ISSN

0974-4150 (Online)
0974-4169 (Print)


Author(s): Archana B. Mali, Bajirao B. Ahire

Email(s): archanamali268@gmail.com

DOI: 10.52711/0974-4150.2026.00066   

Address: Archana B. Mali1*, Bajirao B. Ahire2
1Department of Chemistry, N.V.P. Mandal’s Arts, Commerce and Science College, Lasalgaon, Nashik, Affiliated to Savitribai Phule Pune University, Pune (M.S.) India.
2N.V.P. Mandal’s Arts, Commerce and Science College, Lasalgaon, Nashik, Affiliated to Savitribai Phule Pune University, Pune (M.S.) India.
*Corresponding Author

Published In:   Volume - 19,      Issue - 5,     Year - 2026


ABSTRACT:
Nickel-based bimetallic and trimetallic nanoparticles, particularly obtained in combination with copper, palladium, and cerium, have emerged as a promising class of materials in the fields of catalysis, environmental remediation, and biomedical applications. This review investigates their scientific significance by exploring their multifunctional properties, structural tunability, and broad technological potential. The objective of the study is to synthesize existing experimental research on synthesis techniques, structural characterization, and functional applications of Ni-based nano-alloys to identify performance trends, design strategies, and current research gaps. A systematic literature review methodology was employed, resulting in a final dataset comprising 107 peer-reviewed studies published between 2001 and 2024. Key themes include comparative analysis of physical, chemical, and green synthesis methods; advanced morphological, optical, magnetic, and electronic characterization; and application-specific insights in electrocatalysis, environmental degradation, and biosensing. The review reveals that the synthesis route and nanostructure architecture significantly influence performance metrics such as redox behaviour, stability, and surface reactivity. Trimetallic systems, although underexplored, show potential for hybrid applications due to synergistic effects. Challenges remain in scalability, long-term biocompatibility, and reproducibility, especially for green synthesis approaches. Future directions call for the integration of real-time characterization tools, machine learning-based synthesis prediction, and interdisciplinary collaborations to scale these materials for industrial and healthcare innovations in the field. This review contributes to a deeper understanding of compositional design in Ni-alloy nanoparticles and outlines pathways for advancing sustainable nanotechnology solutions.


Cite this article:
Archana B. Mali, Bajirao B. Ahire. Emerging Trends in Synthesis, Characterization Studies, and Applications of Nanoparticles of Nickel with Copper, Palladium, and Cerium Metals – A Review. Asian Journal of Research in Chemistry. 2026; 19(5):451-2. doi: 10.52711/0974-4150.2026.00066

Cite(Electronic):
Archana B. Mali, Bajirao B. Ahire. Emerging Trends in Synthesis, Characterization Studies, and Applications of Nanoparticles of Nickel with Copper, Palladium, and Cerium Metals – A Review. Asian Journal of Research in Chemistry. 2026; 19(5):451-2. doi: 10.52711/0974-4150.2026.00066   Available on: https://ajrconline.org/AbstractView.aspx?PID=2026-19-5-7


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102.    Arora AK, Chauhan L, Kumar P. Synthesis and characterization of zirconium oxide nanoparticles using Sapindus mukorossi (soapnut) as natural surfactant: A green synthetic approach. Asian J Res Chem. 2023: 79–82. doi:10.52711/0974-4150.2023.00013
103.    Mebrouki N, Hamida SB, Benmebrouk L, Gheriani R, Zenkhri L. Synthesis and characterization of nickel oxide thin films by spray pyrolysis method: Effect of nickel source nature. Asian J Res Chem. 2022: 159–162. doi:10.52711/0974-4150.2022.00026
104.    Bouafia A, Laouini SE, Ouahrani MR. A review on green synthesis of CuO nanoparticles using plant extract and evaluation of antimicrobial activity. Asian J Res Chem. 2020; 13(1): 65. doi:10.5958/0974-4150.2020.00014.0
105.    Nair SG, Jadhav VR. Biosynthesis of silver nanoparticles and comparison of antifungal activity with ethanolic extract of Ixora coccinea. Asian J Res Chem. 2020; 13(3): 198. doi:10.5958/0974-4150.2020.00038.3
106.    Gurlhosur SH, Mathad S, Patil VM. Regeneration of used iron oxide nanoparticles (α-Fe₂O₃) in reduction of chromium (VI) and cadmium (II). Asian J Res Chem. 2020; 13(5): 319–322. doi:10.5958/0974-4150.2020.00061.9
107.    Pitrubhakta JR, Kere TA, Shinde SS, Soni SA, Jadhav VR. Synthesis, characterization, and gas sensing performance of nanometer TiO₂ thick film by hydrothermal method. Asian J Res Chem. 2020; 13(5): 360–364. doi:10.5958/0974-4150.2020.00068.1
108.    Rana PK, Janwadkar SP, Yadav DK. Synthesis of nanocrystalline copper oxide using copper(II) semicarbazone derivative. Asian J Res Chem. 2021: 255–258. doi:10.52711/0974-4150.2021.00043

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