Boron‐Intercalation‐Induced Phase Evolution of Rh Metallene for Energy‐Saving H2 Production by H2O2 Oxidation Coupled with Water Electrolysis
Фазовая эволюция металлена Rh, индуцированная интеркаляцией бора, для энергосберегающего получения H2 посредством окисления H2O2 в сочетании с электролизом воды
2022-07-17
SCID: 54.1/2t5cbwxc
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RhB metalleneboron intercalationenergy-saving water electrolysishydrogen evolution reactionhydrogen peroxide electro-oxidation
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Abstract (AI)
Abstract Tailoring the morphology and crystal structure of metallene is critical to improve its electrocatalytic performance. In this work, hetero‐phase RhB metallene (h‐RhB metallene) with amorphous/crystalline structure is readily prepared by a two‐step method. The h‐RhB metallene is very unique in its non‐metallic heteroatom doping and amorphous/crystalline structure. Benefiting from the unique metallene structure and the optimized electronic states induced by the incorporation of B atoms, the h‐RhB metallene exhibits superior performance for hydrogen evolution reaction and hydrogen peroxide electro‐oxidation reaction (HPOR). When coupled with HPOR, the h‐RhB metallene||h‐RhB metallene water electrolysis two‐electrode system exhibits a lower cell voltage of 0.379 V (@ 10 mA cm−2) compared with the overall water splitting (1.35 V). The presented synthetic method provides a powerful strategy to design metallene with hetero‐phase for energy‐saving H2 production.
Key Findings
1
A two-step synthesis produces hetero-phase RhB metallene with an amorphous/crystalline structure and boron heteroatom incorporation.
2
Boron incorporation induces optimized electronic states, while the metallene architecture enhances electrocatalytic activity for hydrogen evolution and hydrogen peroxide electro-oxidation.
3
The RhB metallene enables coupled hydrogen peroxide oxidation and water electrolysis at a cell voltage of 0.379 V at 10 mA cm−2.
4
The coupled system requires substantially lower voltage than overall water splitting, which operates at 1.35 V under the reported conditions.
5
The synthesis strategy offers a route to hetero-phase metallene catalysts for energy-saving hydrogen production.
Research Object
hetero-phase RhB metallene with an amorphous/crystalline structure
Research Subject
the effects of boron intercalation and the amorphous/crystalline heterophase structure on electrocatalytic performance for the hydrogen evolution reaction and hydrogen peroxide electro-oxidation, enabling energy-saving H2 production
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2022-07-17
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