Fabrication of adsorbents with enhanced CuI stability: Creating a superhydrophobic microenvironment through grafting octadecylamine
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Fabrication of adsorbents with enhanced CuI stability: Creating a superhydrophobic microenvironment through grafting octadecylamine
Chinese Journal of Chemical EngineeringVol. 55, Issue 3, Pages: 41-48(2023)
Affiliations:
State Key Laboratory of Materials-Oriented Chemical Engineering, Jiangsu National Synergetic Innovation Center for Advanced Materials (SICAM), College of Chemical Engineering, Nanjing Tech University,Nanjing,China,210009
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Published:2023
Accepted:
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stability: Creating a superhydrophobic microenvironment through grafting octadecylamine[J]. 中国化学工程学报, 2023, 55(3): 41-48.
DOI:
stability: Creating a superhydrophobic microenvironment through grafting octadecylamine[J]. 中国化学工程学报, 2023, 55(3): 41-48.DOI:
Fabrication of adsorbents with enhanced CuI stability: Creating a superhydrophobic microenvironment through grafting octadecylamine
due to the coexistence of moisture and oxygen. The poor oxidation inhibition of Cu
I
restricts the practical application of Cu
I
-containing materials. Herein we introduce an approach to construct a superhydrophobic microenvironment in Cu
I
-functionalized metal–organic frameworks by coordinatedly grafting organic amine compounds onto open metal sites (OMSs)
which can hinder the accessibility of moisture to pores thereby enhancing the stability of Cu
I
. As a proof of concept
MIL-101(Cr) with abundant OMSs and octadecylamine (OA) with long hydrophobic alkyl groups are used as carrier and surface coating. As superhydrophobic porous materials
the resultant Cu
I
M-OA exhibits improved Cu
I
stability in addition to retaining high crystallinity and intact porosity while almost all Cu
I
is oxidized in hydrophilic Cu
I
M upon exposure in a humid atmosphere for 30 h. Cu
I
M-OA owns excellent adsorption desulfurization performance (ADS) with regard to thiophene
benzothiophene
and 4
6-dimethyl dibenzothiophene. Even from
hydrated fuel
the adsorption performance of Cu
I
M-OA maintains well while the adsorption capacity of Cu
I
M decreases to 7% after 4 cycles. The remarkable moisture resistance
Cu
I
stability
and high porosity make the current adsorbent Cu
I
M-OA highly promising for the practical ADS process.
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