VNIIOFI in the period 2016–2025: main results of scientific activity
https://doi.org/10.32446/0368-1025it.2026-2-14-28
Abstract
2025, 28 December All-Russian Research Institute for Optical and Physical Measurements (VNIIOFI) is sixty. For this period Institute carry out many scientifi c researches, work out and supplied consumers thousands high-precision measurement technics (inclusive metrology standard equipment). The most significance for optical and physical measurements results of institute researches for period 2016–2025 presents in this article.
Keywords
About the Authors
A. S. BaturinRussian Federation
Andrey S. Baturin, Cand. Sc. (Physics and Mathematics), Director, School of Electronics, Photonics and Molecular Physics
141701, Moscow Region, Dolgoprudny, Institutsky lane, 9
V. R. Gavrilov
Russian Federation
Valery R. Gavrilov, Cand. Sc. (Physics and Mathematics), Associate Professor, Head of the Department of Photometry, Colorimetry, Spectrophotometry and Radiometry of Incoherent Optical Radiation
119361, Moscow, Ozernaya st., 46
A. V. Ivanov
Russian Federation
Aleksandr V. Ivanov, Scientific Curator GET 196-2023, Head of the Testing and Certification Department
119361, Moscow, Ozernaya st., 46
V. N. Krutikov
Russian Federation
Vladimir N. Krutikov, D. Sc. (Physics and Mathematics), Chief Scientific Officer
119361, Moscow, Ozernaya st., 46
A. D. Levin
Russian Federation
Aleksandr D. Levin, D. Sc. (Engineering), Leading Researcher, Laboratory of Analytical Spectroscopy and Metrology of Nanoparticles
119361, Moscow, Ozernaya st., 46
E. A. Lavrukhina
Russian Federation
Elena A. Lavrukhina, Deputy Head, Laboratory of ElectronOptical Means of Measuring Parameters of Rapid Processes
119361, Moscow, Ozernaya st., 46
A. P. Mamonov
Russian Federation
Anatolii P. Mamonov, Deputy Head, Department of Fiber, Quantum and Integrated Optical Systems
119361, Moscow, Ozernaya st., 46
V. L. Minaev
Russian Federation
Vladimir L. Minaev, D. Sc. (Engineering), Head of the Department of Holography, Optical Tomography, Nanotechnology and Nanomaterials
119361, Moscow, Ozernaya st., 46
S. А. Moskalyuk
Russian Federation
Sergey A. Moskalyuk, Cand. Sc. (Engineering), Head of Department of Metrological Support for Laser Technology
SCOPUS: 15081383900
119361, Moscow, Ozernaya st., 46
S. N. Negoda
Russian Federation
Sergey N. Negoda, Chief Metrologist, All-Russian Research Institute for Optical and Physical Measurements
119361, Moscow, Ozernaya st., 46
K. Yu. Sakharov
Russian Federation
Konstantin Yu. Sakhаrov, D. Sc. (Engineering), Head of the Laboratory for Generating and Measuring Parameters of Pulse Electromagnetic Fields
119361, Moscow, Ozernaya st., 46
G. G. Fel’dman
Russian Federation
Grigorii G. Fel'dman, D. Sc. (Engineering), Laboratory of Electro-Optical Measuring Instruments for Fast-Flowing Processes
119361, Moscow, Ozernaya st., 46
I. S. Filimonov
Russian Federation
Ivan S. Filimonov, Cand. Sc. (Physics and Mathematics), Member of the RAS Scientifi c Council on Metrology and Standardization, Director
119361, Moscow, Ozernaya st., 46
B. B. Khlevnoy
Russian Federation
