Recycling and recovery of spent copper—indium—gallium—diselenide (CIGS) solar cells: A review
Xiang Li , Baozhong Ma , Chengyan Wang , Die Hu , Yingwei Lü , Yongqiang Chen
International Journal of Minerals, Metallurgy, and Materials ›› 2023, Vol. 30 ›› Issue (6) : 989 -1002.
Recycling and recovery of spent copper—indium—gallium—diselenide (CIGS) solar cells: A review
Copper—indium—gallium—diselenide (CIGS) is a fast-evolving commercial solar cell. The firm demand for global carbon reduction and the rise of potential environmental threats necessitate spent CIGS solar cell recycling. In this paper, the sources and characteristics of valuable metals in spent CIGS solar cells were reviewed. The potential environmental impacts of CIGS, including service life, critical material, and material toxicity, were outlined. The main recovery methods of valuable metals in the various types of spent CIGS, including hydrometallurgy, pyrometallurgy, and comprehensive treatment processes, were compared and discussed. The mechanism of different recovery processes was summarized. The challenges faced by different recycling processes of spent CIGS were also covered in this review. Finally, the economic viability of the recycling process was assessed. The purpose of this review is to provide reasonable suggestions for the sustainable development of CIGS and the harmless disposal of spent CIGS.
spent solar cells / recycling technology / valuable component separation / metallurgy progress / urban mining
| [1] |
P. Yilmaz, J. Schmitz, and M. Theelen, Potential induced degradation of CIGS PV systems: A literature review, Renewable Sustainable Energy Rev., 154(2022), art. No. 111819. |
| [2] |
A.K. Patel, R. Mishra, and S.K. Soni, Performance enhancement of CIGS solar cell with two dimensional MoS2 hole transport layer, Micro Nanostructures, 165(2022), art. No. 207195. |
| [3] |
|
| [4] |
|
| [5] |
|
| [6] |
|
| [7] |
|
| [8] |
Y.J. Zhou, J.W. Li, H. Rechberger, et al., Dynamic criticality of by-products used in thin-film photovoltaic technologies by 2050, J. Clean. Prod., 263(2020), art. No. 121599. |
| [9] |
|
| [10] |
|
| [11] |
J.E. De-la-Cruz-Moreno, A.E. Ceniceros-Gómez, O. Morton-Bermea, and E. Hernández-Álvarez, Recovery of indium from jarosite residues of zinc refinery by a hydrometallurgical process, Hydrometallurgy, 203(2021), art. No. 105697. |
| [12] |
|
| [13] |
K.F. Zhang, L.L. Qiu, J.Z. Tao, et al., Recovery of gallium from leach solutions of zinc refinery residues by stepwise solvent extraction with N235 and Cyanex 272, Hydrometallurgy, 205(2021), art. No. 105722. |
| [14] |
|
| [15] |
|
| [16] |
|
| [17] |
|
| [18] |
|
| [19] |
|
| [20] |
|
| [21] |
|
| [22] |
|
| [23] |
|
| [24] |
|
| [25] |
A. Urbina, The balance between efficiency, stability and environmental impacts in perovskite solar cells: A review, J. Phys. Energy, 2(2020), No. 2, art. No. 022001. |
| [26] |
S. Resalati, T. Okoroafor, A. Maalouf, E. Saucedo, and M. Placidi, Life cycle assessment of different chalcogenide thin-film solar cells, Appl. Energy, 313(2022), art. No. 118888. |
| [27] |
|
| [28] |
|
| [29] |
|
| [30] |
|
| [31] |
|
| [32] |
|
| [33] |
|
| [34] |
|
| [35] |
|
| [36] |
|
| [37] |
A.K. Tan, N.A. Hamzah, M.A. Ahmad, S.S. Ng, and Z. Hassan, Recent advances and challenges in the MOCVD growth of indium gallium nitride: A brief review, Mater. Sci. Semicond. Process., 143(2022), art. No. 106545. |
| [38] |
V. Kashyap and P. Taylor, Extraction and recovery of zinc and indium from residue rich in zinc ferrite, Miner. Eng., 176(2022), art. No. 107364. |
| [39] |
|
| [40] |
