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Optical modelling and energy-yield assessment of UV down-shifting layers for high-efficiency TOPCon solar modules
ID
Lipovšek, Benjamin
(
Avtor
),
ID
Tomšič, Špela
(
Avtor
),
ID
Rochat, Nicolas Frédéric
(
Avtor
),
ID
Marthey, Lison
(
Avtor
),
ID
Li, Hengyu
(
Avtor
),
ID
Escarre Palou, Jordi
(
Avtor
),
ID
Petri, Delphine
(
Avtor
),
ID
Levrat, Jacques
(
Avtor
),
ID
Ollagnon, Florian
(
Avtor
),
ID
Despeisse, Matthieu
(
Avtor
),
ID
Haug, Franz-Josef
(
Avtor
),
ID
Faes, Antonin
(
Avtor
),
ID
Ballif, Christophe
(
Avtor
),
ID
Topič, Marko
(
Avtor
)
PDF - Predstavitvena datoteka,
prenos
(6,63 MB)
MD5: CEE421815D4A8BD0B02810D2D49CC1FC
URL - Izvorni URL, za dostop obiščite
https://www.sciencedirect.com/science/article/pii/S0927024826005891
Galerija slik
Izvleček
The transition of the photovoltaic industry towards n-type TOPCon technology has increased interest in ultraviolet (UV)-induced degradation mechanisms affecting both solar cells and module materials. While conventional UV absorbers can mitigate degradation, they also reduce photocurrent generation by removing a portion of the incident solar spectrum. Luminescent UV down-shifting (UVDS) layers offer an alternative approach by absorbing harmful UV photons and re-emitting them at longer wavelengths, where silicon solar cells exhibit higher conversion efficiency. In this work, we present an experimentally calibrated and validated comprehensive optical modelling framework for simulation of UVDS layers integrated into n-type TOPCon solar cells and modules. The model was calibrated using experimentally characterized UVDS layers based on luminescent dyes embedded in a polyolefin elastomer matrix and validated through comparison with measured external quantum efficiency data. Parametric simulations identified dye concentration and photoluminescent quantum yield as the key parameters governing UVDS performance. The results show that UVDS layers capable of absorbing approximately 90% of incident UV radiation introduce photocurrent losses below 1%, while providing more than 2% photocurrent gain relative to conventional UV-blocking layers with comparable absorption characteristics. The validated modelling framework was further applied to long-term energy-yield simulations and realistic module geometries, demonstrating its usefulness for the analysis and optimization of UVDS-enhanced photovoltaic devices and modules.
Jezik:
Angleški jezik
Ključne besede:
luminescent UV down-shifting
,
TOPCon solar cells
,
optical modelling
,
photoluminescence
,
spectral conversion
,
energy yield
,
UV-induced degradation
Vrsta gradiva:
Članek v reviji
Tipologija:
1.01 - Izvirni znanstveni članek
Organizacija:
FE - Fakulteta za elektrotehniko
Status publikacije:
Objavljeno
Različica publikacije:
Objavljena publikacija
Leto izida:
2027
Št. strani:
11 str.
Številčenje:
Vol. 309, art. 114748
PID:
20.500.12556/RUL-189589
UDK:
621.383.51
ISSN pri članku:
1879-3398
DOI:
10.1016/j.solmat.2026.114748
COBISS.SI-ID:
294522883
Datum objave v RUL:
09.10.2026
Število ogledov:
17
Število prenosov:
0
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Objavi na:
Gradivo je del revije
Naslov:
Solar energy materials and solar cells
Skrajšan naslov:
Sol. energy mater. sol. cells
Založnik:
Elsevier
ISSN:
1879-3398
COBISS.SI-ID:
23165957
Licence
Licenca:
CC BY 4.0, Creative Commons Priznanje avtorstva 4.0 Mednarodna
Povezava:
http://creativecommons.org/licenses/by/4.0/deed.sl
Opis:
To je standardna licenca Creative Commons, ki daje uporabnikom največ možnosti za nadaljnjo uporabo dela, pri čemer morajo navesti avtorja.
Sekundarni jezik
Jezik:
Slovenski jezik
Ključne besede:
luminiscenčna UV pretvorba navzdol
,
TOPCon sončne celice
,
optično modeliranje
,
fotoluminiscenca
,
spektralna pretvorba
,
energijski izplen
,
UV degradacija
Projekti
Financer:
ARIS - Javna agencija za znanstvenoraziskovalno in inovacijsko dejavnost Republike Slovenije
Številka projekta:
P2-0415
Naslov:
Fotovoltaika in elektronika
Financer:
EC - European Commission
Številka projekta:
101136094
Naslov:
Sustainable Photovoltaics Integration in buildings and Infrastructure for multiple applications
Akronim:
SPHINX
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