. "Incorporating performance-based global sensitivity and uncertainty analysis into LCOE calculations for emerging renewable energy technologies," Applied Energy, Elsevier, vol. 216(C), pages 157-171.
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    2. Vera A. Barinova & Kseniya V. Demidova, 2023. "Economic Feasibility of Solar Energy in Russia [Экономическая Целесообразность Развития Солнечной Энергетики В России]," Russian Economic Development, Gaidar Institute for Economic Policy, issue 10, pages 18-31, October.
    3. Zakariya M. Dalala & Saba Z. AlAqbani & Dima R. Khirfan & Layth H. Alhamad & Mohammad Al-Addous & Nesrine Barbana, 2022. "Analysis and Design Methodology of a Novel Integration Topology of Storageless Off-Grid PV Systems," Energies, MDPI, vol. 15(4), pages 1-18, February.
    4. Yun, Min Ju & Sim, Yeon Hyang & Lee, Dong Yoon & Cha, Seung I., 2022. "Reliable Lego®-style assembled stretchable photovoltaic module for 3-dimensional curved surface application," Applied Energy, Elsevier, vol. 323(C).

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