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Updated: Jul 16, 2026

Synthesis and Performance Characterizations of Transition Metal Single Atom Catalyst for Electrochemical CO2 Reduction
Published on: April 10, 2018
Three-Dimensional Mn-Substituted CuCo2S4-MWCNT for Electrocatalytic Oxidation of Glycerol
Jiaojie Wang1, Zhiyang Zhong2, Bingyu Chen1
1School of Petrochemical Engineering, Changzhou University, Changzhou213164, PR China.
Abstract:
Given its cost-effectiveness and favorable electrochemical properties, Cu-Co spinel sulfide was selected as the electrode material for an in-depth investigation. The Mn-substituted CuCo2S4-multiwalled carbon nanotube (MWCNT) composite was then synthesized via a solvothermal approach, targeting the electrocatalytic oxidation of glycerol. Physical and electrochemical characterizations revealed that the CuCo0.5Mn1.5S4-MWCNT composite demonstrated a superior catalytic performance. This was evidenced by its low overpotential, reduced electrochemical impedance (17.8 Ω), and smaller Tafel slope (60 mV dec-1), along with good long-term stability (retention rate of 73%) and tolerance under operational conditions. The enhanced performance of the CuCo0.5Mn1.5S4-MWCNT composite is likely attributed to Mn ion substitution. This substitution not only elevates the relative surface concentration of Co3+ and Mn3+ in the sulfur spinel structure but also increases the Oads/Olatt ratio to 1.2. Density functional theory (DFT) calculations further support that Mn substitution significantly boosts the electrical conductivity of the composite. Moreover, the integration of highly conductive MWCNTs as a structural framework results in a stable 3D architecture within the CuCo0.5Mn1.5S4-MWCNT composite. This research presents a promising strategy for electrocatalytic glycerol oxidation, leveraging hybrid materials composed of transition-metal sulfides and carbonaceous substrates as conductive platforms.