Boris B. Khlevnoy, Cand. Sc. (Engineering), Head of Laboratory, Department of Photometry, Colorimetry, Spectrophotometry and Radiometry of Incoherent Optical Radiation
119361, Moscow, Ozernaya st., 46
G. G. Levin
Russian Federation
Gennady G. Levin, D. Sc. (Engineering), Professor, Head Specialist, Department of Optical Tomography
119361, Moscow, Ozernaya st., 46
S. V. Tikhomirov
Russian Federation
Sergey V. Tikhomirov, D. Sc. (Engineering), Professor, Lecturer
119361, Moscow, Ozernaya st., 46
References
1. Woolliams E. R., Anhalt K., Ballico M., et al. Thermodynamic temperature assignment to the point of infl ection of the melting curve of high-temperature fi xed point. Philosophical Transactions A, 374, 20150044 (2016). https://doi.org/10.1098/rsta.2015.0044
2. Lowe D. H., Todd A. D. W., Van den Bossche R., et al. The equilibrium liquidus temperatures of rhenium-carbon, platinum-carbon and cobalt-carbon eutectic alloys. Metrologia, 54(3), 390–398 (2017). https://doi.org/10.1088/1681-7575/aa6eeb ; https://elibrary.ru/uxdvat
3. Sadli M., Bloembergen P., Khlevnoy B., Wang T., Yamada Y., Machin G. An international study of the long-term stability of metalcarbon eutectic cells. International Journal of Thermophysics, 32, 1786–1799 (2011). https://doi.org/10.1007/s10765-011-1009-8 ; https://elibrary.ru/peavvx
4. Yamada Y., Anhalt K., Battuello M., Bloembergen P., Khlevnoy B., Machin G., Matveyev M., Sadli M., Todd A., Wang T. Evaluation and selection of high-temperature fi xed-point cells for thermodynamic temperature assignment. International Journal of Thermophysics, 36, 1834–1847 (2015). https://doi.org/10.1007/s10765-015-1860-0 ; https://elibrary.ru/uzwwaf
5. Ivashin E., Ogarev S., Khlevnoy B., Shirokov S., Dobroserdov D., Sapritsky V. High power LED standard light sources for photometric applications. IOP Conf. Series: Journal of Physics: Conference Series, 972, 012009 (2018). https://doi.org/10.1088/1742-6596/972/1/012009 ; https://elibrary.ru/xxjokl
6. Ivashin Eu. A., Khlevnoy B. B., Shirokov S. S., Tyshchenko Eu. V. Development of new photometric standards based on high power LEDs. Light & Engineering, 26(1), 58–62 (2018). https://doi.org/10.33383/2017-087
7. Ivashin E., Lalek J., Rebczenski A., Ogarev S., Khlevnoy B., Dobroserdov D., Sapritsky V. Methods of total spectral radiant fl ux realization at VNIIOFI. IOP Conf. Series: Journal of Physics: Conference Series, 972, 012011 (2018). https://doi.org/10.1088/1742-6596/972/1/012011 ; https://elibrary.ru/xxhbmt
8. Gavrilov V. R., Grigor’Eva I. A., Ivashin E. A., Otryaskin D. A., Solodilov M. V., Solodilov E. V., Khlevnoy B. B., Sapritsky V. I., Pavlovitch M. N. National primary standard for the units of radiometric and spectroradiometric values at wavelengths from 0,2 to 25,0 μm GET 86-2017. Izmeritell’naya Tekhnika, (10), 3–8 (2018). (In Russ.) https://doi.org/10.32446/0368-1025it.2018-10-3-8 ; https://elibrary.ru/vtaaoy
9. Sakharov K. Yu., Podosenov S. A., Turkin V. A., Mikheev O. V., Men’kova E. R., Sukhov A. V., Aleshko A. I. Use of the method of predetermined currents to calculate the parameters of pulsed electromagnetic fi elds with rise time up to 10 psec in the time domain. Izmeritel’naya Tekhnika, (11), 55–58 (2015). (In Russ.) https://elibrary.ru/uxztfr
