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Surface Characteristics of Microporous and Mesoporous Carbons Functionalized with Pentafluorophenyl Groups.

Authors :
Li X
Forouzandeh F
Kakanat AJ
Feng F
Banham DWH
Ye S
Kwok DY
Birss V
Source :
ACS applied materials & interfaces [ACS Appl Mater Interfaces] 2018 Jan 17; Vol. 10 (2), pp. 2130-2142. Date of Electronic Publication: 2018 Jan 05.
Publication Year :
2018

Abstract

The in situ diazonium reduction reaction is a reliable and well-known approach for the surface modification of carbon materials for use in a range of applications, including in energy conversion, as chromatography supports, in sensors, etc. Here, this approach was used for the first time with mesoporous colloid-imprinted carbons (CICs), materials that contain ordered monodisperse pores (10-100 nm in diameter) and are inherently highly hydrophilic, using a common microporous carbon (Vulcan carbon (VC)), which is relatively more hydrophobic, for a comparison. The ultimate goal of this work was to modify the CIC wettability without altering its nanostructure and also to lower its susceptibility to oxidation, as required in fuel cell and battery electrodes, by the attachment of pentafluorophenyl (-PhF <subscript>5</subscript> ) groups onto their surfaces. This was shown to be successful for the CIC, with the -PhF <subscript>5</subscript> groups uniformly coating the inner pore walls at a surface coverage of ca. 90% and allowing full solution access to the mesopores, while the -PhF <subscript>5</subscript> groups deposited only on the outer VC surface, likely blocking its micropores. Contact angle kinetics measurements showed enhanced hydrophobicity, as anticipated, for both the -PhF <subscript>5</subscript> modified CIC and VC materials, even revealing superhydrophobicity at times for the CIC materials. In contrast, water vapor sorption and cyclic voltammetry suggested that the micropores remained hydrophilic, arising from the deposition of smaller N- and O-containing surface groups, caused by a side reaction during the in situ diazonium functionalization process.

Details

Language :
English
ISSN :
1944-8252
Volume :
10
Issue :
2
Database :
MEDLINE
Journal :
ACS applied materials & interfaces
Publication Type :
Academic Journal
Accession number :
29236474
Full Text :
https://doi.org/10.1021/acsami.7b13880