| Literature DB >> 36037332 |
Xiaoming Xu1,2, Yuanming Zhang1,2, Yong Chen1,2, Changhao Liu1,2, Wenjing Wang1,2, Jiajia Wang3, Huiting Huang1,2, Jianyong Feng1,2, Zhaosheng Li1,2, Zhigang Zou1,2.
Abstract
Hydrogen peroxide (H2O2) molecules play important roles in many green chemical reactions. However, the high activation energy limits their application efficiency, and there is still huge controversy about the activation path of H2O2 molecules over the presence of *OOH intermediates. Here, we confirmed the formation of the key species *OOH in the heterogeneous system, via in situ shell-isolated nanoparticle-enhanced Raman spectroscopy (SHINERS), isotope labeling, and theoretical calculation. In addition, we found that compared with *H2O2, *OOH was more conducive to the charge transfer behavior with the catalyst and the activation of an O-O bond. Furthermore, we proposed to improve the local coordination structure and electronic density of the YFeO3 catalyst by regulating the surface relaxation with Ti modification so as to reduce the activation barrier of H2O2 and to improve the production efficiency of •OH. As a result, the kinetics rates of the Fenton-like (photo-Fenton) reaction had been significantly increased several times. The •OH free radical activity mechanism and molecular transformation pathways of 4-chloro phenol (4-CP) were also revealed. This may provide a clearer vision for the further study of H2O2 activation and suggest a means of designing catalysts for efficient H2O2 activation.Entities:
Keywords: *OOH species; Fenton-like process; H2O2; photoactivation; surface relaxation
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Year: 2022 PMID: 36037332 PMCID: PMC9457417 DOI: 10.1073/pnas.2205562119
Source DB: PubMed Journal: Proc Natl Acad Sci U S A ISSN: 0027-8424 Impact factor: 12.779