S. Padhy, V. Kumar, N.B. Chaure, and U.P. Singh, Impact of germanium nano layer on the CZTSe absorber layer properties, Mater. Sci. Semicond. Process., 138(2022), art. No. 106276. |
| [41] |
|
| [42] |
|
| [43] |
|
| [44] |
|
| [45] |
|
| [46] |
|
| [47] |
J.P. Namahoro, Q.S. Wu, and H. Su, The copper production and economic growth nexus across the regional and global levels, Resour. Policy, 76(2022), art. No. 102583. |
| [48] |
|
| [49] |
W. Tefera, L. Tang, L.L. Lu, R.H. Xie, W. Seifu, and S.K. Tian, Rice cultivars significantly mitigate cadmium accumulation in grains and its bioaccessibility and toxicity in human HL-7702 cells, Environ. Pollut., 272(2021), art. No. 116020. |
| [50] |
F.F. Jaldurgam, Z. Ahmad, F. Touati, et al., Enhancement of thermoelectric properties of low-toxic and earth-abundant copper selenide thermoelectric material by microwave annealing, J. Alloys Compd., 904(2022), art. No. 164131. |
| [51] |
|
| [52] |
E.M. Bomhard, The toxicology of gallium oxide in comparison with gallium arsenide and indium oxide, Environ. Toxicol. Pharmacol., 80(2020), art. No. 103437. |
| [53] |
|
| [54] |
|
| [55] |
|
| [56] |
|
| [57] |
|
| [58] |
|
| [59] |
F.W. Liu, T.M. Cheng, Y.J. Chen, et al., High-yield recycling and recovery of copper, indium, and gallium from waste copper indium gallium selenide thin-film solar panels, Sol. Energy Mater. Sol. Cells, 241(2022), art. No. 111691. |
| [60] |
|
| [61] |
|
| [62] |
K. Kushiya, M. Ohshita, and M. Tanaka, Development of recycling and reuse technologies for large-area Cu(InGa)Se2-based thin-film modules, [in] Proceedings of the 3rd World Conference on Photovoltaic Energy Conversion, Osaka, 2003, p. 1892. |
| [63] |
|
| [64] |
|
| [65] |
W.T. Xu, Q. Song, G.C. Song, and Q. Yao, The vapor pressure of Se and SeO2 measurement using thermogravimetric analysis, Thermochim. Acta, 683(2020), art. No. 178480. |
| [66] |
|
| [67] |
J. Yang, Z.L. Zhang, G. Zhang, et al., Process study of chloride roasting and water leaching for the extraction of valuable metals from spent lithium-ion batteries, Hydrometallurgy, 203(2021), art. No. 105638. |
| [68] |
R. Panda, K.K. Pant, T. Bhaskar, and S.N. Naik, Dissolution of brominated epoxy resin for environment friendly recovery of copper as cupric oxide nanoparticles from waste printed circuit boards using ammonium chloride roasting, J. Clean. Prod., 291(2021), art. No. 125928. |
| [69] |
|
| [70] |
|
| [71] |
H. Chen, J.F. He, L.T. Zhu, et al., Eco-friendly oxidation leaching from chalcopyrite powder and kinetics assisted by sodium chloride in organic acid media, Adv. Powder Technol., 33(2022), No. 5, art. No. 103547. |
| [72] |
|
| [73] |
|
| [74] |
|
| [75] |
D. Hu, B.Z. Ma, X. Li, Y.W. Lv, Y.Q. Chen, and C.Y. Wang, Innovative and sustainable separation and recovery of valuable metals in spent CIGS materials, J. Clean. Prod., 350(2022), art. No. 131426. |
| [76] |
D. Hu, B.Z. Ma, X. Li, et al., Efficient separation and recovery of gallium and indium in spent CIGS materials, Sep. Purif. Technol., 282(2022), art. No. 120087. |
| [77] |
X. Li, B.Z. Ma, D. Hu, Q.Q. Zhao, Y.Q. Chen, and C.Y. Wang, Efficient separation and purification of indium and gallium in spent copper indium gallium diselenide (CIGS), J. Clean. Prod., 339(2022), art. No. 130658. |
| [78] |
|
| [79] |
|
| [80] |
|
| [81] |
W. Wang, C. Zhang, B. Hu, et al., Influence of alkali element post-deposition treatment on the performance of the CIGS solar cells on flexible stainless steel substrates, Mater. Lett., 302(2021), art. No. 130410. |
| [82] |
M.W. Bouabdelli, F. Rogti, M. Maache, and A. Rabehi, Performance enhancement of CIGS thin-film solar cell, Optik, 216(2020), art. No. 164948. |
| [83] |
|
/
| 〈 |
|
〉 |