Electrocatalytic Hydrogenation of 5‐Hydroxymethylfurfural Promoted by a Ru<sub>1</sub>Cu Single‐Atom Alloy Catalyst
Электрокаталитическое гидрирование 5-гидроксиметилфурфурола на катализаторе из одноатомного сплава Ru₁Cu
2022-07-25
SCID: 54.1/jwenezyb
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2,5-dihydroxymethylfuran5-hydroxymethylfurfuralRu1Cu single-atom alloyelectrocatalytic hydrogenationwater dissociation
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Abstract (AI)
Abstract Electrochemical reduction of biomass‐derived 5‐hydroxymethylfurfural (HMF) represents an elegant route toward sustainable value‐added chemicals production that circumvents the use of fossil fuel and hydrogen. However, the reaction efficiency is hampered by the high voltage and low activity of electrodes (Cu, Bi, Pb). Herein, we report a Ru 1 Cu single‐atom alloy (SAA) catalyst with isolated Ru atoms on Cu nanowires that exhibits an electrochemical reduction of HMF to 2,5‐dihydroxymethylfuran (DHMF) with promoted productivity (0.47 vs. 0.08 mmol cm −2 h −1 ) and faradic efficiency (FE) (85.6 vs. 71.3 %) at −0.3 V (vs. RHE) compared with Cu counterpart. More importantly, the FE (87.5 %) is largely retained at high HMF concentration (100 mM). Kinetic studies by using combined electrochemical techniques suggest disparate mechanisms over Ru 1 Cu and Cu, revealing that single‐atom Ru promotes the dissociation of water to produce H* species that effectively react with HMF via an electrocatalytic hydrogenation (ECH) mechanism.
Key Findings
1
A Ru₁Cu single-atom alloy with isolated Ru atoms on Cu nanowires catalyzes electrochemical HMF reduction to 2,5-dihydroxymethylfuran.
2
Kinetic studies indicate isolated Ru atoms promote water dissociation to H* species, enabling electrocatalytic hydrogenation of HMF.
3
Ru₁Cu achieves 85.6% faradaic efficiency, exceeding the 71.3% achieved by Cu under identical conditions.
4
Ru₁Cu increases DHMF productivity to 0.47 from 0.08 mmol cm⁻² h⁻¹ compared with Cu at −0.3 V versus RHE.
5
The catalyst retains high selectivity, with 87.5% faradaic efficiency at a high HMF concentration of 100 mM.
Research Object
Ru1Cu single-atom alloy catalyst with isolated Ru atoms on Cu nanowires for electrochemical HMF reduction
Research Subject
Electrocatalytic hydrogenation of HMF to DHMF, including productivity, faradaic efficiency, and the water-dissociation mechanism promoted by isolated Ru atoms
Publication Details
Publication Date
2022-07-25
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