TY - JOUR
T1 - Ultrahigh mechanically stable hierarchical mordenite zeolite monolith
T2 - Direct binder-/template-free hydrothermal synthesis
AU - Zhang, Jianlin
AU - Mao, Yaming
AU - Li, Jing
AU - Wang, Xiaochen
AU - Xie, Jingyan
AU - Zhou, Yu
AU - Wang, Jun
N1 - Publisher Copyright:
© 2015 Elsevier Ltd.
PY - 2015/12/22
Y1 - 2015/12/22
N2 - Micro-macroporous hierarchical mordenite (MOR topology) zeolitic monoliths with ultrahigh mechanical stability (crushing strength: 38MPa) were directly prepared by the one-pot hydrothermal synthesis involving an unconventional acidic hydrolysis route. The obtained monolith exhibited highly crystallized MOR structure with the surface area of 388m2g-1 and pore volume of 0.2cm3g-1, same as its powder analog. Moreover, it is the first example of binder-free hierarchical zeolites with the high mechanical strength comparable to industrially available binder-shaped counterparts. The micro-shape of primary particles and macro-shape of monoliths could be controlled by varying the elemental synthetic conditions. The synthesis is an efficient, sustainable and environmentally friendly approach because it avoids the employment of sacrificial templates, binders and high-temperature calcination, not only saving energy and time, but also inhibiting waste release. Also importantly, the MOR monolith could be directly used as the shaped catalyst without additional post-mold treatments. Catalytic tests in solvent-free Friedel-Crafts benzylation reaction of benzene with benzyl alcohol showed that the MOR monolith was much more active than its powder and binder-shaped control catalysts.
AB - Micro-macroporous hierarchical mordenite (MOR topology) zeolitic monoliths with ultrahigh mechanical stability (crushing strength: 38MPa) were directly prepared by the one-pot hydrothermal synthesis involving an unconventional acidic hydrolysis route. The obtained monolith exhibited highly crystallized MOR structure with the surface area of 388m2g-1 and pore volume of 0.2cm3g-1, same as its powder analog. Moreover, it is the first example of binder-free hierarchical zeolites with the high mechanical strength comparable to industrially available binder-shaped counterparts. The micro-shape of primary particles and macro-shape of monoliths could be controlled by varying the elemental synthetic conditions. The synthesis is an efficient, sustainable and environmentally friendly approach because it avoids the employment of sacrificial templates, binders and high-temperature calcination, not only saving energy and time, but also inhibiting waste release. Also importantly, the MOR monolith could be directly used as the shaped catalyst without additional post-mold treatments. Catalytic tests in solvent-free Friedel-Crafts benzylation reaction of benzene with benzyl alcohol showed that the MOR monolith was much more active than its powder and binder-shaped control catalysts.
KW - Friedel-Crafts reaction
KW - Hierarchical zeolites monolith
KW - Mechanical stability
KW - Sustainable and environmentally friendly synthesis
KW - Zeolite catalysts
UR - http://www.scopus.com/inward/record.url?scp=84941754758&partnerID=8YFLogxK
U2 - 10.1016/j.ces.2015.08.016
DO - 10.1016/j.ces.2015.08.016
M3 - 文章
AN - SCOPUS:84941754758
SN - 0009-2509
VL - 138
SP - 473
EP - 481
JO - Chemical Engineering Science
JF - Chemical Engineering Science
ER -