ISSN print edition: 0366-6352
ISSN electronic edition: 1336-9075
Registr. No.: MK SR 9/7

Published monthly
 

Synthesis and characterization of Cu-Ni and Cu-Co nanowires obtained using CTAB as surfactant

Anderson Y. Suárez-Heredia, Juan A. Torres-Luna, and José G. Carriazo

Laboratorio de Diseño y Reactividad de Estructuras Sólidas (Lab-DRES, 125), Departamento de Química, Facultad de Ciencias, Universidad Nacional de Colombia-Bogotá, Bogotá, Colombia

 

E-mail: jcarriazog@unal.edu.co

Received: 20 December 2025  Accepted: 30 April 2026

Abstract:

This work reports the tuned chemical synthesis of copper-based nanowires, including metal nanostructures of pure Cu, Cu–Ni, and Cu–Co. The synthesized nanostructures were evaluated by scanning electron microscopy (SEM), energy dispersive analysis (EDX), and X-ray diffraction (XRD). The results confirmed the synthesis of metallic copper nanowires using ODA (octadecylamine) as surfactant, and glucose as reducing agent, through a hydrothermal method. These nanostructures were then used as metal core for the synthesis of bimetallic nanowires. Thus, two different surfactants, polyvinylpyrrolidone (PVP) and cetyltrimethylammonium bromide (CTAB), were used for the synthesis of Cu–Ni core–shell nanowires, using hydrazine as reducing agent, in order to explore the effect of CTAB on this synthesis. Interestingly, PVP promoted higher crystallinity, in agreement with earlier studies, while CTAB led to more efficient nickel deposition on the core nanowires. Finally, CTAB was used for the new synthesis of bimetallic Cu-Co nanowires. These results confirm a key advance about using a new surfactant (CTAB) for synthesizing bimetallic nanowires, finding a new method for obtaining Cu–Co nanowires without needing external magnetic fields (a typical condition reported currently in the literature). The findings open a promising pathway for fabricating complex bimetallic nanostructures through straightforward chemical methods.

Graphical abstract

Keywords: Copper nanowire; Mixed metal nanowire; Bimetallic nanowire; Cobalt nanostructure; Nickel nanostructure; Metal nanomaterial

Full paper is available at www.springerlink.com.

DOI: 10.1007/s11696-026-04990-4

 

Chemical Papers 80 (9) 10027–10041 (2026)

Friday, September 04, 2026

IMPACT FACTOR 2025
2.7
SCImago Journal Rank 2025
0.41
SEARCH
Advanced
VOLUMES
© 2026 Chemical Papers