10. Sakharov K. Yu., Mikheev O. V., Turkin V. A., Sukhov A. V., Aleshko A. I., Rodin R. A. National Primary special standard of pulse electric and magnetic fi eld intensities units with pulse rise time in the range of 10 ps to 100 ps GET 178–2016. Izmeritel’naya Tekhnika, (6), 3–7 (2018). (In Russ.) https://elibrary.ru/uwaolw
11. Sakharov K. Yu., Mikheev O. V., Turkin V. A., Dobrotvorskii M. I., Sukhov A. V. Interlaboratory standard for calibrating the Primary standards of the unit of pulsed electric fi eld strength. Izmeritel’naya Tekhnika, (11), 58–61 (2017). (In Russ.) https://elibrary.ru/zwjftj
12. Minaev V. L., Levin G. G., Latyshev A. V., Shcheglov D. V. Measurement of the profi le of the surface of monoatomic multilayer silicon nanostructures by an interference method. Izmeritel’naya Tekhnika, (11) 12–14 (2017). (In Russ.) https://www.elibrary.ru/zwjfpd
13. Minaev V. L., Vishnyakov G. N., Levin G. G. An interference microscope with a low-coherence source and a supersmooth reference mirror. Instruments and Experimental Techniques, 61(6), 856–861 (2018). https://doi.org/10.1134/S0020441218060210 ; https://elibrary.ru/szocms
14. Khlevnoy B. B., Ivashin E. A., Ivashin E. A., et al. State primary standard for units of luminous intensity and luminous fl ux GET 5-2024. Izmeritel’naya Tekhnika, 74(5), 4–15 (2025). (In Russ.) https://doi.org/10.32446/0368-1025it.2025-5-4-15 ; https://elibrary.ru/yajahl
15. Ivashin E. A., Otryaskin D. A., Stolyarevskaya R. I., Khlevnoy B. B. Creation and improvement of the reference base of light measurements at VNIIOFI. Light & Engineering, (6), 4–14 (2024). (In Russ.) https://elibrary.ru/vjsaxr
16. Sadli M., Khlevnoy B., Bourson F., Grigoryeva I., S. Briaudeau, O. Kozlova, V. Gavrilov, D. Otryaskin, B. Rougié, Comparison and determination of the melting temperature of WC-C cells developed at VNIIOFI and LNE-CNAM. XIII International Symposium on Temperature and Thermal Measurements in Industry and Science, TEMPMEKO 2016, 26th June – 1st July 2016, Zakopane, Poland. https://doi.org/10.13140/RG.2.2.29355.23845
17. Grigoryeva I. A., Khlevnoy B. B., Solodilov M. V. Reproducibility of WC–C high-temperature fi xed point. International Journal of Thermophysics, 38, 69 (2017). https://doi.org/10.1007/s10765-017-2203-0 ; https://elibrary.ru/yvcobh
18. Sasajima N., Lu X., Khlevnoy B., Grigoryeva I., Yoo Y., Otryaskin D., Markin S., Wang T., Yamada Y. Performance of WC–C peritectic and Ru–C eutectic fi xed points. Metrologia, 56, 055010 (2019). https://doi.org/10.1088/1681-7575/ab3707
19. Khlevnoy B., Grigoryeva I., Anhalt K., Waehmer M., Ivashin E., Otryaskin D., Solodilov M., Sapritsky V. Development of large-area high-temperature fi xed-point blackbodies for photometry and radiometry. Metrologia, 55, S43–S51 (2018). https://doi.org/10.1088/1681-7575/aaa16a ; https://elibrary.ru/xyefit
