Three-stage synthesis of composite nanomaterials based on iron and gold by laser ablation and assisted ultrasound
Chernikov A. S. 1, Kochuev D. A. 1, Chkalov R. V. 1, Dzus M. A.1, Shingareva E.I.1, Khorkov K. S. 1
1Stoletovs Vladimir state university, Vladimir, Russia
Email: khorkov@vlsu.ru

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The paper presents the results of a three-stage synthesis of composite nanoparticles based on a combination of femtosecond laser ablation and ultrasound exposure. The synthesis was carried out by laser ablation in deionized water and by laser ablation in a gaseous medium (argon or air) in the presence of a magnetic or electrostatic field. The approach used leads to the formation of composite magneto-plasmon nanoparticles with a "core-satellite" configuration. For the two types of composite nanoparticles under consideration, a redshift of the plasmon resonance position is observed from 520 nm (initial gold nanoparticles) to 545-548 nm (composite magneto-plasmon nanoparticles). The heating of solutions of composite Fe3O4-Au and PVP α-Fe-Au with concentrations of 0.06 mg/ml and 0.07 mg/ml was 10.6 oC and 10.6 oC, respectively. The experimental data obtained confirm the possibility of using the proposed combined approach to create composite nanoparticles with magnetic and plasmonic properties. This approach allows flexible variation of synthesis conditions to obtain nanoparticles with the necessary properties. Keywords: Keywords: laser ablation, laser fragmentation, magnetic nanoparticles, gold nanoparticles, composite nanoparticles, photothermal response, magneto-plasmon nanoparticles.
  1. A.A. Popov, Z. Swiatkowska-Warkocka, M. Marszalek, G. Tselikov, I.V. Zelepukin, A. Al-Kattan, S.M. Deyev, S.M. Klimentov, T.E. Itina, A.V. Kabashin. Nanomaterials, 12 (4), 649 (2022). DOI: 10.3390/nano12040649
  2. P. Hu, S. Zhang, T. Wu, D. Ni, W. Fan, Y. Zhu, R. Qian, J. Shi. Adv. Mater., 30 (31), 1801690 (2018). DOI: 10.1002/adma.201801690
  3. A. Basagni, V. Torresan, P. Marzola, M.B.F. van Raap, L. Nodari, V. Amendola. Faraday Discuss., 242, 286 (2023). DOI: 10.1039/D2FD00087C
  4. Q. Gu, J. Zhu, G.J. Weng, J.J. Li, J.W. Zhao. Microchim. Acta, 189 (12), 470 (2022). DOI: 10.1007/s00604-022-05559-0
  5. D.C. Luther, R. Huang, T. Jeon, X. Zhang, Y.W. Lee, H. Nagaraj, V.M. Rotello. Adv. Drug Deliv. Rev., 156, 188 (2020). DOI: 10.1016/j.addr.2020.06.020
  6. A.S. Goncalves, C.F. Rodrigues, A.F. Moreira, I.J. Correia. Acta Biomater., 116, 105 (2020). DOI: 10.1016/j.actbio.2020.09.008
  7. S. Hossen, M.K. Hossain, M.K. Basher, M.N.H. Mia, M.T. Rahman, M.J. Uddin. J. Adv. Res., 15, 1 (2019). DOI: 10.1016/j.jare.2018.06.005
  8. A. Mittal, I. Roy, S. Gandhi. Magnetochem., 8 (9), 107 (2022). DOI: 10.3390/magnetochemistry8090107
