Direct C-C bond scission of xylitol to ethylene and propylene glycol precursors using single-atom catalysts (SACs) anchored on MgO

Authors
Akpe, Shedrack G.Choi, Sun HeeHam, Hyung Chul
Issue Date
2023-05
Publisher
American Institute of Physics Publising LLC
Citation
APL Materials, v.11, no.5
Abstract
Shorter chain alcohols, as opposed to longer ones, are beneficial as biomass feedstock for chemicals and fuels, including hydrogen production. More so, it has been demonstrated that carbon-carbon rather than carbon-oxygen bond-cleaving activity determines the product selectivity of a metal catalyst for higher oxygenates reforming. In this report, we investigate the direct C-2-C-3 bond-cleaving activity of xylitol via first-principles, periodic density functional theory calculations to identify the differences in activities between single-crystal catalysts (SCCs) and single-atom catalysts (SACs). A comparison of the kinetic barriers revealed that xylitol's C-C bond scission appears to be a near-impossible task on SCCs. However, SACs demonstrated higher performance. For example, Ir-1/MgO and Ir-1/MgO_Ovac (having surface oxygen vacancy) yielded similar to 72% and 54% decrease, respectively, in Gibb's free activation energy compared to Ir (111) at the xylitol reforming operating temperature of 473 K. Furthermore, electronic structure calculations revealed an up-shift in the DOS for the surface M-1 atoms in all investigated SACs compared to the surface atoms of their respective SCCs, resulting in M-1 higher d-band center and stronger adsorbate (s) binding. This study highlights the importance of SACs for boosting the atom efficiency of costly metals while also offering a new strategy for tuning the activity of catalytic reactions. (c) 2023 Author(s). All article content, except where otherwise noted, is licensed under a Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
Keywords
ETHANOL OXIDATION REACTION; O-H; HYDROGENATION; DEHYDRATION; XYLOSE; DECOMPOSITION; LIGNIN; METAL; HYDROGENOLYSIS; PT(111)
URI
https://pubs.kist.re.kr/handle/201004/113755
DOI
10.1063/5.0146265
Appears in Collections:
KIST Article > 2023
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