TY - JOUR
T1 - Stabilizing CuI in MIL-101(Cr) by introducing long-chain alkane for adsorptive desulfurization
AU - Shen, Jia Xin
AU - Mao, Shi Xian
AU - Wan, Li
AU - Wu, Wen Xuan
AU - Jin, Meng Meng
AU - Li, Yu Xia
AU - Liu, Xiao Qin
AU - Sun, Lin Bing
N1 - Publisher Copyright:
© 2022 Elsevier B.V.
PY - 2022/6/1
Y1 - 2022/6/1
N2 - CuI-functionalized materials are highly promising for diverse applications. Unfortunately, the poor oxidation resistance of CuI limits their practical applications. Due to the co-presence of moisture and oxygen, CuI is easily oxidized to CuII, resulting in loss of activity. Herein, we have tailored a superhydrophobic microenvironment to stabilize CuI against oxidation by coordinating octadecylphosphonic acid (OPA) onto metal nodes on the surface of metal–organic frameworks. As a proof of concept, MIL-101(Cr) was employed as support to introduce CuI active sites, producing CuIM. By grafting OPA onto metal nodes on the surface, the original hydrophilic surface turns to be superhydrophobic, which hinders the access of moisture to CuI, thus stabilizing CuI despite the aerobic conditions. The OPA-grafted material, CuIM-OPA, shows constant CuI content under the atmosphere for a month, while only 4% CuI is retained in CuIM after a week. After exposure for a month, CuIM-OPA can remove 0.232 mmol/g thiophene, which is evidently superior to CuIM (0.015 mmol/g) in spite of the similar initial uptakes. Notably, CuIM-OPA shows intriguing adsorptive desulfurization from hydrated fuel without loss in four cycles, whereas only 4% capacity is retained in CuIM.
AB - CuI-functionalized materials are highly promising for diverse applications. Unfortunately, the poor oxidation resistance of CuI limits their practical applications. Due to the co-presence of moisture and oxygen, CuI is easily oxidized to CuII, resulting in loss of activity. Herein, we have tailored a superhydrophobic microenvironment to stabilize CuI against oxidation by coordinating octadecylphosphonic acid (OPA) onto metal nodes on the surface of metal–organic frameworks. As a proof of concept, MIL-101(Cr) was employed as support to introduce CuI active sites, producing CuIM. By grafting OPA onto metal nodes on the surface, the original hydrophilic surface turns to be superhydrophobic, which hinders the access of moisture to CuI, thus stabilizing CuI despite the aerobic conditions. The OPA-grafted material, CuIM-OPA, shows constant CuI content under the atmosphere for a month, while only 4% CuI is retained in CuIM after a week. After exposure for a month, CuIM-OPA can remove 0.232 mmol/g thiophene, which is evidently superior to CuIM (0.015 mmol/g) in spite of the similar initial uptakes. Notably, CuIM-OPA shows intriguing adsorptive desulfurization from hydrated fuel without loss in four cycles, whereas only 4% capacity is retained in CuIM.
KW - Antioxidation ability
KW - Cuprous materials
KW - Deep desulfurization
KW - Superhydrophobicity
UR - http://www.scopus.com/inward/record.url?scp=85126839753&partnerID=8YFLogxK
U2 - 10.1016/j.seppur.2022.120892
DO - 10.1016/j.seppur.2022.120892
M3 - 文章
AN - SCOPUS:85126839753
SN - 1383-5866
VL - 290
JO - Separation and Purification Technology
JF - Separation and Purification Technology
M1 - 120892
ER -