TY - JOUR
T1 - Turning surface properties of Pd/N-doped porous carbon by trace oxygen with enhanced catalytic performance for selective phenol hydrogenation to cyclohexanone
AU - Yang, Guangxin
AU - Zhang, Jiuxuan
AU - Jiang, Hong
AU - Liu, Yefei
AU - Chen, Rizhi
N1 - Publisher Copyright:
© 2019 Elsevier B.V.
PY - 2019/11/25
Y1 - 2019/11/25
N2 - Herein, the microstructure and surface properties of activated carbon (AC) was successfully turned by simply controlling the initial oxygen concentration during the calcination, the modified AC materials were doped with nitrogen and supported by Pd nanoparticles (NPs) to prepare Pd/N-doped porous carbon (Pd/CN) catalysts, and their catalytic performance in the phenol hydrogenation to cyclohexanone was evaluated. The modification with trace oxygen can decrease the hydrophilicity of AC, leading to better dispersibility of the Pd/CN[sbnd]O catalyst in nonpolar reaction solvent (cyclohexane). Trace oxygen modification can increase the content of O-containing groups (C[dbnd]O) on the AC surface, promoting the interaction between Pd NPs and carrier, thus higher Pd dispersion. As a result, the modified Pd/CN catalyst (Pd/CN[sbnd]O) exhibits superior catalytic activity and stability than unmodified Pd/CN catalyst (Pd/CN-raw), with a phenol conversion increased from 84.1% to 99.6%. This work would aid the deep insights into the phenol hydrogenation over Pd/CN.
AB - Herein, the microstructure and surface properties of activated carbon (AC) was successfully turned by simply controlling the initial oxygen concentration during the calcination, the modified AC materials were doped with nitrogen and supported by Pd nanoparticles (NPs) to prepare Pd/N-doped porous carbon (Pd/CN) catalysts, and their catalytic performance in the phenol hydrogenation to cyclohexanone was evaluated. The modification with trace oxygen can decrease the hydrophilicity of AC, leading to better dispersibility of the Pd/CN[sbnd]O catalyst in nonpolar reaction solvent (cyclohexane). Trace oxygen modification can increase the content of O-containing groups (C[dbnd]O) on the AC surface, promoting the interaction between Pd NPs and carrier, thus higher Pd dispersion. As a result, the modified Pd/CN catalyst (Pd/CN[sbnd]O) exhibits superior catalytic activity and stability than unmodified Pd/CN catalyst (Pd/CN-raw), with a phenol conversion increased from 84.1% to 99.6%. This work would aid the deep insights into the phenol hydrogenation over Pd/CN.
KW - C[dbnd]O oxygen species
KW - Hydrophilic
KW - Pd/CN
KW - Phenol hydrogenation
KW - Trace oxygen
UR - http://www.scopus.com/inward/record.url?scp=85073573464&partnerID=8YFLogxK
U2 - 10.1016/j.apcata.2019.117306
DO - 10.1016/j.apcata.2019.117306
M3 - 文章
AN - SCOPUS:85073573464
SN - 0926-860X
VL - 588
JO - Applied Catalysis A: General
JF - Applied Catalysis A: General
M1 - 117306
ER -