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Published on: April 27, 2018
Dynamics of O2 Chemisorption on a Flat Platinum Surface Probed by an Alignment-Controlled O2 Beam
Hirokazu Ueta1, Mitsunori Kurahashi2
1International Center for Young Scientists, National Institute for Materials Science, 1-2-1 Sengen, Tsukuba, Ibaraki, 305-0047, Japan.
Oxygen (O2) sticking on platinum (Pt) surfaces depends on molecular alignment. Parallel alignment favors chemisorption at low energies, while perpendicular alignment becomes important at higher energies.
Area of Science:
- Surface science
- Chemical kinetics
- Materials science
Background:
- Oxygen adsorption on platinum (Pt) surfaces is crucial for automotive exhaust purification and fuel cell electrodes.
- Previous studies on O2/Pt(111) show unexplained low sticking probability and unusual energy dependence.
Purpose of the Study:
- To elucidate the alignment dependence of the initial sticking probability (S0) of O2 on Pt surfaces.
- To clarify the origin of the low and energy-dependent O2 sticking probability.
Main Methods:
- Utilizing a single spin-rotational state-selected [(J,M)=(2,2)] O2 beam.
- Investigating the initial sticking probability (S0) as a function of translational energy (E0) and molecular alignment.
Main Results:
- Direct activated chemisorption occurs at low E0 only when the O2 molecule's axis is nearly parallel to the Pt surface.
- At high E0 (>0.5 eV), parallel O2 sticking probability decreases with increasing energy, while perpendicular O2 sticking probability increases.
- These alignment-dependent behaviors explain the previously observed energy-independent O2 sticking probability in non-state-resolved experiments.
Conclusions:
- Molecular alignment is a critical factor governing O2 adsorption dynamics on Pt surfaces.
- The findings provide a detailed understanding of the O2/Pt(111) system, resolving long-standing questions about sticking probability.
- This research has implications for optimizing catalytic processes involving O2 on metal surfaces.
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