Organik fotoelementlarning moslashuvchanligini oshirish

Авторы

  • Pokiza Jalolova Автор

DOI:

https://doi.org/10.5281/zenodo.22293284

Аннотация

Maqolada organik fotoelementlarning mukammal mexanik moslashuvchanligini oshirish uslublari yoritilgan.
Plyonkali polimer fotoelement tizimlarining mexanik barqarorligini oshirishga qaratilgan joriy strategiyalar keltirilgan, bu
PM6-ga asoslangan tizimlardan foydalangan holda tegishli misollar tanlash orqali ko‘rsatilgan. Cho‘ziluvchanlikni yaxshilash
uchun uchinchi komponentlarni, jumladan, yangi polimer donorlari/akseptorlari va izolyatsiyalangan polimerlarni
joriy qilishning umumiy uslublari o‘rganilgan

Ключевые слова

polimer, PM6, donor, akseptor, izolyatsiya, fotoelement, mexanik moslashuvchanlik

Биография автора

  • Pokiza Jalolova

    Shahrisabz davlat pedagogika instituti professori, p.f.d. (DSc), professor

Библиографические ссылки

1. Park JS, Kim GU, Lee S, et al. Material design and device fabrication strategies for stretchable organic solar cells. Adv

Mater, 2022, 34: 2201623.

2. Qin J, Lan L, Chen S, et al. Recent progress in flexible and stretchable organic solar cells. Adv Funct Mater, 2020, 30:

2002529.

3. Li Y, Xu G, Cui C, et al. Flexible and semitransparent organic solar cells. Adv Energy Mater, 2018, 8: 1701791.

4. Lee C, Lee S, Kim GU, et al. Recent advances, design guidelines, and prospects of all-polymer solar cells. Chem Rev,

2019, 119: 8028–8086.

5. Xie C, Jiang X, Zhu Q, et al. Mechanical robust flexible single-component organic solar cells. Small Methods, 2021,

5: e2100481.

6. Xie C, Xiao C, Fang J, et al. Core/shell AgNWs@SnO x electrodes for high performance flexible indoor organic solar

cells with >25% efficiency. Nano Energy, 2023, 107: 108153.

7. Huang S, Qian C, Liu X, et al. A review on flexible solar cells. Sci China Mater, 2024, 67: 2717–2736.

8. Fu J, Yang Q, Huang P, et al. Rational molecular and device design enables organic solar cells approaching 20%

efficiency. Nat Commun, 2024, 15: 1830.

9. Lee JW, Sun C, Lee J, et al. Design of star-shaped trimer acceptors for high-performance (efficiency > 19%), photostable,

and mechanically robust organic solar cells. Adv Energy Mater, 2024, 14: 2303872.

10. Kim T, Kim JH, Kang TE, et al. Flexible, highly efficient all-polymer solar cells. Nat Commun, 2015, 6: 8547.

11. Zhang J. et al. Material insights and challenges for non-fullerene organic solar cells based on small molecular acceptors

// Nature Energy. – 2018. – Т. 3. – № 9. – С. 720–731.

12. Duan L. et al. Trade-off between exciton dissociation and carrier recombination and dielectric properties in Y6-sensitized

nonfullerene ternary organic solar cells // Energy Technology. – 2020. – Т. 8. – № 1. – С. 1900924.

13. Duan L. et al. Non-fullerene-derivative-dependent dielectric properties in high-performance ternary organic solar cells

// IEEE Journal of Photovoltaics. – 2019. – Т. 9. – № 4. – С. 1031–1039.

14. Kang H. et al. Bulk-heterojunction organic solar cells: five core technologies for their commercialization // Advanced

Materials. – 2016. – Т. 28. – № 36. – С. 7821–7861.

15. Du X. et al. Efficient polymer solar cells based on non-fullerene acceptors with potential device lifetime approaching 10

years // Joule. – 2019. – Т. 3. – № 1. – С. 215–226.

Загрузки

Опубликован

2026-09-02

Как цитировать

Organik fotoelementlarning moslashuvchanligini oshirish. (2026). «Maktabgacha Va Maktab ta’limi» Jurnali, 4(9), 49-53. https://doi.org/10.5281/zenodo.22293284

Страницы

49-53

Цитирование

Открыть в Google Scholar
Том 4 № 9 (2026): «Maktabgacha va maktab ta’limi» jurnali 9-son