Laser-induced plate-lamel graphitised structures in cvd diamond as promising radiation sensors
Kucherik A.O.1, Kononenko T.V.2, Samyshkin V.D.1, Chernikov A.S. 1, Kharkova A.V. 1, Bukharov D.N. 1
1Stoletovs Vladimir state university, Vladimir, Russia
2Prokhorov General Physics Institute of the Russian Academy of Sciences, Moscow, Russia
Email: buharovdn@gmail.com

PDF
A controlled laser method for synthesizing plate-like graphitized structures in CVD diamond is proposed. These structures are promising as sensor surfaces for detecting charged particles that make up radiation. A model of the structure of such plates is proposed based on the diffusion approximation. Possible ways of using the obtained structures in sensor devices are proposed. Keywords: laser graphitization, sensor structures, CVD diamond, plate structures, modeling, diffusion approximation.
  1. D. Araujo, M. Suzuki, F. Lloret, G. Alba, P. Villar. Materials (Basel), 14 (22), 7081 (2021). DOI: 10.3390/ma14227081
  2. W. Adam, E. Berdermann, P. Bergonzo, W. de Boer, F. Bogani, E. Borchi, A. Brambilla, M. Bruzzi, C. Colledani, J. Conway, P. D'Angelo, W. Dabrowski, P. Delpierre, W. Dulinski, J. Doroshenko, B. van Eijk, A. Fallou, P. Fischer, F. Fizzotti, C. Furetta, K.K. Gan, N. Ghodbane, E. Grigoriev, G. Hallewell, S. Han, F. Hartjes, J. Hrubec, D. Husson, H. Kagan, J. Kaplon, R. Kass, M. Keil, K.T. Knoepfle, T. Koeth, M. Krammer, A. Logiudice, R. Lu, L. Mac Lynne, C. Manfredotti, D. Meier, D. Menichelli, S. Meuser, M. Mishina, L. Moroni, J. Noomen, A. Oh, M. Pernicka, L. Perera, R. Potenza, J.L. Riester, S. Roe, A. Rudge, S. Sala, M. Sampietro, S. Schnetzer, S. Sciortino, H. Stelzer, R. Stone, C. Sutera, W. Trischuk, D. Tromson, C. Tuve, B. Vincenzo, P. Weilhammer, N. Wermes, M. Wetstein, W. Zeuner, M. Zoeller. Eur. Phys. J. C, 33, 1014 (2004). DOI: 10.1140/epjcd/s2004-03-1798-6
  3. R.S. Sussmann, J.R. Brandon, S.E. Coe, J.L. Collins, A.J. Whitehead. Industrial Diamond Rev., 61, 271 (2001)
  4. R.S. Sussmann. CVD Diamond for Electronic Devices and Sensors (Wiley, Chichester, 2009)
  5. H. Kagan, A. Alexopoulos, M. Artuso, F. Bachmair, L. Bani, M. Bartosik, J. Beacham, H. Beck, V. Bellini, V. Belyaev, B. Bentele, P. Bergonzo, A. Bes, J.-M. Brom, M. Bruzzi, G. Chiodini, D. Chren, V. Cindro, G. Claus, J. Collot, J. Cumalat, A. Dabrowski, R. D'Alessandro, D. Dauvergne, W. de Boer, S. Dick, C. Dorfer, M. Dunser, V. Eremin, G. Forcolin, J. Forneris, L. Gallin-Martel, M.-L. Gallin-Martel, K.K. Gan, M. Gastal, C. Giroletti, M. Goffe, J. Goldstein, A. Golubev, A. Gorivsek, E. Grigoriev, J. Grosse-Knetter, A. Grummer, B. Gui, M. Guthoff, I. Haughton, B. Hiti, D. Hits, M. Hoeferkamp, T. Hofmann, J. Hosslet, J.