TY - JOUR
T1 - Laser Derived Co1Ni1@MOF with Efficient Charge Exchanges Boosting Selective Catalytic Hydrogenation
AU - Wang, Jiulong
AU - Ren, Lanxing
AU - Kong, Yan
AU - Shuang, Yazhou
AU - Ye, Qian
AU - Hong, Chunxia
AU - Wang, Shiyuan
AU - Ma, Zelin
AU - Wang, Fang
AU - Jian, Jie
AU - Fan, Xiao Li
AU - Song, Lijuan
AU - Cao, Tengfei
AU - Wang, Hongqiang
N1 - Publisher Copyright:
© 2024 Wiley-VCH GmbH.
PY - 2025/5/9
Y1 - 2025/5/9
N2 - Metal–organic framework (MOF) catalysts promise selective hydrogenation of C═O bonds, a process that is thermodynamically unfavorable because of the presence of C─O, C═C, and C─C bonds within furan rings. However, the reactivity and stability of MOF are often impeded in catalytic reactions by structural collapse or phase transition stemming from commonly employed strategies such as defect engineering. The present work investigates a novel strategy for designing highly active Co₁Ni₁@UiO-66-NH₂ catalysts by embedding Co₁Ni₁ within the UiO-66-NH₂ framework. This approach facilitates efficient charge transfer between the reactants and the catalysts, thereby preserving both reactivity and structural integrity. The turnover frequency of Co1Ni1@UiO-66-NH2 is 430 h⁻¹, in contrast to 18 h⁻¹ of UiO-66-NH2, demonstrating that the transfer hydrogenation activity of Co1Ni1@UiO-66-NH2 is 24 times greater than that of UiO-66-NH2. More importantly, the reaction rate achieves 7.27 mol g⁻¹ h⁻¹, with a furfuryl alcohol (FOL) yield of 100%, and the Co₁Ni₁@UiO-66-NH₂ catalyst retains its excellent catalytic activity even after eight cycles of applications. Density functional theory calculations indicate that, in comparison to UiO-66-NH₂, Co- and Ni@UiO-66-NH₂, Co₁Ni₁@UiO-66-NH₂ exhibits relatively strong interactions and significant charge exchanges between reactants and catalysts. These interactions not only facilitate the dehydrogenation of isopropanol but also enhance the hydrogenation of furfural. Furthermore, the density of states reveals a greater number of states near the Fermi level in Co1Ni1@UiO-66-NH2 compared to Co- and Ni@UiO-66-NH2, and thereby facilitates the substantial charge exchanges and efficient catalytic performance of Co1Ni1@UiO-66-NH2.
AB - Metal–organic framework (MOF) catalysts promise selective hydrogenation of C═O bonds, a process that is thermodynamically unfavorable because of the presence of C─O, C═C, and C─C bonds within furan rings. However, the reactivity and stability of MOF are often impeded in catalytic reactions by structural collapse or phase transition stemming from commonly employed strategies such as defect engineering. The present work investigates a novel strategy for designing highly active Co₁Ni₁@UiO-66-NH₂ catalysts by embedding Co₁Ni₁ within the UiO-66-NH₂ framework. This approach facilitates efficient charge transfer between the reactants and the catalysts, thereby preserving both reactivity and structural integrity. The turnover frequency of Co1Ni1@UiO-66-NH2 is 430 h⁻¹, in contrast to 18 h⁻¹ of UiO-66-NH2, demonstrating that the transfer hydrogenation activity of Co1Ni1@UiO-66-NH2 is 24 times greater than that of UiO-66-NH2. More importantly, the reaction rate achieves 7.27 mol g⁻¹ h⁻¹, with a furfuryl alcohol (FOL) yield of 100%, and the Co₁Ni₁@UiO-66-NH₂ catalyst retains its excellent catalytic activity even after eight cycles of applications. Density functional theory calculations indicate that, in comparison to UiO-66-NH₂, Co- and Ni@UiO-66-NH₂, Co₁Ni₁@UiO-66-NH₂ exhibits relatively strong interactions and significant charge exchanges between reactants and catalysts. These interactions not only facilitate the dehydrogenation of isopropanol but also enhance the hydrogenation of furfural. Furthermore, the density of states reveals a greater number of states near the Fermi level in Co1Ni1@UiO-66-NH2 compared to Co- and Ni@UiO-66-NH2, and thereby facilitates the substantial charge exchanges and efficient catalytic performance of Co1Ni1@UiO-66-NH2.
KW - CoNi sites
KW - MOF
KW - catalytic transfer hydrogenation
KW - furfural
KW - laser
UR - http://www.scopus.com/inward/record.url?scp=85213722932&partnerID=8YFLogxK
U2 - 10.1002/adfm.202421357
DO - 10.1002/adfm.202421357
M3 - 文章
AN - SCOPUS:85213722932
SN - 1616-301X
VL - 35
JO - Advanced Functional Materials
JF - Advanced Functional Materials
IS - 19
M1 - 2421357
ER -