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Lee, Seung Geol
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Persulfate activation by nanodiamond-derived carbon onions: Effect of phase transformation of the inner diamond core on reaction kinetics and mechanisms

Author(s)
Yang, BowenKang, HaisuKo, Young-JinWoo, HeesooGim, GeonduChoi, JaeminKim, JaesungCho, KangwooKim, Eun-JuLee, Seung GeolLee, HongshinLee, Jaesang
Issued Date
2021-09
DOI
10.1016/j.apcatb.2021.120205
URI
https://scholarworks.unist.ac.kr/handle/201301/81703
Citation
APPLIED CATALYSIS B-ENVIRONMENTAL, v.293, pp.120205
Abstract
To investigate the impact of carbon phase conversion on the catalytic activity of nanodiamonds, in this study, we tested nanodiamonds subjected to graphitization at varying temperatures for persulfate activation. Temperatures beyond 1000 degrees C (where only surface graphitization occurs) steadily enhanced the persulfate activation capability as the inner carbon underwent substantial sp(3)-to-sp(2) transformation. Nanodiamonds annealed at 2000 degrees C outperformed benchmark nanocarbons in terms of persulfate activation efficiency. Non-radical activation occurred primarily based on the effects of radical quenchers, oxidation product distribution, substrate-dependent reactivity, and electron paramagnetic resonance spectra. Aligned with the density functional theory calculations of the binding energies of peroxydisulfate on the slab models, built via Bernal stacking of graphitic carbon layers on the diamond plane, isothermal titration calorimetry measurements suggested that the binding affinity of peroxydisulfate decreased as the sp(2)/sp(3) ratio increased. Therefore, the enhancing effect of graphitization arose from the electrical conductivity of nanodiamonds, which increased proportionally with graphitization extent.
Publisher
ELSEVIER
ISSN
0926-3373
Keyword (Author)
Graphitized nanodiamondsPeroxydisulfate activationNon-radical mechanismSurface affinityElectron transfer-mediating capacity
Keyword
RATE CONSTANTSSINGLET OXYGENOXIDATIONPEROXYMONOSULFATEGRAPHENEGENERATIONEFFICIENCYRADICALSCHEMISTRYNITROGEN

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