20. Wähmer M., Anhalt K., Hollandt J., Klein R., Taubert R. D., Thornagel R., Ulm G., Gavrilov V., Grigoryeva I., Khlevnoy B., Sapritsky V., Thermodynamic temperature of high-temperature fi xed points traceable to blackbody radiation and synchrotron radiation. International Journal of Thermophysics, 38, 144 (2017). https://doi.org/10.1007/s10765-017-2273-z ; https://elibrary.ru/xnpmqk
21. Wang Y., Dai C., Khlevnoy B., Grigoryeva I., Li L., Wu Z., Xie Y., He S. A method for spectral irradiance measurementbased on a large area WC-C fi xed point blackbody. Optics Express, 28(19), 28430–28440 (2020). https://doi.org/10.1364/oe.401626 ; https://elibrary.ru/jjqznt
22. Xie Y., Dai C., Wang Y., Wu Z., Li L., Khlevnoy B., Grigoryeva I., He S., Lin Y. Approximation of a melting plateau of large area HTFP cells used for spectral irradiance realization. Applied Optics, 60(7), 1827–1833 (2021). https://doi.org/10.1364/ao.409631 ; https://elibrary.ru/wvdwzk
23. Dai C., Wang Y., Li L., Wu Z., Xie Y., Khlevnoy B., Grigoryeva I., He S., Lin Y. Spectral irradiance scale realization anduncertainty analysis based on a 14 mmdiameter WC–C fi xed point blackbody from250 nm to 2500 nm. Metrologia, 59(2), 024001 (2022). https://doi.org/10.1088/1681-7575/ac4a40 ; https://elibrary.ru/nqihtq
24. Levin A. D., Nagaev A. I., Sadagov A. Y. Determination of the nanoparticles number concentration together with dimensions measurement by the dynamic light scattering method. Izmeritel’naya Tekhnika, (8), 14–19 (2018). (In Russ.) https://doi.org/10.32446/0368-1025it-2018-8-14-19 ; https://elibrary.ru/ylfbln
25. Levin A. D., Shmytkova E. A., Khlebtsov B. N. Multipolarization dynamic light scattering of nonspherical nanoparticles in solution. The Journal of Physical Chemistry C, 121(5), 3070–3077 (2017). https://doi.org/10.1021/acs.jpcc.6b10226 ; https://elibrary.ru/xnnehq
26. Levin A. D., Ringaci A., Alenichev M. K., Drozhzhennikova E. B., Shevchenko K. G., Cherkasov V. R., Nikitin M. P., Nikitin P. I. Dynamic light scattering biosensing based on analyte-induced inhibition of nanoparticle aggregation. Analytical and Bioanalytical Chemistry, 412(14), 3423–3431 (2020). https://doi.org/10.1007/s00216-020-02605-9 ; https://elibrary.ru/tvqlwy
27. Alenichev M. K., Levin A. D., Yushina A. A., Kostrikina Eu. S., Lebedin Yu. S., Andreeva I. P. , Grigorenko V. G., Krylov V. B.,Nifantiev N. E. Nano-biosensor based on the combined use of the dynamic and static light scattering for Aspergillus galactomannan analysis. Sensing and Bio-Sensing Research, 35, 100475 (2022). https://doi.org/10.1016/j.sbsr.2022.100475 ; https://elibrary.ru/rvfoes
28. Sukhov A. V., Sakharov K. Yu., Zolotarevsky Yu. M., Mikheev O. V., Turkin V. A. A study of high transient voltage unit realization uncertainty. Izmeritel’naya Tekhnika. (10), 49–53 (2020). (In Russ.) https://doi.org/10.32446/0368-1025it.2020-10-49-53 ; https://elibrary.ru/zzujef
29. Sukhov A. V., Sakharov K. Y., Mikheev O. V., Turkin V. A., Ugolev V. L., Denisov M. Y., Rodin R. A. Microwave photonic detector for measuring pulsed electric fi eld strengths in the sub-nanosecond region. Izmeritel’naya Tekhnika, (6), 61–65 (2018). (In Russ.) https://elibrary.ru/xvlujn
