TY - JOUR
T1 - Stability and activity of carbon nanofiber-supported catalysts in the aqueous phase reforming of ethylene glycol
AU - van Haasterecht, T.
AU - Ludding, C.C.I.
AU - de Jong, K.P.
AU - Bitter, J.H.
PY - 2013/3
Y1 - 2013/3
N2 - Nickel, cobalt, copper and platinum nanoparticles supported on carbon nano-fibers were evaluated with respect to their stability, catalytic activity
and selectivity in the aqueous phase reforming of ethylene glycol (230 ◦C, autogenous pressure, batch reactor). The initial surface-specific
activities for ethylene glycol reforming were in a similar range but decreased in the order of Pt (15.5 h−1) >Co(13.0 h−1) >Ni(5.2 h−1) while
the Cu catalyst only showed low dehydrogenation activity. The hydrogen molar selectivity decreased in the order of Pt (53%)>Co(21%)>Ni
(15%) as a result of the production of methane over the latter two catalysts. Over the Co catalyst acids were formed in the liquid phase while
alcohols were formed over Ni and Pt. Due to the low pH of the reaction mixture, especially in the case of Co (as a result of the formed acids),
significant cobalt leaching occurs which resulted in a rapid deactivation of this catalyst. Investigations of the spent catalysts with various techniques
showed that metal particle growth is responsible for the deactivation of the Pt and Ni catalysts. In addition, coking might also contribute
to the deactivation of the Ni catalyst.
AB - Nickel, cobalt, copper and platinum nanoparticles supported on carbon nano-fibers were evaluated with respect to their stability, catalytic activity
and selectivity in the aqueous phase reforming of ethylene glycol (230 ◦C, autogenous pressure, batch reactor). The initial surface-specific
activities for ethylene glycol reforming were in a similar range but decreased in the order of Pt (15.5 h−1) >Co(13.0 h−1) >Ni(5.2 h−1) while
the Cu catalyst only showed low dehydrogenation activity. The hydrogen molar selectivity decreased in the order of Pt (53%)>Co(21%)>Ni
(15%) as a result of the production of methane over the latter two catalysts. Over the Co catalyst acids were formed in the liquid phase while
alcohols were formed over Ni and Pt. Due to the low pH of the reaction mixture, especially in the case of Co (as a result of the formed acids),
significant cobalt leaching occurs which resulted in a rapid deactivation of this catalyst. Investigations of the spent catalysts with various techniques
showed that metal particle growth is responsible for the deactivation of the Pt and Ni catalysts. In addition, coking might also contribute
to the deactivation of the Ni catalyst.
U2 - 10.1016/S2095-4956(13)60032-7
DO - 10.1016/S2095-4956(13)60032-7
M3 - Article
SN - 2095-4956
VL - 22
SP - 257
EP - 269
JO - Journal of Energy Chemistry
JF - Journal of Energy Chemistry
IS - 2
ER -