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2-years impact-factor Math-Net.Ru of «Uspekhi Fizicheskikh Nauk» journal, 2023
2-years impact-factor Math-Net.Ru of the journal in 2023 is calculated
as the number of citations in 2023 to the scientific papers published during
2021–2022.
The table below contains the list of citations in 2023 to the papers
published in 2021–2022. We take into account all citing publications
we found from different sources, mostly from references lists available
on Math-Net.Ru. Both original and translation versions are taken into account.
The impact factor Math-Net.Ru may change when new citations to a year
given are found.
| Year |
2-years impact-factor Math-Net.Ru |
Scientific papers |
Citations |
Citated papers |
Journal Self-citations |
| 2023 |
3.025 |
121 |
366 |
89 |
5.7% |
|
|
|
| N |
Citing pulication |
|
Cited paper |
|
| 1. |
N. E. Sluchanko, A. V. Kuznetsov, A. N. Azarevich, A. V. Bogach, N. Yu. Shitsevalova, S. E. Polovets, B. V. Filipov, A. Yu. Tsvetkov, S. Yu. Gavrilkin, “Magnetic response of conduction electrons in nonmagnetic YB6, LaB$_6$, and YbB$_6$ hexaborides with electronic and structural instabilities”, J. Exp. Theor. Phys., 137:3 (2023), 350  |
→ |
Measurements of the magnetic properties of conduction electrons V. M. Pudalov UFN, 191:1 (2021), 3–29
|
|
| 2. |
L. N. Kotov, A. A. Utkin, Yu. E. Kalinin, A. V. Sitnikov, “Magnitnye, provodyaschie i magnitoprovodyaschie svoistva kompozitnykh plenok (CoFeB+SiO$_2$+N$_2$) v intervale temperatur $2$–$400$ k i magnitnykh polei $0$, $1$ i $5$ Tl”, Vestn. Yuzhno-Ur. un-ta. Ser. Matem. Mekh. Fiz., 15:4 (2023), 85–92  |
→ |
Investigation of atomically thin films: state of the art K. V. Larionov, P.B. Sorokin UFN, 191:1 (2021), 30–51
|
| 3. |
Y. Hamamoto, Thanh Ngoc Pham, M. K. Bisbo, B. Hammer, Y. Morikawa, “Machine-learned search for the stable structures of silicene on Ag(111)”, Phys. Rev. Materials, 7:12 (2023)  |
→ |
Investigation of atomically thin films: state of the art K. V. Larionov, P.B. Sorokin UFN, 191:1 (2021), 30–51
|
| 4. |
L. Yu. Antipina, L. A. Varlamova, P. B. Sorokin, “The temperature dependence of the hexagonal boron nitride oxidation resistance, insights from first.principle computations”, Nanomaterials, 13:6 (2023), 1041  |
→ |
Investigation of atomically thin films: state of the art K. V. Larionov, P.B. Sorokin UFN, 191:1 (2021), 30–51
|
|
| 5. |
A. M. Kamchatnov, “Asymptotic theory of not completely integrable soliton equations”, Chaos: An Interdisciplinary Journal of Nonlinear Science, 33:9 (2023)  |
→ |
Gurevich–Pitaevskii problem and its development A. M. Kamchatnov UFN, 191:1 (2021), 52–87
|
| 6. |
A. M. Kamchatnov, “Evolyutsiya nelineinykh volnovykh impulsov v teorii uravneniya sinus-Gordon”, Zhurnal eksperimentalnoi i teoreticheskoi fiziki, 163:5 (2023), 734  |
→ |
Gurevich–Pitaevskii problem and its development A. M. Kamchatnov UFN, 191:1 (2021), 52–87
|
| 7. |
A. M. Kamchatnov, “Asimptoticheskaya teoriya solitonov, porozhdaemykh iz intensivnogo volnovogo impulsa”, Zhurnal eksperimentalnoi i teoreticheskoi fiziki, 164:5 (2023), 847  |
→ |
Gurevich–Pitaevskii problem and its development A. M. Kamchatnov UFN, 191:1 (2021), 52–87
|
| 8. |