-Y. Hostachy, F. Hugging, C. Hutton, J. Janssen, K. Kanxheri, G. Kasieczka, R. Kass, F. Kassel, M. Kis, G. Kramberger, S. Kuleshov, A. Lacoste, S. Lagomarsino, A. Lo Giudice, E. Lukosi, C. Maazouzi, I. Mandic, C. Mathieu, M. Menichelli, M. Mikuvz, A. Morozzi, J. Moss, R. Mountain, S. Murphy, M. Muvskinja, A. Oh, P. Olivero, D. Passeri, H. Pernegger, R. Perrino, F. Picollo, M. Pomorski, R. Potenza, A. Quadt, A. Re, M. Reichmann, G. Riley, S. Roe, D. Sanz, M. Scaringella, D. Schaefer, C.J. Schmidt, D.S. Smith, S. Schnetzer, S. Sciortino, A. Scorzoni, S. Seidel, L. Servoli, B. Sopko, V. Sopko, S. Spagnolo, S. Spanier, K. Stenson, R. Stone, C. Sutera, A. Taylor, B. Tannenwald, M. Traeger, D. Tromson, W. Trischuk, C. Tuve, J. Velthuis, N. Venturi, E. Vittone, S. Wagner, R. Wallny, J.C. Wang, J. Weingarten, C. Weiss, T. Wengler, N. Wermes, M. Yamouni, M. Zavrtanik. Accelerators, Spectrometers, Detectors and Associated Equipment, 924, 297 (2019). DOI: 10.1016/j.nima.2018.06.009
  6. Y. Xiaoxi, F. Yang, H. Li. Recent Progress and Development on Nanostructures (IntechOpen, 2024), DOI: 10.5772/intechopen.1006609
  7. B. Dischler, C. Wild. Low-Pressure Synthetic Diamond. Springer Series in Materials Processing (Springer, Berlin, Heidelberg, 1998), DOI: 10.1007/978-3-642-71992-9_13
  8. G.K. Samudrala, S.L. Moore, Y.K. Vohra. Materials, 8 (5), 2054 (2015). DOI: 10.3390/ma8052054
  9. A. Metcalfe, G. Fern, George, P. Hobson, P. Smith, D. Lefeuvre, G. Saenger. J. Instrumentation, 12, 01066 (2017). DOI: 10.1088/1748-0221/12/01/C01066
  10. C. Ahl, T. Beck, E. Lukosi. Appl. Phys. Lett., 119 (25), 252103 (2021). DOI: 10.1063/5.0067578
  11. P. Bergonzo, A. Brambilla, D. Tromson, C. Mer, B. Guizard, F. Foulon, V. Amosov. Diamond Related Mater., 10 (3-7), 631 (2001). DOI: 10.1016/S0925-9635(00)00554-9
  12. A.V. Krasil'nikov, N.B. Rodionov, A.P. Bol'shakov, V.G. Ral'chenko, S.K. Vartapetov, Yu.E. Sizov, S.A. Meshchaninov, A.G. Trapeznikov, V.P. Rodionova, V.N. Amosov, R.A. Khmel'nitskii, A.N. Kirichenko. ZhTF, 92 (4), 596 (2022) (in Russian). DOI: 10.21883/JTF.2022.04.52247.226-21
  13. T. Shimaoka, S. Koizumi, J.H. Kaneko. Functional Diamond, 1 (1), 205 (2021). DOI: 10.1080/26941112.2021.2017758
  14. A. Kucherik, A. Kumar, A. Abramov, V. Samyshkin, A. Osipov, I. Bordanov, S. Shchanikov, M. Kumar. Nanotechnology, 36 (7), 072002 (2025). DOI: 10.1088/1361-6528/ad947c
  15. W. Adam, C. Bauer, E. Berdermann, P. Bergonzo, F. Bogani, E. Borchi, A. Brambilla, M. Bruzzi, C. Colledani, J. Conway, W. Dabrowski, P. Delpierre, A. Deneuville, W. Dulinski, B. van Eijk, A. Fallou, F. Fizzotti, F. Foulon, M. Friedl, K.K. Gan, E. Gheeraert, E. Grigoriev, G. Hallewell, R. Hall-Wilton, S. Han, F. Hartjes, J. Hrubec, D. Husson, H. Kagan, D. Kania, J. Kaplon, C. Karl, R. Kass, K.T. Knopfle, M. Krammer, A. Logiudice, R. Lu, P.F. Manfredi, C. Manfredotti, R.D. Marshall, D. Meier, M. Mishina, A. Oh, L.S. Pan, V.G. Palmieri, M. Pernicka, A. Peitz, S. Pirollo, P. Polesello, K. Pretzl, V. Re, J.L. Riester, S. Roe, D. Roff, A. Rudge, S. Schnetzer, S. Sciortino, V. Speziali, H. Stelzer, R. Stone, R.J. Tapper, R. Tesarek, G.B. Thomson, M. Trawick, W. Trischuk, E. Vittone, A.M. Walsh, R. Wedenig, P. Weilhammer, H. Ziock, M. Zoeller. Accelerators, Spectrometers, Detectors Associated Equipment, 434 (1), 131 (1999). DOI: 10.1016/S0168-9002(99)00447-7
  16. C.E. Nebel. Functional Diamond, 3 (1), 2201592 (2023). DOI: 10.1080/26941112.2023.2201592
  17. T.V. Kononenko, K.K. Ashikkalieva, V.G. Ral'chenko, V.V. Kononenko, V.I. Konov. Diamond Related Mater., 142, 110812 (2024)
