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Roozbahani R, Latifi S M, Mahmoudi Najafi S H, Pishbin E. Microreactor technology in the synthesis of copper oxide (CuO) metal nanoparticles. sjfst 2026; 8 (1) :1-5
URL: http://sjfst.srpub.org/article-6-273-en.html
1- Iranian Research Organization for Science and Technology. Iran
2- Iranian Research Organization for Science and Technology. Iran , m.gerami@itrc.ac.ir
Abstract:   (3 Views)
In this study, the synthesis of copper oxide (CuO) nanoparticles using continuous flow tubular microreactors has been investigated. Microreactors, as one of the advanced technologies in chemical engineering, allow for precise control of reaction conditions and, due to their microscopic dimensions, high mixing speed, and exceptional ability to manage reaction parameters, provide an ideal environment for the synthesis of uniform nanoparticles. The results of this study show that the use of microreactors can significantly reduce the inhomogeneous particle size distribution and improve the physical and chemical properties of CuO nanoparticles. The nanoparticles produced in this process have a uniform size distribution, high stability, and optimal properties for industrial applications. These properties make CuO nanoparticles find wide applications in areas such as catalysts, electronic technologies, and environmental processes. This research shows that the use of microreactors can help improve production efficiency, and develop sustainable and uniform processes in nanoparticle synthesis
Full-Text [PDF 434 kb]   (4 Downloads)    
Type of Study: Research | Subject: Materials Chemistry
Received: 2025/11/15 | Revised: 2025/12/23 | Accepted: 2026/02/10 | Published: 2026/03/25

References
1. A.A. Pomeransky, I.B. Khriplovich, Equations of motion of spinning relativistic particle in external fields, Surv. High Energy Phys. 14 (1999) 145-173. [DOI:10.1080/01422419908228843]
2. V. Sebastian, M. Arruebo, Microfluidic production of inorganic nanomaterials for biomedical applications, in: H.A. Santos, D. Liu, H. Zhang (Eds.), Microfluid. Pharm. Appl. From Nano/Micro Syst. Fabr. to Control. Drug Deliv., William Andrew Publishing, 2019: pp. 179-216. [DOI:10.1016/B978-0-12-812659-2.00008-9] [PMID]
3. H. Ben Bacha, N. Ullah, A. Hamid, N.A. Shah, A comprehensive review on nanofluids: Synthesis, cutting-edge applications, and future prospects, Int. J. Thermofluids 22 (2024) 100595. [DOI:10.1016/j.ijft.2024.100595]
4. A. Labanni, M. Nasir, S. Arief, Research progress and prospect of copper oxide nanoparticles with controllable nanostructure, morphology, and function via green synthesis, Mater. Today Sustain. 24 (2023) 100526. [DOI:10.1016/j.mtsust.2023.100526]
5. P. Chen, T. Zhang, Analytical solutions to the Navier-Stokes equations for non-Newtonian fluid, Appl. Math. 24 (2009) 483-489. [DOI:10.1007/s11766-009-1965-y]
6. H. Lv, Z. Yang, J. Zhang, G. Qian, X. Duan, Z. Shu, X. Zhou, Liquid Flow and Mass Transfer Behaviors in a Butterfly-Shaped Microreactor, Micromachines 12 (2021). [DOI:10.3390/mi12080883] [PMID] [PMCID]
7. B. Zhao, Y. Ren, D. Gao, L. Xu, Y. Zhang, Heat transfer methodology of microreactor based on Bandelet finite element method, Int. J. Heat Mass Transf. 132 (2019) 715-722. [DOI:10.1016/j.ijheatmasstransfer.2018.11.158]
8. A.G. Vega-Poot, G. Rodríguez-Gattorno, O.E. Soberanis-Domínguez, R.T. Patiño-Díaz, M. Espinosa-Pesqueira, G. Oskam, The nucleation kinetics of ZnO nanoparticles from ZnCl2 in ethanol solutions, Nanoscale 2 (2010) 2710-2717. [DOI:10.1039/c0nr00439a] [PMID]
9. M. Tomellini, Fokker-Planck equation for the particle size distribution function in KJMA transformations, Phys. A Stat. Mech. Its Appl. 615 (2023) 128515. [DOI:10.1016/j.physa.2023.128515]
10. Y. He, K.J. Kim, C.H. Chang, Segmented microfluidic flow reactors for nanomaterial synthesis, Nanomaterials 10 (2020) 1-21. [DOI:10.3390/nano10050866] [PMID] [PMCID]

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