S. A. Simmons, J. C. Pillay, K. V. Kheruntsyan, “Fate of the vacuum point and of gray solitons in dispersive quantum shock waves in a one-dimensional Bose gas”, Phys. Rev. A, 108:1 (2023)  |
→ |
Gurevich–Pitaevskii problem and its development A. M. Kamchatnov UFN, 191:1 (2021), 52–87
|
| 9. |
Chao Hang, Zhengyang Bai, Weibin Li, A. M. Kamchatnov, Guoxiang Huang, “Accessing and manipulating dispersive shock waves in a nonlinear and nonlocal Rydberg medium”, Phys. Rev. A, 107:3 (2023)  |
→ |
Gurevich–Pitaevskii problem and its development A. M. Kamchatnov UFN, 191:1 (2021), 52–87
|
| 10. |
M. D. Albalwi, “Modulation theory for solitary waves generated by viscous flow over a step”, Chaos, Solitons & Fractals, 176 (2023), 114120  |
→ |
Gurevich–Pitaevskii problem and its development A. M. Kamchatnov UFN, 191:1 (2021), 52–87
|
|
| 11. |
A. I. Protsenko, Ya. A. Eliovich, A. E. Blagov, Yu. V. Pisarevskii, A. V. Targonskii, A. V. Rogachev, V. A. Korzhov, S. N. Yakunin, M. V. Kovalchuk, “Issledovanie dinamiki reaktsii Belousova – Zhabotinskogo metodom vremyarazreshayuschei rentgenovskoi spektroskopii pogloscheniya s ispolzovaniem adaptivnykh elementov rentgenovskoi optiki”, UFN, 193:12 (2023), 1335–1339  |
→ |
QEXAFS method implementation using adaptive X-ray optical elements A. I. Protsenko, A. E. Blagov, Yu. V. Pisarevsky, A. V. Rogachev, A. V. Targonsky, A. L. Trigub, I. A. Eliovich, S. N. Yakunin, M. V. Kovalchuk UFN, 191:1 (2021), 88–92
|
| 12. |
Ya. A. Eliovich, V. R. Kocharyan, A. E. Blagov, A. V. Targonsky, V. A. Korzhov, A. E. Movsisyan, A. V. Shahverdyan, S. N. Noreyan, A. G. Mkrtchyan, M. V. Kovalchuk, “Possibilities of creating x-ray acoustic elements from bi-phthalate family crystals with thickness vibrations”, J. Contemp. Phys., 58:4 (2023), 405  |
→ |
QEXAFS method implementation using adaptive X-ray optical elements A. I. Protsenko, A. E. Blagov, Yu. V. Pisarevsky, A. V. Rogachev, A. V. Targonsky, A. L. Trigub, I. A. Eliovich, S. N. Yakunin, M. V. Kovalchuk UFN, 191:1 (2021), 88–92
|
| 13. |
Jingyi Han, Jingqi Guan, “Heteronuclear dual-metal atom catalysts for nanocatalytic tumor therapy”, Chinese Journal of Catalysis, 47 (2023), 1  |
→ |
QEXAFS method implementation using adaptive X-ray optical elements A. I. Protsenko, A. E. Blagov, Yu. V. Pisarevsky, A. V. Rogachev, A. V. Targonsky, A. L. Trigub, I. A. Eliovich, S. N. Yakunin, M. V. Kovalchuk UFN, 191:1 (2021), 88–92
|
|
| 14. |
A. K. Fedorov, E. O. Kiktenko, K. Yu. Khabarova, N. N. Kolachevskii, “Kvantovaya zaputannost, teleportatsiya i sluchainost: Nobelevskaya premiya po fizike 2022 goda”, UFN, 193:11 (2023), 1162–1172  |
→ |
Security of the decoy state method for quantum key distribution A. S. Trushechkin, E. O. Kiktenko, D. A. Kronberg, A. K. Fedorov UFN, 191:1 (2021), 93–109
|
| 15. |
A. K. Fedorov, “Deploying hybrid quantum-secured infrastructure for applications: When quantum and post-quantum can work together”, Front. Quantum Sci. Technol., 2 (2023)  |
→ |
Security of the decoy state method for quantum key distribution A. S. Trushechkin, E. O. Kiktenko, D. A. Kronberg, A. K. Fedorov UFN, 191:1 (2021), 93–109
|
| 16. |
S. Gupta, R. K. Krishnan, V. Mogiligidda, T. Roopak, M. Hegde, S. Rajamani, D. Singh, “ARMOS 2.0: an ultra-secure commercial QKD product against PNS attacks”, 2023 8th International Conference on Frontiers of Signal Processing (ICFSP), 2023, 63  |
