DOI: 10.17586/1023-5086-2022-89-12-46-53
УДК: 53.082.52, 535.37
Current mode of photomultiplier tube operation for the detection of the kinetics of small optical signals
Full text on elibrary.ru
Publication in Journal of Optical Technology
Соломонов В.И., Спирина А.В., Макарова А.С., Липчак А.И., Спирин А.В., Лисенков В.В. Токовый режим работы фотоэлектронного умножителя для регистрации кинетики слабых световых сигналов // Оптический журнал. 2022. Т. 89. № 12. С. 46–53. http://doi.org/10.17586/1023-5086-2022-89-12-46-53
Solomonov V.I., Spirina A.V., Makarova A.S., Lipchak A.I., Spirin A.V., Lisenkov V.V. Current mode of photomultiplier tube operation for the detection of the kinetics of small optical signals [in Russian] // Opticheskii Zhurnal. 2022. V. 89. № 12. P. 46–53. http://doi.org/10.17586/1023-5086-2022-89-12-46-53
V. I. Solomonov, A. V. Spirina, A. S. Makarova, A. I. Lipchak, A. V. Spirin, and V. V. Lisenkov, "Current mode of photomultiplier tube operation for the detection of the kinetics of small optical signals," Journal of Optical Technology. 89(12), 728-732 (2022). https://doi.org/10.1364/JOT.89.000728
Subject of study. The possibility of using the nonlinear current mode of operation of a photomultiplier tube for measurements of luminescence kinetics was investigated. Aim of study. This study aimed to validate the possibility of using the nonlinear current mode of operation of a photomultiplier tube to determine the kinetic properties of small luminescence signals of condensed media, including the signals that cannot be detected in a linear current mode. Method. The signal arriving at a high-impedance (1 MΩ) input of a digital oscilloscope from a photomultiplier tube via a coaxial cable was measured. This signal is a convolution of a photocurrent pulse with a kinetic instrument function determined by the discharge of capacitance in the measurement circuit of the photomultiplier tube. The bandwidth of the circuit was determined by the lowest frequency of its elements instead of the characteristic time of the instrument function. The real photocurrent signal was reconstructed by the deconvolution of the digital convoluted array. The pulsed cathodoluminescence method was used to detect the kinetics. Main results. A method for measuring the kinetics of small optical signals in the current mode of operation of a photomultiplier tube connected to a high-impedance input of a digital oscilloscope was presented. The results of using this method to measure the kinetics of pulsed cathodoluminescence of impurity and intrinsic centers in ceramic and monocrystalline samples of yttrium aluminum garnet were presented. The direct determination of characteristic decay times by approximating the convoluted curves without deconvolution was demonstrated for an exponential luminescence decay profile. Practical significance. The proposed method for the characteristic time detection of luminescence kinetics enables comprehensive analysis of luminescence that can be applied in various sectors of the national economy.
pulse cathodluminescence, kinetics, attenuation time, photomultiplier
Acknowledgements:The research was partly supported by the Russian Foundation of Fundamental Research, grant No. 20-08-00018.
OCIS codes: 300.6280, 300.6500, 040.5250
References:1. W. Demtröder, Laser Spectroscopy (ID “Intellect,” Dolgoprudny, 2014).
2. N. M. Emanuel’, Experimental Methods of Chemical Kinetics (Izdatel’stvo Moskovskogo Universiteta, Moscow, 1985).
3. D. T. Valiev, V. M. Lisitsyn, and E. F. Polisadova, “Modeling the distortion of kinetics of luminescence flash in the measurements with high temporal resolution,” Izv. Vuzov. Fiz. 54(11/3), 143–147 (2011).
4. A. M. Prokhorov, Laser Handbook (Sovetskoe Radio, Moscow, 1978).
5. A. S. Egorov and A. P. Savikin, Diode-Pumped Solid-State Lasers Based on Ceramics Doped with Nd3+ and Yb3+ Ions (Nizhny Novgorod, 2011).
6. J. Lu, M. Prabhu, J. Song, C. Li, J. Xu, K. Ueda, A. A. Kaminskii, H. Yagi, and T. Yanagitani, “Optical properties and highly efficient laser oscillation of Nd:YAG ceramics,” Appl. Phys. B 71, 469–473 (2000).
7. M. Pokhrel, N. Ray, G. A. Kumar, and D. K. Sardar, “Comparative studies of the spectroscopic properties of Nd3+ :YAG nanocrystals, transparent ceramic and single crystal,” Opt. Mater. Express 2(3), 235–249 (2012).
8. V. I. Solomonov, V. V. Osipov, V. A. Shitov, K. E. Luk’yashin, and A. S. Bubnova, “Intrinsic luminescence centers in yttrium–aluminum garnet and yttrium oxide ceramics,” Opt. Spectrosc. 128(1), 1–5 (2020) [Opt. Spektrosk. 128(1), 5–9 (2020)].