TY - JOUR
T1 - Interstitial Pt–Pd Bimetallic Sites Enable Cooperative Intermediate Regulation for Methanol-Assisted Hydrogen Generation
AU - Zheng, Xiaoyu
AU - Li, Minghui
AU - Zhang, Xiaotao
AU - Wang, Ziqi
AU - Zhang, Lin
AU - Zhou, Yao
N1 - Publisher Copyright:
© 2026 The Author(s). Rare Metals published by John Wiley & Sons Australia, Ltd on behalf of Youke Publishing Co., Ltd.
PY - 2026/7
Y1 - 2026/7
N2 - Methanol-assisted hydrogen generation reduces energy consumption while maintaining high hydrogen productivity. However, constructing bifunctional catalysts with high hydrogen evolution reaction (HER) activity, CO tolerance, and long-term stability remains challenging. Here, we develop Pt–Pd bimetallic sites anchored on WCN in which the interstitial site between Pt and Pd atoms optimizes H* adsorption to accelerate HER and modulates HCO* adsorption to promote the HCOOH* formation pathway, thereby suppressing CO poisoning during the methanol oxidation reaction (MOR). Electronic coupling optimizes H* adsorption and promotes charge redistribution, delivering a HER overpotential of 43 mV, a Tafel slope of 59.6 mV dec−1, and sustained stability over 400 h. Meanwhile, the synergetic Pt–Pd configuration enhances CO* tolerance and achieves a mass activity of 5.57 A mgPtPd−1, 10.0 times higher than commercial Pt/C with stable performance retained over 60,000 s. When PtPd WCN serves as both anode and cathode in a MOR||HER flow cell, it requires a low voltage of 0.58 V at 10 mA cm−2 and delivers stable operation for over 250 h. This work establishes an atomic-level strategy for designing bifunctional catalysts, providing a pathway toward energy-efficient methanol-assisted hydrogen generation.
AB - Methanol-assisted hydrogen generation reduces energy consumption while maintaining high hydrogen productivity. However, constructing bifunctional catalysts with high hydrogen evolution reaction (HER) activity, CO tolerance, and long-term stability remains challenging. Here, we develop Pt–Pd bimetallic sites anchored on WCN in which the interstitial site between Pt and Pd atoms optimizes H* adsorption to accelerate HER and modulates HCO* adsorption to promote the HCOOH* formation pathway, thereby suppressing CO poisoning during the methanol oxidation reaction (MOR). Electronic coupling optimizes H* adsorption and promotes charge redistribution, delivering a HER overpotential of 43 mV, a Tafel slope of 59.6 mV dec−1, and sustained stability over 400 h. Meanwhile, the synergetic Pt–Pd configuration enhances CO* tolerance and achieves a mass activity of 5.57 A mgPtPd−1, 10.0 times higher than commercial Pt/C with stable performance retained over 60,000 s. When PtPd WCN serves as both anode and cathode in a MOR||HER flow cell, it requires a low voltage of 0.58 V at 10 mA cm−2 and delivers stable operation for over 250 h. This work establishes an atomic-level strategy for designing bifunctional catalysts, providing a pathway toward energy-efficient methanol-assisted hydrogen generation.
KW - anti-CO poisoning
KW - bimetallic active sites
KW - hydrogen evolution reaction (HER)
KW - methanol oxidation reaction (MOR)
KW - methanol-assisted water electrolysis
UR - https://www.scopus.com/pages/publications/105044630407
U2 - 10.1002/rar2.70433
DO - 10.1002/rar2.70433
M3 - Article
AN - SCOPUS:105044630407
SN - 1001-0521
VL - 45
JO - Rare Metals
JF - Rare Metals
IS - 7
M1 - e70433
ER -