Abstract
Catalysis is crucial for lowering the operating temperature of MgH2 hydrogen storage, enabling its practical use under milder conditions. However, single-component catalysts typically lack the versatility to efficiently drive all reaction steps involved in the (de)hydrogenation of MgH2. Herein, we reveal that Ni single-atom catalysts (Ni1) excel specifically in hydrogen dissociation/recombination on the Mg/MgH2 surface, whereas Mg2Ni nanoparticles are more effective in cleaving Mg─H bonds and facilitating hydrogen transport within the bulk. This complementary functionality motivates their integration into a hybrid system with spatial relay catalysis. The synthesized Ni1@Mg2Ni-MgH2 composite exhibits remarkably enhanced low-temperature performance, absorbing 5 wt.% H2 at 150°C within 60 min and releasing hydrogen from as low as 177°C, outperforming the individual components. This work demonstrates a successful spatial relay catalysis strategy between the emerging single-atom catalysts and a conventional intermetallic compound, paving a new avenue for the design of hybrid catalytic systems for complex reactions.
| Original language | English |
|---|---|
| Article number | e75556 |
| Journal | Advanced Functional Materials |
| Volume | 36 |
| Issue number | 47 |
| DOIs | |
| State | Published - 11 Jun 2026 |
Keywords
- MgH
- hydrogen pump
- hydrogen spillover
- hydrogen storage
- single-atom catalysts
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