  18. V.V. Kononenko, E.V. Zavedeev, T.V. Kononenko, V.V. Bukin, V.I. Konov. Diamond. Photonics, 10 (1), 43 (2023). DOI: 10.3390/photonics10010043
  19. Y. Jundong, S. Yuanyuan, C. Shanshan, H. Xiaopeng. J. Appl. Analysis Computation, 6 (4), 1114 (2016)
  20. S. Prawer, R.J. Nemanich. Philosophical Transactions Royal Society of London. Series A: Mathem., Phys. Eng. Sci., 362 (1824), 2537 (2004)
  21. A. Dychalska, P. Popielarski, W. Frankow, K. Fabisiak, K. Paprocki, M. Szybowicz. Mater. Sci.-Pol., 33 (4), 799 (2015)
  22. A.A. Khomich, V. Kononenko, O. Kudryavtsev, E. Zavedeev, A.V. Khomich. Nanomaterials, 13, 162 (2023). DOI: 10.3390/nano13010162
  23. G. Stiesch. Modeling Engine Spray and Combustion Processes. Heat and Mass Transfer (Springer, Berlin, Heidelberg, 2003)
  24. T.V. Kononenko, E.V. Zavedeev, V.V. Kononenko, K.K. Ashikkalieva, V.I. Konov. Appl. Phys. A, 119, 405 (2015). DOI: 10.1007/s00339-015-9109-0
  25. A.A. Evseev, O.I. Nechaeva. PDM, 4, 72 (2009) (in Russian)
  26. D.N. Bukharov, T.V. Kononenko, A.O. Kucherik. Pis'ma v ZhTF (in Russian), 51 (1), 26 (2025). DOI: 10.61011/PJTF.2025.01.59516.19964
  27. D.A. Zaitsev. Theoretical Computer Sci., 666, 21 (2017). DOI: 10.1016/j.tcs.2016.11.002
  28. M. Moda, A. Chiocca, G. Macoretta, B.D. Monelli, L. Bertini. Materials Design, 223, 110991 (2022). DOI: 10.1016/j.matdes.2022.110991
  29. B. Bhattacharyya, B. Doloi. Modern Machining Technology Advanced, Hybrid, Micro Machining and Super Finishing Technology (London, Academic Press, 2020), DOI: 10.1016/B978-0-12-812894-7.00004-9
  30. K.K. Ashikkalieva, T.V. Kononenko, V.I. Konov. Optics Laser Technol., 107, 204 (2018). DOI: 10.1016/j.optlastec.2018.05.040
  31. D.N. Bukharov, A.O. Kucherik, S.M. Arakelian. J. Adv. Mater. Technol., 8 (3), 227 (2023). DOI: 10.17277/jamt.2023.03.pp.227-251
  32. D.N. Bukharov, S.M. Arakelyan, A.O. Kucherik, O.A. Novikova, V.D. Samyshkin. J. Phys.: Conf. Ser., 1439, 012050 (2020). DOI: 10.1088/1742-6596/1439/1/012050
  33. T. Yang, F. Tian, J.A. Covington, F. Xu, Y. Xu, A. Jiang, J. Qian, R. Liu, Z. Wang, Y. Huang. Chemosensors, 7, 31 (2019). DOI: 10.3390/chemosensors7030031
  34. A. Jiang, F. Tian, J.A. Covington, M. Jiang, Z. Wu. IEEE Transactions on Instrumentation and Measurement, 71, 9506207 (2022). DOI: 10.1109/TIM.2022.3175026
  35. F. Tian, A. Jiang, T. Yang, J. Qian, R. Liu, M. Jianga. IEEE Sensors J., 21, 13 (2021). DOI: 10.1109/JSEN.2021.3072621
  36. S. Salvatori, M.C. Rossi, G. Conte, T. Kononenko, M. Komlenok, A. Khomich, V. Ralchenko, V. Konov, G. Provatas, M. Jaksic. IEEE Sensors J., 19 (24), 1908 (2019). DOI: 10.1109/JSEN.2019.2939618
  37. S.O. Kasap. Photoconductivity and Photoconductive Material (Wiley, Chichester, 2022)

Подсчитывается количество просмотров абстрактов ("html" на диаграммах) и полных версий статей ("pdf"). Просмотры с одинаковых IP-адресов засчитываются, если происходят с интервалом не менее 2-х часов.

Дата начала обработки статистических данных - 27 января 2016 г.

Publisher:

Ioffe Institute

Institute Officers:

Director: Sergei V. Ivanov

Contact us:

26 Polytekhnicheskaya, Saint Petersburg 194021, Russian Federation
Fax: +7 (812) 297 1017
Phone: +7 (812) 297 2245
E-mail: post@mail.ioffe.ru