Enabling Direct H2O2 Production in Acidic Media through Rational Design of Transition Metal Single Atom Catalyst
Research output: Journal Publications and Reviews (RGC: 21, 22, 62) › 21_Publication in refereed journal › peer-review
Author(s)
Detail(s)
Original language | English |
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Pages (from-to) | 658-674 |
Journal / Publication | Chem |
Volume | 6 |
Issue number | 3 |
Online published | 16 Jan 2020 |
Publication status | Published - 12 Mar 2020 |
Externally published | Yes |
Link(s)
Abstract
The electrochemical oxygen reduction reaction in acidic media offers an attractive route for direct hydrogen peroxide (H2O2) generation and on-site applications. Unfortunately there is still a lack of cost-effective electrocatalysts with high catalytic performance. Here, we theoretically designed and experimentally demonstrated that a cobalt single-atom catalyst (Co SAC) anchored in nitrogen-doped graphene, with optimized adsorption energy of the *OOH intermediate, exhibited a high H2O2 production rate, which even slightly outperformed the state-of-the-art noble-metal-based electrocatalysts. The kinetic current ofH2O2 production over Co SAC could reach 1 mA=cm2disk at 0.6 V versus reversible hydrogen electrode in 0.1 M HClO4 with H2O2 faraday efficiency > 90%, and these performance measures could be sustained for 10 h without decay. Further kinetic analysis and operando X-ray absorption study combined with density functional theory (DFT) calculation demonstrated that the nitrogen-coordinated single Co atom was the active site and the reaction was rate-limited by the first electron transfer step. © 2019 Published by Elsevier Inc.
Research Area(s)
- catalyst design, electrocatalysis, hydrogen peroxide, oxygen reduction reaction, SDG7: Affordable and clean energy, SDG9: Industry, innovation, and infrastructure, single atom catalyst
Citation Format(s)
Enabling Direct H2O2 Production in Acidic Media through Rational Design of Transition Metal Single Atom Catalyst. / Gao, Jiajian; Yang, Hong bin; Huang, Xiang et al.
In: Chem, Vol. 6, No. 3, 12.03.2020, p. 658-674.
In: Chem, Vol. 6, No. 3, 12.03.2020, p. 658-674.
Research output: Journal Publications and Reviews (RGC: 21, 22, 62) › 21_Publication in refereed journal › peer-review