Preview

Zhurnal Prikladnoii Spektroskopii

Advanced search
Open Access Open Access  Restricted Access Subscription Access

Optimization of Electronic Properties of Methylammonium Lead Bromide by Changing its Anionic Composition

Abstract

   Chlorine-substituted crystals of methylammonium lead bromide MAPbBr3–хClх, x = 0.01, …, 0.10, were synthesized. The effect of changing the anionic composition on their electrical properties was studied, and the optimal chlorine content was determined to achieve the desired conductivity characteristics. The electronic properties of MAPbBr3–хClх were studied using impedance spectroscopy and optical absorption spectroscopy. High-resolution NMR (1H) and powder X-ray diffraction were used to confirm the quality of the synthesis.

About the Authors

D. I. Sharafetdinov
Kazan Federal University; Institute of Applied Research of the Academy of Sciences of the Republic of Tatarstan
Russian Federation

Kazan



Е. М. Akhmetova
Kazan Federal University; Institute of Applied Research of the Academy of Sciences of the Republic of Tatarstan
Russian Federation

Kazan



Е. N. Dulov
Kazan Federal University; Institute of Applied Research of the Academy of Sciences of the Republic of Tatarstan
Russian Federation

Kazan



I. V. Lounev
Kazan Federal University
Russian Federation

Kazan



Kh. R. Khayarov
Kazan Federal University
Russian Federation

Kazan



А. А. Galiullin
Kazan Federal University
Russian Federation

Kazan



References

1. H. S. Jung. Small, 11, N 1 (2015) 10—25

2. S. Yakunin, M. Sytnyk, D. Kriegner, S. Shrestha, M. Richter, G. J. Matt, H. Azimi, C. J. Brabec, J. Stangl, M. V. Kovalenko, W. Heiss. Nature Photon., 9, N 7 (2015) 444—449

3. Y. Yuan, J. Huang. Accounts Chem. Res., 49, N 2 (2016) 286—293

4. H. Wei, D. DeSantis, W. Wei, Y. Deng, D. Guo, T. J. Savenije, L. Cao, J. Huang. Nature Mater., 16, N 8 (2017) 826—833

5. X. Zhang, J. Huang. J. Mater. Chem. C, 8, N 40 (2020) 13918—13952

6. E. Ghahremanirad, O. Almora, S. Suresh, A. A. Drew, T. H. Chowdhury, A. R. Uhl. Adv. Energy Mater., 13, N 30 (2023) 2204370

7. T. Q. Nguyen, C. Breitkopf. J. Electrochem. Soc., 165, N 14 (2018) 826—831

8. T. Bandara, B. E. Mellander. Ionic Liquids: Theory, Properties, New Approaches, 17, N 1 (2011) 383—406

9. R. Coelho. Physics of Dielectrics for the Engineer. Elsevier, 1 (2012)

10. J. Pospisil, L. Marackova, O. Zmeskal, A. Kovalenko. Appl. Phys. A, 129, N 2 (2023) 129

11. J. Il Jake Choi, L. K. Ono, H. Cho, K. J. Kim, H. B. Kang, Y. Qi, J. Y. Park. ACS Nano, 17, N 24 (2023) 25679—25688

12. L. Zhang, P. H. L. Sit. J. Phys. Chem. C, 119, N 39 (2015) 22370—22378

13. C. I. Ratcliffe. J. Phys. Chem., 94, N 1 (1990) 152—157

14. P. Pistor, T. Burwig, C. Brzuska, B. Weber, W. Fränzel. J. Mater. Chem. A, 6, N 24 (2018) 11496—11506

15. C. Wang, B. R. Ecker, H. Wei, J. Huang, Y. Gao.. J. Phys. Chem. C, 122, N 6 (2018) 3513—3522


Review

For citations:


Sharafetdinov D.I., Akhmetova Е.М., Dulov Е.N., Lounev I.V., Khayarov Kh.R., Galiullin А.А. Optimization of Electronic Properties of Methylammonium Lead Bromide by Changing its Anionic Composition. Zhurnal Prikladnoii Spektroskopii. 2026;93(3):357-362. (In Russ.)

Views: 23

JATS XML

ISSN 0514-7506 (Print)