Related Experiment Video
Updated: Jan 15, 2026

Synthesis of Metal Nanoparticles Supported on Carbon Nanotube with Doped Co and N Atoms and its Catalytic Applications in Hydrogen Production
Published on: December 6, 2021
Modulating Hydrogen Exchange Capabilities by Heterogenizing Pd Nanoclusters onto Ni3C Multipods for Efficiently
Zulakha Zafar1, Bin Zhao1, Rida Javed1
1College of Civil and Transportation Engineering, College of Materials Science and Engineering, Shenzhen Key Laboratory of Energy Electrocatalytic Materials, Guangdong Provincial Key Laboratory of New Energy Materials Service Safety, Shenzhen University, Shenzhen 518055, China.
Abstract:
Nitrate and formaldehyde, common industrial byproducts and waterborne pollutants, pose serious environmental and health hazards, yet their efficient conversion remains challenging due to sluggish hydrogen (H*) transfer and limited recycling strategies. While recent studies have explored nitrate reduction (NO3RR) and formaldehyde oxidation (FOR) coupling, they faced critical limitations such as no H2 generation, a lack of electricity output, and reliance on Cu-based catalysts prone to deactivation. This work presents Pd nanoclusters on nickel carbide (Pdnc-Ni3C) that serve as a noncopper bifunctional catalyst that possesses superior H* exchange capabilities enabling dual-directional catalysis of NO3RR and FOR. At the cathode, Pdnc-Ni3C achieves an onset potential of +0.27 V vs RHE, and 98% Faradaic efficiency for NH3 at -0.3 V. At the anode, Pdnc-Ni3C achieves an efficient FOR at a low onset potential of 0.04 V and enables a broad oxidation window (0-1.2 V) with high current density (up to 910 mA cm-2), outperforming previously reported Cu- and Ni-based systems. Differential electrochemical mass spectra reveal a previously unexplored intermolecular coupling pathway for H2 evolution, advancing mechanistic insight into the 1-electron formaldehyde oxidation process. By coupling the NO3RR and FOR, a high-performance "Formaldehyde-Nitrate" galvanic cell is achieved with an OCV of 0.88 V and peak power density of 7.4 mW cm-2. Distinctively, this Ni based system simultaneously converts industrial waste into green energy carriers (H2, NH3) and value-added chemicals (formate) while producing electricity, offering both environmental and economic benefits.

