In Situ Grown RuNi Alloy on ZrNiNx as a Bifunctional Electrocatalyst Boosts Industrial Water Splitting

  • Zhang, Yaojin
  • Li, Zijian
  • Jang, Haeseong
  • Kim, Min Gyu
  • Cho, Jaephil
  • 외 3명
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초록

Alkaline water electrolysis represents a pivotal technology for green hydrogen production yet faces critical challenges including limited current density and high energy input. Herein, a heterostructured bimetallic nitrides supported RuNi alloy (RuNi/ZrNiNx) is developed through in situ epitaxial growth under ammonolysis, achieving exceptional bifunctional activity and durability for hydrogen evolution reaction (HER) and oxygen evolution reaction (OER) in 1 m KOH electrolyte. The RuNi/ZrNiNx exhibits a HER current density of −2 A cm−2 at an overpotential of 392.8 mV, maintaining initial overpotential after 1000 h continuous electrolysis at −500 mA cm−2. For OER, it delivers a current density of 2 A cm−2 at 1.822 V versus RHE, and sustains stable operation for 705 h at 500 mA cm−2. Experimental and theoretical studies unveil that the charge redistribution-induced high-valence Zr centers effectively polarize H─O bonds and promote water dissociation, and the electron-deficient interface Ru sites optimize hydrogen desorption kinetics. Dynamic OH spillovers from Zr sites to the adjacent tri-coordinated Ni hollow sites in NiNx promote rapid *OH intermediate desorption and active site regeneration. Notably, the tri-coordinated Ni hollow sites in NiNx proximal to Zr atoms exhibit tailored adsorption strength for oxo-intermediates, enabling a more energetically favorable pathway for O2 production.

키워드

H and OH spilloverampere‐scale current densitiesbifunctional electrocatalystcharge redistributionwater electrolysis
제목
In Situ Grown RuNi Alloy on ZrNiNx as a Bifunctional Electrocatalyst Boosts Industrial Water Splitting
저자
Zhang, YaojinLi, ZijianJang, HaeseongKim, Min GyuCho, JaephilLiu, ShangguoLiu, XienQin, Qing
DOI
10.1002/adma.202501586
발행일
2025-04
유형
Article; Early Access
저널명
Advanced Materials
37
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