2022
DOI: 10.1002/adma.202110518
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Upcycling Silicon Photovoltaic Waste into Thermoelectrics

Abstract: Two decades after the rapid expansion of photovoltaics, the number of solar panels reaching end‐of‐life is increasing. While precious metals such as silver and copper are usually recycled, silicon, which makes up the bulk of a solar cells, goes to landfills. This is due to the defect‐ and impurity‐sensitive nature in most silicon‐based technologies, rendering it uneconomical to purify waste silicon. Thermoelectrics represents a rare class of material in which defects and impurities can be engineered to enhance… Show more

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Cited by 39 publications
(25 citation statements)
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“…Our delivered strategy, which realized cost-effective, high-output, f-TEs, is facile, universal, and fundamentally different from traditional approaches. In recent years, although the material cost of TE devices has been reduced by using abundant elements (e.g., Mg 3 Sb 2 , SnS, SnSe, half-Heusler compounds, silicide, and polymers) ( 5 , 9 , 14 , 51 55 ), the industrialization remains challenging. Since no headway has been made so far in their corresponding large-scale production process, and their demands/markets are unclear ( 33 , 56 ), academia and industry are urged to diversify their research focus past the one-and-only commercialized room temperature Bi 2 Te 3 materials.…”
Section: Resultsmentioning
confidence: 99%
“…Our delivered strategy, which realized cost-effective, high-output, f-TEs, is facile, universal, and fundamentally different from traditional approaches. In recent years, although the material cost of TE devices has been reduced by using abundant elements (e.g., Mg 3 Sb 2 , SnS, SnSe, half-Heusler compounds, silicide, and polymers) ( 5 , 9 , 14 , 51 55 ), the industrialization remains challenging. Since no headway has been made so far in their corresponding large-scale production process, and their demands/markets are unclear ( 33 , 56 ), academia and industry are urged to diversify their research focus past the one-and-only commercialized room temperature Bi 2 Te 3 materials.…”
Section: Resultsmentioning
confidence: 99%
“…11 The value-added conversion of EoL Si from PVs to thermoelectric was carried out by doping (1% Ge and 4% P) followed by spark plasma sintering (1150 °C, 5 min, 50 MPa). 84 An integrated crystalline silicon cell regeneration process was developed by nondestructive cell recovery, wafer prepurification, ultrapurification, and texturing. 76 However, the reutilization of cells is not straightforward.…”
Section: Toxicity Characteristicsmentioning
confidence: 99%
“…[36][37][38][39][40][41] However, besides zT, the overall performance of a TEG also depends on other factors such as the quality of electrical and thermal contacts. [42][43][44][45][46][47][48] Therefore, the device encapsulation matrix plays a key role, not only in supporting the mechanical robustness and imparting exibility but also as a ller for the thermal and electrical insulation of the nal device. [49][50][51] Traditionally, once these devices are integrated, it is very tedious to separate the exible polymer matrix from the inorganic TE legs.…”
Section: Introductionmentioning
confidence: 99%