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Building and identifying highly active oxygenated groups in carbon materials for oxygen reduction to H2O2.


ABSTRACT: The one-step electrochemical synthesis of H2O2 is an on-site method that reduces dependence on the energy-intensive anthraquinone process. Oxidized carbon materials have proven to be promising catalysts due to their low cost and facile synthetic procedures. However, the nature of the active sites is still controversial, and direct experimental evidence is presently lacking. Here, we activate a carbon material with dangling edge sites and then decorate them with targeted functional groups. We show that quinone-enriched samples exhibit high selectivity and activity with a H2O2 yield ratio of up to 97.8 % at 0.75?V vs. RHE. Using density functional theory calculations, we identify the activity trends of different possible quinone functional groups in the edge and basal plane of the carbon nanostructure and determine the most active motif. Our findings provide guidelines for designing carbon-based catalysts, which have simultaneous high selectivity and activity for H2O2 synthesis.

SUBMITTER: Han GF 

PROVIDER: S-EPMC7200778 | biostudies-literature | 2020 May

REPOSITORIES: biostudies-literature

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Building and identifying highly active oxygenated groups in carbon materials for oxygen reduction to H<sub>2</sub>O<sub>2</sub>.

Han Gao-Feng GF   Li Feng F   Zou Wei W   Karamad Mohammadreza M   Jeon Jong-Pil JP   Kim Seong-Wook SW   Kim Seok-Jin SJ   Bu Yunfei Y   Fu Zhengping Z   Lu Yalin Y   Siahrostami Samira S   Baek Jong-Beom JB  

Nature communications 20200505 1


The one-step electrochemical synthesis of H<sub>2</sub>O<sub>2</sub> is an on-site method that reduces dependence on the energy-intensive anthraquinone process. Oxidized carbon materials have proven to be promising catalysts due to their low cost and facile synthetic procedures. However, the nature of the active sites is still controversial, and direct experimental evidence is presently lacking. Here, we activate a carbon material with dangling edge sites and then decorate them with targeted fun  ...[more]

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