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 Hee; Ham, 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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