Submitted:
12 July 2025
Posted:
14 July 2025
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Abstract
Keywords:
1. Introduction
2. Baground of the Study
3. Methods
4. Results and Discussion
4.1. Very Low Degradation Rate of Encapsulated PDMS PV Panels/Generators
4.2. Low Costs of the New Recycling Method
5. Conclusion
- A brief review of the long-term (26–30 years) degradation rates of PV panels encapsulated/laminated with the PDMS encapsulation material revealed very low degradation rates ranging from -0.15% to -0.22%, as shown in Table 3.
- The main advantages of the new recycling process are as follows:
- Environmentally sustainable - Recycling efficiency 95–98% (usual recycling efficiency ~15–90%, Table 2)
- Very simple mechanical delamination/disassembly at room temperature
- Low cost – More than two times less expensive recycling (compared with usual recycling)
- 3.
- Finally, the very low annual degradation rate of encapsulated PDMS PV generators/panels shown in Table 3 reduces the number of PV panels recycled in a given year by at least a factor of three (up to 4 times). The replacement of PV power plants after 10 years of operation will increase PV panel waste ~20 times in the near future. Owing to the unique synergistic combination of a low degradation rate (reduced PV waste production) and high recycling efficiency, final PV waste production can be greatly reduced (~114 times) when soft gel PDMS lamination PV technology is used (see Table 4).
Funding
Conflicts of interest
References
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| Type/design |
EVA/POE laminated PV panel Glass/polymer film |
PDMS laminated PV panel Glass/glass |
| Glass sheet (3.2 mm) remelting [15 kg] | ~169 | 0(glass sheet reuse) |
| Alu. frame (35 mm) remelting [2 kg] | ~95 | ~95 |
| Polymer J-box remelting [~0.5 kg] | ~10 | ~10 |
| c-Si solar cells remelting [0.8 kg] | ~10 | ~10 |
| TOTAL ENERGY CONSUMPTION | ~280MJ | ~110MJ |
| EVA/POE laminated glass/TPT PVpanel Panel weight ~24 kg, area 2 square meters | PDMS laminated glass/glass PV panel Panel weight ~37 kg, area 2 square meters |
|
| Front glass sheet [15 kg] | Glass crushing and remelting [15 kg glass grit emissions] |
Glass sheet direct reuse [15 kg] NO crushing - NO emissions |
| Back sheet (glass or polymer) | Polymer/TPT film burning [+2 kg burning gas emissions] Burning |
Glass sheet direct reuse [15 kg] NO burning - NO emissions |
| Encapsulant [3 kg] | EVA/POE etching (or burning) [+3 kg etching emissions-acids] |
PDMS gel-electron beam polymerization NO etching/burning - NO emissions |
| Polymer J-box [~0.5 kg] | Remelting NO emissions |
Remelting NO emissions |
| Aluminum frame [2 kg] | Remelting NO emissions |
Remelting NO emissions |
| c-Si solar cells [0.8 kg] | Remelting - metallurgical silicon NO emissions |
Remelting- metallurgical silicon NO emissions |
| DIRECT REUSE | 0 kg | 30 kg (81% weight) |
| DIRECT EMISSIONS | +20 kg (83% weight) | 0 kg |
| RECYCLIG EFFICIENCY | ~15÷90% | ~95÷98% |
| Location | Panels supplier | PV laminate | Si cells | Annual degradation (%) | Evaluation Period |
|
Italy, Ispra (Lopez-Garcia et al., 2015) |
Arco | Glass/glass | Mono-c. | -0.15 | 1984-2014 (30 years) |
|
USA, MD (Ketola et al., 2008) |
BP Solar | Glass/polymer | Poly-c. | -0.21 | 1982-2008 (26 years) |
|
Japan, Nara (Ito et al., 2012) |
Sharp | Glass/polymer | Mono-c. | -022 | 1983- 2012 (29 years) |
| Waste quantity Year 2030 (Mt) |
Best recycling efficiency (%) | Final waste quantity (Mt) | Final waste quantity ratio | |
| “Regular-loss” lamination- (e.g. PDMS) (IRENA, 2016) | 1.7 | 98 | 0.035 | 1 |
| “Early-loss” standard EVA lamination (IRENA, 2016) Repowering after 10 years (IEA 2021) |
8.0 ~ 40 |
90 90 |
0.8 4.0 |
23 114 |
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