Yang, L.; Lu, W.; Li, J.; Chen, S.; Liu, T.; Yuan, D.; Wang, Y.; Zhu, J.; Yan, H.; Zhang, Y.;
et al. UV-Engineered Oxygen Vacancies in MoOX Interlayers Enable 24.15% Efficiency for Crystalline Silicon Solar Cells. Materials 2025, 18, 5167.
https://doi.org/10.3390/ma18225167
AMA Style
Yang L, Lu W, Li J, Chen S, Liu T, Yuan D, Wang Y, Zhu J, Yan H, Zhang Y,
et al. UV-Engineered Oxygen Vacancies in MoOX Interlayers Enable 24.15% Efficiency for Crystalline Silicon Solar Cells. Materials. 2025; 18(22):5167.
https://doi.org/10.3390/ma18225167
Chicago/Turabian Style
Yang, Linfeng, Wanyu Lu, Jingjie Li, Shaopeng Chen, Tinghao Liu, Dayong Yuan, Yin Wang, Ji Zhu, Hui Yan, Yongzhe Zhang,
and et al. 2025. "UV-Engineered Oxygen Vacancies in MoOX Interlayers Enable 24.15% Efficiency for Crystalline Silicon Solar Cells" Materials 18, no. 22: 5167.
https://doi.org/10.3390/ma18225167
APA Style
Yang, L., Lu, W., Li, J., Chen, S., Liu, T., Yuan, D., Wang, Y., Zhu, J., Yan, H., Zhang, Y., & Kang, Q.
(2025). UV-Engineered Oxygen Vacancies in MoOX Interlayers Enable 24.15% Efficiency for Crystalline Silicon Solar Cells. Materials, 18(22), 5167.
https://doi.org/10.3390/ma18225167