Anisotropic nanoporous morphology of ZnO-supported Co that enhances catalytic activity
Author(s) -
Christopher Coaty,
Adam A. Corrao,
Victoria Petrova,
Taewoo Kim,
David P. Fenning,
Peter G. Khalifah,
Ping Liu
Publication year - 2021
Publication title -
nanoscale
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.038
H-Index - 224
eISSN - 2040-3372
pISSN - 2040-3364
DOI - 10.1039/d0nr08998b
Subject(s) - nanoporous , materials science , anisotropy , catalysis , morphology (biology) , chemical engineering , yield (engineering) , crystal structure , steam reforming , nanotechnology , crystal (programming language) , crystallography , metallurgy , chemistry , organic chemistry , hydrogen production , programming language , physics , quantum mechanics , biology , computer science , engineering , genetics
A novel conversion reaction synthesis (CRS) method is used to synthesize ZnO-supported Co nanoporous metal hybrid structures from a co-precipitated nanocomposite precursor of ZnO and Co 3 O 4 . After removal of Li 2 O with water, the resulting material consists of ZnO-supported Co nanoparticles that are interconnected to form anisotropic micro-particles. Additionally, individual ZnO nanoparticles have an anisotropic morphology, as revealed by synchrotron XRD analysis. Microscopy and surface area studies show these materials have an average pore size of 10-30 nm and specific surface areas up to 28 m 2 g -1 . The hybrid structure also has increased heat resistance compared to that of pure nanoporous metals; the Co phase within the ZnO-Co hybrid exhibits much less coarsening than the analogous nanoporous metal without ZnO at temperatures of 400 °C and above. These ZnO-Co hybrid materials were tested as heterogeneous catalysts for the steam reformation of ethanol at 400 °C. The nanoporous ZnO-Co hybrid material exhibits complete conversion of ethanol and high hydrogen selectivity, producing H 2 with a molar yield of approximately 70%.
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