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Публикации в базе данных Math-Net.Ru |
Цитирования |
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2025 |
| 1. |
M. I. Ustinova, G. V. Shilov, D. V. Korchagin, P. A. Troshin, S. M. Aldoshin, L. A. Frolova, “Towards stable wide-bandgap perovskite absorbers: controlling light-induced halide phase segregation in CsPbI<sub>2</sub>Br through partial lead substitution”, Mendeleev Commun., 35:5 (2025), 573–576 |
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| 2. |
M. I. Ustinova, G. V. Shilov, D. V. Korchagin, N. N. Dremova, P. A. Troshin, S. M. Aldoshin, L. A. Frolova, “Partial lead substitution as a tool to manage the light-induced recrystallization and photostability of mixed-cation lead halide perovskites”, Mendeleev Commun., 35:5 (2025), 569–572 |
| 3. |
E. A. Komissarova, S. A. Kuklin, N. A. Slesarenko, A. F. Latypova, A. F. Akbulatov, V. V. Ozerova, M. N. Kevreva, N. A. Emelianov, L. A. Frolova, P. A. Troshin, “Impact of fluorination on optoelectronic properties of thiophene-benzothiadiazole-based hole-transport polymers for perovskite solar cells”, Mendeleev Commun., 35:3 (2025), 327–330 |
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2024 |
| 4. |
E. A. Komissarova, S. A. Kuklin, A. F. Latypova, S. L. Nikitenko, V. V. Ozerova, M. N. Kevreva, N. A. Emelianov, L. A. Frolova, P. A. Troshin, “Novel dithieno[3,2-<em>f</em>:2',3'-<em>h</em>]quinoxaline-based polymers as hole transport materials for perovskite solar cells”, Mendeleev Commun., 34:5 (2024), 656–659 |
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| 5. |
N. N. Dremova, G. V. Shilov, P. A. Troshin, L. A. Frolova, “Stabilization of the perovskite phase of CsPbI<sub>3</sub> with isonipecotic acid”, Mendeleev Commun., 34:4 (2024), 481–483 |
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| 6. |
S. A. Kuklin, S. V. Safronov, A. S. Peregudov, E. A. Khakina, M. M. Babaskina, M. G. Ezernitskaya, O. Yu. Fedorovskii, E. S. Kobeleva, L. V. Kulik, L. A. Frolova, P. A. Troshin, A. R. Khokhlov, “New ethynediyl-linked perylene diimide/2,1,3-benzothiadiazole conjugates as electron transporting materials for perovskite solar cells”, Mendeleev Commun., 34:3 (2024), 316–320 |
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2023 |
| 7. |
S. A. Kuklin, S. V. Safronov, E. A. Khakina, A. G. Buyanovskaya, L. A. Frolova, P. A. Troshin, “New perylene diimide electron acceptors for organic electronics: Synthesis, optoelectronic properties and performance in perovskite solar cells”, Mendeleev Commun., 33:3 (2023), 314–317 |
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| 8. |
S. A. Kuklin, S. V. Safronov, O. Yu. Fedorovskii, E. A. Khakina, L. V. Kulik, D. E. Utkin, L. A. Frolova, P. A. Troshin, A. R. Khokhlov, “New small-molecular benzimidazole derivatives for photovoltaics: Synthesis, optical and electrochemical properties and application in perovskite solar cells”, Mendeleev Commun., 33:3 (2023), 306–310 |
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2021 |
| 9. |
D. V. Khudyakov, D. V. Ganin, A. D. Lyashedko, L. A. Frolova, P. A. Troshin, A. S. Lobach, “Thin films of MAPbI<sub>3</sub> and MA<sub>0.15</sub>FA<sub>0.75</sub>Cs<sub>0.1</sub>PbI<sub>3</sub> perovskites under femtosecond laser irradiation: nonlinear optical absorption and kinetics of photodegradation”, Mendeleev Commun., 31:4 (2021), 456–458 |
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| 10. |
Д. В. Худяков, Д. В. Ганин, А. Д. Ляшедько, Л. А. Фролова, П. А. Трошин, А. С. Лобач, “Нелинейное оптическое поглощение тонких пленок галогенидных перовскитов при фемтосекундном возбуждении на длинах волн 1064 и 532 нм”, Квантовая электроника, 51:3 (2021), 211–216 [D. V. Khudyakov, D. V. Ganin, A. D. Lyashedko, L. A. Frolova, P. A. Troshin, A. S. Lobach, “Nonlinear optical absorption in thin halide perovskite films under femtosecond excitation at wavelengths of 1064 and 532 nm”, Quantum Electron., 51:3 (2021), 211–216 ] |
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2016 |
| 11. |
A. A. Rezvanova, L. A. Frolova, P. A. Troshin, “Design of optical memory elements based on n-type organic field-effect transistors comprising a light-sensitive spirooxazine layer”, Mendeleev Commun., 26:1 (2016), 26–28 |
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2012 |
| 12. |
А. Б. Ярославцев, Ю. А. Добровольский, Н. С. Шаглаева, Л. А. Фролова, Е. В. Герасимова, Е. А. Сангинов, “Наноструктурированные материалы для низкотемпературных топливных элементов”, Усп. хим., 81:3 (2012), 191–220 ; A. B. Yaroslavtsev, Yu. A. Dobrovolsky, N. S. Shaglaeva, L. A. Frolova, E. V. Gerasimova, E. A. Sanginov, “Nanostructured materials for low-temperature fuel cells”, Russian Chem. Reviews, 81:3 (2012), 191–220 |
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