30. Vishnyakov G. N., Minaev V. L. Homodyne quadrature displacement interferometer. Optika i spektroskopiya, 129(10), 1306–1310 (2021). (In Russ.) https://doi.org/10.21883/OS.2021.10.51498.2400-21 ; https://elibrary.ru/slkzem
31. Vishnyakov G. N., Minaev V. L. Homodyne quadrature displacement interferometer for a new kilogram mass standard based on the watt balance. Optoelectronics, Instrumentation and Data Processing, 58(2), 114–122 (2022). https://doi.org/10.3103/s8756699022020108 ; https://elibrary.ru/dnebxx
32. Vishnyakov G. N., Minaev V. L., Shumsky E. V. Homodyne quadrature displacement interferometer. Experimental results. Optika i spektroskopiya, 130(7), 1114–1121 (2022). (In Russ.) http://dx.doi.org/10.21883/OS.2022.07.52731.3157-22 ; https://elibrary.ru/vvfqjb
33. Dunaev A. Yu., Morozova S. P., Gavrilov V. R., Bormashov V. S., Sapritskiy V. I. Metrological support for measurements of spectral sensitivity of terahertz radiation receivers. Metrology in radio electronics: Proc. XII All-Russian Scientifi c and Technical Conference, Mendeleevo, September 21–23, 2021, pp. 52–57. Mendeleevo, FSUE “VNIIFTRI” (2021). https://elibrary.ru/hqnrmc
34. Dunaev A. Yu., Morozova S. P., Gavrilov V. R., Bormashov V. S., Dovgilov N. L. Metrological ensures for measuring the spectral sensitivity of terahertz radiation receivers. Izmeritel’naya Tekhnika, 74(1), 90–98 (2025). (In Russ.) https://doi.org/10.32446/0368-1025it.2025-1-90-98 ; https://elibrary.ru/zioeof
35. Bormashov V. S., Bychkov S. B., Zayats K. V., Kolpakov A. A., Korolev I. S., Krutikov V. N., Mikrukov A. S., Tarelkin S. A., Ulanovsky M. V., Moskalyuk S. A. Metrological ensures for high-power laser radiation. Izmeritel’naya Tekhnika, (12), 18–25 (2023). (In Russ.) https://doi.org/10.32446/0368-1025it.2023-12-18-25 ; https://elibrary.ru/mrmzvv
36. Dovgilov N. L., Morozova S. P., Alekseev S. V., Dunaev A. Yu., Gavrilov V. R., Dmitriev I. Yu., Linskyi P. M., Vasiliev V. N. Precision black body model at a temperature of 200–450 K: metrological ensurance for optical-electronic equipment for remote sensing of the Earth in the infrared range of the spectrum. Izmeritel’naya Tekhnika, (11), 52–57 (2023). (In Russ.) https://doi.org/10.32446/0368-1025it.2023-11-52-57 ; https://elibrary.ru/lkbqnb
37. Dovgilov N. L., Morozova S. P., Alekseev S. V., Dunaev A. Yu., Gavrilov V. R., Dmitriev I. Yu., Linskyi P. M., Vasiliev V. N. Vacuum large-aperture blackbody model in the temperature range 223.15–423.15 K for radiometric calibration of optoelectronic equipment for Earth observation. Izmeritel’naya Tekhnika, (8), 60–66 (2023). (In Russ.) https://doi.org/10.32446/0368-1025it.2023-8-60-66 ; https://www.elibrary.ru/ipllhz
38. Sakharov K. Yu., Turkin V. A., Mikheev O. V., Sukhov A. V. State primary special standard of impulse current unit in the range from 1.0 to 1.0·105 A GET 202-2024. Izmeritel’naya Tekhnika, 73(9), 4–11 (2024). (In Russ.) https://doi.org/10.32446/0368-1025it.2024-9-4-11 ; https://www.elibrary.ru/tjbzhv
39. Sakharov K.Yu., Sukhov A.V., Turkin V. A., Mikheev O. V., Tikhomirov S.V. Metrological support of measuring instruments for pulse current parameters in the nanosecond time range. Tekhnologii elektromagnitnoj sovmestimosti, (4(91)), 33–41 (2024). (In Russ.) https://www.elibrary.ru/tpvnrl