  9. H. Gavilan, S.K. Avugadda, T. Fernandez-Cabada, N. Soni, M. Cassani, B.T. Mai, R. Chantrell, T. Pellegrino. Chem. Soc. Rev., 50 (20), 11614 (2021). DOI: 10.1039/D1CS00427A
  10. O.Y. Griaznova, I.B. Belyaev, A.S. Sogomonyan, I.V. Zelepukin, G.V. Tikhonowski, A.A. Popov, A.S. Komlev, P.I. Nikitin, D.A. Gorin, A.V. Kabashin, S.M. Deyev. Pharmaceutics, 14 (5), 994 (2022). DOI: 10.3390/pharmaceutics14050994
  11. J. Kadkhoda, A. Tarighatnia, J. Barar, A. Aghanejad, S. Davaran. Photodiagnosis Photodyn. Ther., 37, 102697 (2022). DOI: 10.1016/j.pdpdt.2021.102697
  12. A.B. Bucharskaya, N.G. Khlebtsov, B.N. Khlebtsov, G.N. Maslyakova, N.A. Navolokin, V.D. Genin, E.A. Genina, V.V. Tuchin. Materials, 15 (4), 1606 (2022). DOI: 10.3390/ma15041606
  13. A. Sood, V. Arora, J. Shah, R.K. Kotnala, T.K. Jain. Mater. Sci. Eng. C, 80, 274 (2017). DOI: 10.1016/j.msec.2017.05.079
  14. M. Muniz-Miranda, F. Muniz-Miranda, E. Giorgetti. Nanomaterials, 10 (1), 132 (2020). DOI: 10.3390/nano10010132
  15. N.G. Semaltianos, G. Karczewski. ACS Appl. Nano Mater., 4 (7), 6407 (2021). DOI: 10.1021/acsanm.1c00715
  16. A.A. Laktionov, I.V. Sozaev, D.I. Tselikov, G.V. Tikhonovskii, M.S. Grigor'yeva, S.M. Klimentov, I.N. Zavestovskaya, A.V. Kabashin, A.A. Popov. Bull. Lebedev Phys. Inst., 51 (Suppl 7), S602 (2024). DOI: 10.3103/S1068335624601821
  17. M. Jelic, E. Muhlhausen, M. Kamp, F. Pohl, S. Riegg, M. Wickleder, G. Beck. Nano Struct. Nano-Objects, 39, 101246 (2024). DOI: 10.1016/j.nanoso.2024.101246
  18. U.E. Kurilova, A.S. Chernikov, D.A. Kochuev, L.S. Volkova, A.A. Voznesenskaya, R.V. Chkalov, D.V. Abramov, A.V. Kazak, I.A. Suetina, M.V. Mezentseva, L.I. Russu, A.Yu. Gerasimenko, K.S. Khor'kov. Biomed. Eng., 58, 106 (2024). DOI: 10.1007/s10527-024-10376-1
  19. A.S. Chernikov, D.A. Kochuev, M.A. Dzus, A.A. Voznesenskaya, U.E. Kurilova, R.V. Chkalov, A.V. Kazak, A.Yu. Gerasimenko, K.S. Khorkov. FTT, 66 (12), 2210 (2024) (in Russian). DOI: 10.61011/FTT.2024.12.59597.6290PA
  20. U.E. Kurilova, A.S. Chernikov, D.A. Kochuev, L.S. Volkova, A.A. Voznesenskaya, R.V. Chkalov, D.V. Abramov, A.V. Kazak, I.A. Suetina, M.V. Mezentseva, L.I. Russu, A.Yu. Gerasimenko, K.S. Khorkov. J. Biomed. Photonics Eng., 9 (2), 020301 (2023). DOI: 10.18287/JBPE23.09.020301
  21. C. Devos, A. Bampouli, E. Brozzi, G.D. Stefanidis, M. Dusselier, T. Van Gerven, S. Kuhn, Chem. Society Rev., 54 (1), 85 (2025). DOI: 10.1039/D4CS00148F
  22. E.A. Moaca, C.G. Watz, V. Socoliuc, R. Racoviceanu, C. Pacurariu, R. Ianos, S. C\^i nta-P\^i nzaru, L.B. Tudoran, F. Nekvapil, S. Iurciuc, C. Soica, C.A. Dehelean. Nanomaterials, 11 (5), 1189 (2021). DOI: 10.3390/nano11051189
  23. M. Sedki, G. Zhao, S. Ma, D. Jassby, A. Mulchandani, Sensors, 21 (3), 883 (2021). DOI: 10.3390/s21030883
  24. Y. Hirano, Y. Kasai, K. Sagata, Y. Kita. Bull. Chem. Society Jpn., 89 (9), 1026 (2016). DOI: 10.1246/bcsj.20160114

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