TY - JOUR
T1 - A Dual-Carbide Heterostructure Interface-Driven Broad pH Range Hydrogen Fuel Production
AU - Sonwani, Disha
AU - Nayak, Bhojkumar
AU - Mishra, Neeraj
AU - Kanade, Sandeep C.
AU - Kumar, Hitesh
AU - Chudiwal, Ankita
AU - Makov, Guy
AU - Ottakam Thotiyl, Musthafa
N1 - Publisher Copyright:
© 2025 American Chemical Society
PY - 2025/9/2
Y1 - 2025/9/2
N2 - The development of efficient and cost-effective electrocatalysts for sustainable hydrogen production remains crucial for transitioning to a carbon-neutral energy economy. We present a dual-carbide heterostructure interface that demonstrates an exceptional hydrogen evolution reaction (HER) performance across a wide pH range. The catalyst achieves low overpotentials comparable to platinum benchmarks and maintains stability during extended operation in acidic, neutral, and alkaline electrolytes. The pH-universal performance arises from the optimized hydrogen adsorption and desorption energetics at the heterointerface, which induces synergistic effects that improve the overall reaction kinetics of the HER. Density functional theory calculations reveal that the incorporation of dual carbide heterostructure alters the electronic landscape with a favorable ΔGH*of ∼0.34 eV, which is closer to the thermoneutral value compared to the individual carbides. When tested in a saline-water electrolyzer, the catalyst delivers long-term consistent performance for 200 h without observable degradation. This work advances nonprecious metal HER catalysis by demonstrating how interface engineering can achieve performance comparable to noble metals, while offering superior stability and cost-effectiveness.
AB - The development of efficient and cost-effective electrocatalysts for sustainable hydrogen production remains crucial for transitioning to a carbon-neutral energy economy. We present a dual-carbide heterostructure interface that demonstrates an exceptional hydrogen evolution reaction (HER) performance across a wide pH range. The catalyst achieves low overpotentials comparable to platinum benchmarks and maintains stability during extended operation in acidic, neutral, and alkaline electrolytes. The pH-universal performance arises from the optimized hydrogen adsorption and desorption energetics at the heterointerface, which induces synergistic effects that improve the overall reaction kinetics of the HER. Density functional theory calculations reveal that the incorporation of dual carbide heterostructure alters the electronic landscape with a favorable ΔGH*of ∼0.34 eV, which is closer to the thermoneutral value compared to the individual carbides. When tested in a saline-water electrolyzer, the catalyst delivers long-term consistent performance for 200 h without observable degradation. This work advances nonprecious metal HER catalysis by demonstrating how interface engineering can achieve performance comparable to noble metals, while offering superior stability and cost-effectiveness.
UR - https://www.scopus.com/pages/publications/105014811723
U2 - 10.1021/acs.langmuir.5c02133
DO - 10.1021/acs.langmuir.5c02133
M3 - Article
C2 - 40839554
AN - SCOPUS:105014811723
SN - 0743-7463
VL - 41
SP - 22820
EP - 22828
JO - Langmuir
JF - Langmuir
IS - 34
ER -