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Poisoning-Resistant Complete Hydrogenation of Liquid Organic Hydrogen Carriers Over Ni-Based Inverse Catalysts

  • Xiangxin Jin
  • , Rulong Ma
  • , Siwei Li
  • , Chengxi Feng
  • , Xin Tang
  • , Changhao Wang
  • , Chuqiao Song
  • , Yaqi Wang
  • , Hao Deng
  • , Siyu Yao
  • , Yunsong Li
  • , Lili Lin
  • Zhejiang University of Technology
  • School of Chemical Engineering and Technology
  • Zhejiang Lab
  • Zhejiang University

Research output: Contribution to journalArticlepeer-review

Abstract

Efficient hydrogen storage using liquid organic hydrogen carriers (LOHCs) requires catalysts that combine high low-temperature activity with robustness against impure H2 feeds. Conventional supported Ni catalysts are hindered by strong substrate adsorption and consequent site poisoning. Herein, a Ni based inverse catalyst consisting of CeZrOx clusters supported on metallic Ni is designed, which achieves >99.9% yield in the complete hydrogenation of diverse LOHCs—including mono-, bi-, and triphenyl-type N-heterocyclic and purely aromatic substrates—at low-temperature of 130°C, exhibiting a 200-fold higher activity than conventional Ni catalysts. Key to this performance is the oxide-induced polarization of Ni atoms (Niδ+), creating a thermodynamic stable subsurface reservoir and migration routes for dissociated H* species. Through this hydrogen transport pathway, hydrogen can efficiently hydrogenate the strongly adsorbed LOHCs. The significantly lowered H2 kinetic order confirms the increased surface H* coverage in this inverse configuration. Decoupling the strong substrate adsorption sites and hydrogenation sites, the inverse configuration prevents self-poisoning, enabling complete hydrogenation using crude H2 and solvent-free LOHCs. This work highlights the superior substrate generality and complete-hydrogenation capability of the Ni inverse catalyst, establishing such inverse systems as a versatile platform for mild and robust LOHC-based hydrogen storage.

Original languageEnglish
JournalAngewandte Chemie - International Edition
DOIs
StateAccepted/In press - 2026
Externally publishedYes

Keywords

  • hydrogenation
  • inverse catalyst
  • LOHCs
  • poisoning-resistant
  • subsurface H*

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