Engineering the active phase in Ni-BDC via Cr doping and electrochemical reconstruction for efficient methanol oxidation

Abstract

NiOOH serves as the active phase of Ni-based electrocatalysts in the methanol oxidation reaction (MOR), where the formation efficacy directly determines the overall electrocatalytic performance. However, the low efficiency in the conversion of Ni2+ to Ni3+ restricts the formation of NiOOH in Ni-based electrocatalysts. We have selected CrNi-BDC as the pre-electrocatalyst, in which Cr doping modulates the reconstruction behavior of CrNi-BDC during the electrochemical process. Specifically, the synergistic effect of Cr doping and electrochemical reconstruction not only facilitates the formation of NiOOH, but also drives the transformation of nanosheets into a porous structure to expose more active sites. Meanwhile, there are more OH absorbed on the surface of R-CrNi-BDC, benefitting from the chemical reconstruction from Ni2+ to Ni3+, which lays a critical foundation for the MOR performance of CrNi-BDC. The reconstructed CrNi-BDC (R-CrNi-BDC) exhibits exceptional MOR performance (256 mA cm−2 at 1.6 V vs. RHE) and maintains excellent stability for 30 h. This study provides a novel strategy for designing high efficiency MOR electrocatalysts by regulating the formation efficiency of the Ni-based active phase.

Graphical abstract: Engineering the active phase in Ni-BDC via Cr doping and electrochemical reconstruction for efficient methanol oxidation

Supplementary files

Article information

Article type
Paper
Submitted
04 Feb 2026
Accepted
20 Mar 2026
First published
08 Apr 2026

New J. Chem., 2026, Advance Article

Engineering the active phase in Ni-BDC via Cr doping and electrochemical reconstruction for efficient methanol oxidation

H. Hong, Q. Zhong, H. Li, Q. Bu and Q. Liu, New J. Chem., 2026, Advance Article , DOI: 10.1039/D6NJ00442C

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