Research of charge carrier transfer processes in films of colloidal quantum dots of CsPbBr3 perovskites by pump-probe spectroscopy
- Authors: Galyshko A.A.1, Lochin G.A.2,1, Pevtsov D.N.2,1, Aybush A.V.3, Gostev F.E.3, Shelaev I.V.3, Nadtochenko V.A.3,4, Brichkin S.B.2,1, Razumov V.F.2,1
-
Affiliations:
- Moscow Institute of Physics and Technology (National Research University)
- Federal Research Center for Problems of Chemical Physics and Medicinal Chemistry, Russian Academy of Sciences
- Federal Research Centre for Chemical Physics named after N.N. Semenov, Russian Academy of Sciences
- Lomonosov Moscow State University
- Issue: Vol 58, No 6 (2024)
- Pages: 447-455
- Section: PHOTONICS
- URL: https://kld-journal.fedlab.ru/0023-1193/article/view/681211
- DOI: https://doi.org/10.31857/S0023119324060045
- EDN: https://elibrary.ru/TIBWXC
- ID: 681211
Cite item
Abstract
Colloidal quantum dots of CsPbBr₃ perovskites have been synthesised. The average size and polydispersity of the nanocrystals were determined to be 8.3 nm and 16%, respectively. The nanocrystals were employed in the fabrication of thin films via two distinct methods: drop casting and spin coating. The process of charge carrier transport was investigated through the use of laser femtosecond pump-probe spectroscopy. A proposed interpretation of the time-dependent shift of the lumen peak is presented. The Einstein–Smoluchowski equation was employed to estimate the mobility of charge carriers in the films.
Full Text

About the authors
A. A. Galyshko
Moscow Institute of Physics and Technology (National Research University)
Email: pevtsov.dn@mipt.ru
Russian Federation, Dolgoprudnyi
G. A. Lochin
Federal Research Center for Problems of Chemical Physics and Medicinal Chemistry, Russian Academy of Sciences; Moscow Institute of Physics and Technology (National Research University)
Email: pevtsov.dn@mipt.ru
Russian Federation, Chernogolovka; Dolgoprudnyi
D. N. Pevtsov
Federal Research Center for Problems of Chemical Physics and Medicinal Chemistry, Russian Academy of Sciences; Moscow Institute of Physics and Technology (National Research University)
Author for correspondence.
Email: pevtsov.dn@mipt.ru
Russian Federation, Chernogolovka; Dolgoprudnyi
A. V. Aybush
Federal Research Centre for Chemical Physics named after N.N. Semenov, Russian Academy of Sciences
Email: pevtsov.dn@mipt.ru
Russian Federation, Moscow
F. E. Gostev
Federal Research Centre for Chemical Physics named after N.N. Semenov, Russian Academy of Sciences
Email: pevtsov.dn@mipt.ru
Russian Federation, Moscow
I. V. Shelaev
Federal Research Centre for Chemical Physics named after N.N. Semenov, Russian Academy of Sciences
Email: pevtsov.dn@mipt.ru
Russian Federation, Moscow
V. A. Nadtochenko
Federal Research Centre for Chemical Physics named after N.N. Semenov, Russian Academy of Sciences; Lomonosov Moscow State University
Email: pevtsov.dn@mipt.ru
Department of Chemistry
Russian Federation, Moscow; MoscowS. B. Brichkin
Federal Research Center for Problems of Chemical Physics and Medicinal Chemistry, Russian Academy of Sciences; Moscow Institute of Physics and Technology (National Research University)
Email: pevtsov.dn@mipt.ru
Russian Federation, Chernogolovka; Dolgoprudnyi
V. F. Razumov
Federal Research Center for Problems of Chemical Physics and Medicinal Chemistry, Russian Academy of Sciences; Moscow Institute of Physics and Technology (National Research University)
Email: pevtsov.dn@mipt.ru
Russian Federation, Chernogolovka; Dolgoprudnyi
References
- Akkerman Q.A., Rainò G., Kovalenko M.V. et al. // Nature materials. 2018. V. 17. № 5. P 394.
- Dey A., Ye J., De A., Debroye E. et al. // ACS nano. 2021. V. 15. № 7. P. 10775.
- de Weerd C., Gomez L., Zhang, H. et al. // J. Phys. Chem. C. 2016. V. 120. № 24. P. 13310.
- Song J., Li J., Li X. et al. Advanced Materials (Deerfield Beach, Fla.). 2015. V. 27. № 44. P. 7162.
- Wu X., Tan L. Z., Shen X. et al. // Science advances. 2017. V. 3. № 7. P. e1602388.
- Liu X., Zeng P., Chen S. et al. // Laser & Photonics Reviews. 2022. № 12 (16). P. 2200280.
- Mandal S., George L., Tkachenko N. V // Nanoscale. 2019. № 3 (11). P. 862.
- Proppe A.H, Jixian X., Randy P.S. et al. // Nano letters. 2018. V. 18. № 11. P. 7052.
- Lu Ch., Wright M.W., Ma X. et al. // Chemistry of Materials. 2019. V. 31. № 1. P. 62.
- Protesescu L., Yakunin S., Bodnarchuk M.I., et al // Nano Lett. 2015. V. 15. P. 3692.
- Kumawat N.K., Swarnkar A., Nag A. et al. // J. Phys. Chem. C. 2018. V. 122. № 25. P. 13767.
- Maes J., Balcaen L., Drijvers E. et al. // The Journal of Physical Chemistry Letters. 2018. V. 9. № 11. P. 3093.
- Tovstun S.A., Gadomska A.V., Spirin M.G. et al. // Journal of Luminescence. 2022. V. 252. P. 119420.
- Zhang Z., Sung J., Toolan D.T. et al. // Nature Materials. 2022. V. 21. № 5. P. 533.
- Gilmore R.H., Lee E.M., Weidman, M.C. et al. // Nano letters. 2017. V. 17. № 2. P. 893.
- Liu M., Verma S.D., Zhang Z. et al. // Nano Letters. 2021. V. 21. № 21. P. 8945.
Supplementary files