→ |
Security of the decoy state method for quantum key distribution A. S. Trushechkin, E. O. Kiktenko, D. A. Kronberg, A. K. Fedorov UFN, 191:1 (2021), 93–109
|
| 17. |
A. D. Kodukhov, V. A. Pastushenko, N. S. Kirsanov, D. A. Kronberg, M. Pflitsch, V. M. Vinokur, “Boosting quantum key distribution via the end-to-end loss control”, Cryptography, 7:3 (2023), 38  |
→ |
Security of the decoy state method for quantum key distribution A. S. Trushechkin, E. O. Kiktenko, D. A. Kronberg, A. K. Fedorov UFN, 191:1 (2021), 93–109
|
| 18. |
M. I. G. Cid, D. G. Aguado, L. O. Martín, V. M. Ayuso, “Simulated multiparty quantum digital signature in cyberspace operations”, 2023 International Conference on Military Communications and Information Systems (ICMCIS), 2023, 1–9  |
→ |
Security of the decoy state method for quantum key distribution A. S. Trushechkin, E. O. Kiktenko, D. A. Kronberg, A. K. Fedorov UFN, 191:1 (2021), 93–109
|
| 19. |
A. Reutov, A. Tayduganov, V. Mayboroda, O. Fat'yanov, “Security of the decoy-state BB84 protocol with imperfect state preparation”, Entropy, 25:11 (2023), 1556  |
→ |
Security of the decoy state method for quantum key distribution A. S. Trushechkin, E. O. Kiktenko, D. A. Kronberg, A. K. Fedorov UFN, 191:1 (2021), 93–109
|
| 20. |
Yue Wu, Jun-Hao Liu, Ya-Fei Yu, Zhi-Ming Zhang, Jin-Dong Wang, “Entangling a magnon and an atomic ensemble mediated by an optical cavity”, Phys. Rev. Applied, 20:3 (2023)  |
→ |
Security of the decoy state method for quantum key distribution A. S. Trushechkin, E. O. Kiktenko, D. A. Kronberg, A. K. Fedorov UFN, 191:1 (2021), 93–109
|
|
|
|
| Total publications: |
12383 |
| Scientific articles: |
8531 |
| Authors: |
8904 |
| Citations: |
265009 |
| Cited articles: |
6166 |
 |
Impact Factor Web of Science |
|
for 2025:
2.000 |
|
for 2024:
3.400 |
|
for 2023:
3.100 |
|
for 2022:
2.700 |
|
for 2021:
2.943 |
|
for 2020:
3.361 |
|
for 2019:
2.821 |
|
for 2018:
3.090 |
|
for 2017:
2.625 |
|
for 2016:
2.301 |
|
for 2015:
2.126 |
|
for 2014:
2.606 |
|
for 2013:
1.913 |
|
for 2012:
1.865 |
|
for 2011:
2.154 |
|
for 2010:
2.245 |
|
for 2009:
2.628 |
|
for 2008:
2.471 |
|
for 2007:
2.032 |
|
for 2006:
2.675 |
|
for 2005:
2.163 |
|
for 2004:
1.877 |
|
for 2003:
2.595 |
 |
Scopus Metrics |
|
2025 |
CiteScore |
4.200 |
|
2025 |
SNIP |
1.184 |
|
2025 |
SJR |
0.382 |
|
2024 |
CiteScore |
4.700 |
|
2024 |
SNIP |
1.602 |
|
2024 |
SJR |
0.544 |
|
2023 |
CiteScore |
4.700 |
|
2023 |
SNIP |
1.512 |
|
2023 |
SJR |
0.491 |
|
2022 |
SJR |
0.532 |
|
2021 |
SJR |
0.660 |
|
2020 |
SJR |
0.812 |
|
2019 |
SJR |
0.921 |
|
2018 |
CiteScore |
2.490 |
|
2018 |
SJR |
0.731 |
|
2017 |
CiteScore |
2.100 |
|
2017 |
SNIP |
1.697 |
|
2017 |
SJR |
0.701 |
|
2016 |
CiteScore |
2.080 |
|
2016 |
SNIP |
1.760 |
|
2016 |
SJR |
0.848 |
|
2015 |
CiteScore |
2.000 |
|
2015 |
SNIP |
1.986 |
|
2015 |
IPP |
1.854 |
|
2015 |
SJR |
0.867 |
|
2014 |
CiteScore |
3.330 |
|
2014 |
SNIP |
1.362 |
|
2014 |
IPP |
1.804 |
|
2014 |
SJR |
0.876 |
|
2013 |
SNIP |
1.579 |
|
2013 |
IPP |
1.676 |
|
2013 |
SJR |
0.913 |
|
2012 |
SNIP |
1.386 |
|
2012 |
IPP |
1.479 |
|
2012 |
SJR |
0.826 |
|