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2.
Nature ; 552(7685): 293, 2017 Dec.
Artigo em Inglês | MEDLINE | ID: mdl-32086477
14.
Nature ; 471(7338): 306, 2011 Mar 17.
Artigo em Inglês | MEDLINE | ID: mdl-21412325
15.
ACS Catal ; 12(9): 5371-5379, 2022 May 06.
Artigo em Inglês | MEDLINE | ID: mdl-35557711

RESUMO

The rise in atmospheric CO2 concentration and the concomitant rise in global surface temperature have prompted massive research effort in designing catalytic routes to utilize CO2 as a feedstock. Prime among these is the hydrogenation of CO2 to make methanol, which is a key commodity chemical intermediate, a hydrogen storage molecule, and a possible future fuel for transport sectors that cannot be electrified. Pd/ZnO has been identified as an effective candidate as a catalyst for this reaction, yet there has been no attempt to gain a fundamental understanding of how this catalyst works and more importantly to establish specific design criteria for CO2 hydrogenation catalysts. Here, we show that Pd/ZnO catalysts have the same metal particle composition, irrespective of the different synthesis procedures and types of ZnO used here. We demonstrate that all of these Pd/ZnO catalysts exhibit the same activity trend. In all cases, the ß-PdZn 1:1 alloy is produced and dictates the catalysis. This conclusion is further supported by the relationship between conversion and selectivity and their small variation with ZnO surface area in the range 6-80 m2g-1. Without alloying with Zn, Pd is a reverse water-gas shift catalyst and when supported on alumina and silica is much less active for CO2 conversion to methanol than on ZnO. Our approach is applicable to the discovery and design of improved catalysts for CO2 hydrogenation and will aid future catalyst discovery.

19.
Nat Mater ; 7(12): 937-46, 2008 Dec.
Artigo em Inglês | MEDLINE | ID: mdl-19029928

RESUMO

The prediction of structure at the atomic level is one of the most fundamental challenges in condensed matter science. Here we survey the current status of the field and consider recent developments in methodology, paying particular attention to approaches for surveying energy landscapes. We illustrate the current state of the art in this field with topical applications to inorganic, especially microporous solids, and to molecular crystals; we also look at applications to nanoparticulate structures. Finally, we consider future directions and challenges in the field.

20.
Phys Chem Chem Phys ; 12(30): 8436-7, 2010 Aug 14.
Artigo em Inglês | MEDLINE | ID: mdl-20640251
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