40. Elkin K. S., Ivanov A. I., Neznamova L. O., Sakharov K. Yu., Suhov A. V., Ugolev V. L. Scientifi c equipment Kalibr-2 of biosatellite Bion-M no. 2 for studying phase transitions of melting-crystallization of the eutectic indium-bismuth alloy under microgravity conditions. Cosmonautics and rocket engineering, (1(138)), 155–167 (2025). (In Russ.) https://elibrary.ru/kdqika
41. Vishnyakov G. N., Levin G. G., Minaev V. L. State primary standard of ellipsometric angles GET 186-2017. Izmeritel’naya Tekhnika, (8), 3–7 (2020). (In Russ.) https://doi.org/10.32446/0368-1025it.2020-8-3-7 ; https://elibrary.ru/cbzmgm
42. Vishnyakov G. N., Minaev V. L., Bochkareva S. S. State primary standard of refractive index GET 138-2021. Izmeritel’naya Tekhnika, (5), 4–9 (2022). (In Russ.) https://doi.org/10.32446/0368-1025it.2022-5-4-9 ; https://elibrary.ru/zclnyk
43. Vishnyakov G. N., Minaev V. L., Samoylenko A. A. State primary special standard of complex refractive index and length in the fi eld of measuring the thickness of optical coatings GET 203-2024. Izmeritel’naya Tekhnika, 73(6), 4–11 (2024). (In Russ.) https://doi.org/10.32446/0368-1025it.2024-6-4-11 ; https://elibrary.ru/rifaqk
44. Vishnyakov G. N., Levina E. U., Minaev V. L. State primary standard of units of optical power and modulation transfer function of spectacle optics and objectives GET 205-2025. Izmeritel’naya Tekhnika, 74(2), 20–27 (2025). (In Russ.) https://doi.org/10.32446/0368-1025it.2025-2-20-27 ; https://elibrary.ru/kaedkd
45. Grigoriev V. V., Kravtsov V. E., Mitiurev A. K., Pogonyshev A. O., Tikhomirov S. V. State primary special standard for the unit of polarization mode dispersion in optical fi ber GET 185-2025. Izmeritel’naya Tekhnika, 75(2), 27–35 (2026). (In Russ.) https://doi.org/10.32446/0368-1025it.2026-2-27-35
46. Ivanov A. V., Gryazskikh N. Yu., Chugunova M. M., Zyablikov D. N., Zyablikova I. N., Ermakovа Y. I., Polunina E. P. Development of reference materials of the rare and rare-earth metals compositions using State primary standard for units of mass (molar) fraction and mass (molar) concentration of components in liquid and solid substances and materials based on spectral methods GET 196-2023. Izmeritel’naya Tekhnika, 75(2), 105–112 (2026). (In Russ.) https://doi.org/10.32446/0368-1025it.2026-2-105-112
47. Sahakyan A. V., Levin A. D. Software for spectral data processing by chemometrics and machine learning methods. Analytics, 14(2), 154–160 (2024). (In Russ.) https://doi.org/10.22184/2227-572X.2024.14.2.154.160 ; https://elibrary.ru/cfmlco
Review
For citations:
Baturin A.S., Gavrilov V.R., Ivanov A.V., Krutikov V.N., Levin A.D., Lavrukhina E.A., Mamonov A.P., Minaev V.L., Moskalyuk S.А., Negoda S.N., Sakharov K.Yu., Fel’dman G.G., Filimonov I.S., Khlevnoy B.B., Levin G.G., Tikhomirov S.V. VNIIOFI in the period 2016–2025: main results of scientific activity. Izmeritel`naya Tekhnika. 2026;75(2):14-28. (In Russ.) https://doi.org/10.32446/0368-1025it.2026-2-14-28
JATS XML




















