Mechanistic Insights into Morphine Electrooxidation on Morphology-Controlled Cu/Co3O4@Graphene Nanoplatelet Nanocomposites: Experimental Validation and DFT Analysis
Author : Dr. Satish Kumar
Abstract : In this experimental study, a series of spinel metal/carbon nanocomposites, namely Au/Co3 O4 @GNP, Ag/Co3 O4 @GNP, Cu/Co3 O4 @ GNP, and Ni/Co3 O4 @GNP, were synthesized through hydrothermal synthesis using graphene nanoplatelets as a supportive material and studied for the electrochemical sensing of morphine. Structural and surface characterization was evaluated through XRD, BET, XPS, SEM, and TEM, which confirmed the desired formation of crystalline metal-Co3 O4 nanostructures loaded on the graphene network with mesoporous characteristics and good surface integration. Among the prepared nanocomposites, Cu/Co3 O4 @GNP revealed a unique porous cabbage-like morphology with a highly interconnected framework, providing numerous active sites and effective electron-transfer pathways. Electrochemical studies were performed using EIS, CV, and DPV, demonstrating that the nanocomposite-Cu/Co3 O4 @GNP exhibited the highest electrocatalytic activity toward morphine oxidation in 0.1 M PBS at pH 7.0. Under optimally configured conditions, the synthesized sensor was fabricated for a sequential detection range of 0.2-30 µM which delivered a lowest detection threshold of 0.2 µM. The electrode modified with Cu/Co3 O4 @GNP also showed good stability, with repeatability and its practical applicability in a biological sample, demonstrating its reliable potential for morphine analysis. Density functional theory calculations revealed that metal decoration modulates both morphine adsorption and the electronic structure of the Co3 O4 /graphene heterostructure, while Cu decoration provides favourable adsorption characteristics and enhanced electronic states near the Fermi level, supporting efficient charge-transfer processes during sensing. The superior sensing performance can be assigned to the synergistic connection between Co3 O4 , Cu metal, and graphene nanoplatelets, together promoting rapid electron transfer, enhancing the electroactive surface area, and supporting the oxidation of morphine. This research study delivers Cu/Co3 O4 @GNP as a highly effective nanocomposite platform for sensitive and reliable electrochemical sensing of morphine under optimal conditions.
Keywords : Morphine Sensing; Cu/Co₃O₄@GNP; Electrochemical Sensor; Nanocomposites; DFT
Conference Name : International Conference on Nanotechnology in Structural Engineering (ICNTSE - 26)
Conference Place : Ahmedabad, India
Conference Date : 12th Sep 2026