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Low Temperature Oxygen Activation on the NiAg(100) Single-Atom Alloy Surface
Cole A Easton1, Sarah M Stratton2, Nima Rajabi1
1Department of Chemistry, Tufts University, Medford, Massachusetts 02155, United States.
Single-atom nickel (Ni) alloys with silver (Ag) enhance ethylene oxide (EO) production selectivity by activating oxygen. This discovery offers a promising, potentially greener alternative to chlorine promoters in industrial catalysis.
Area of Science:
- Heterogeneous Catalysis
- Surface Science
- Materials Science
Background:
- Silver-catalyzed ethylene epoxidation is the sole industrial method for ethylene oxide (EO) production.
- Current processes rely on chlorine promoters, leading to significant CO2 emissions and selectivity challenges.
- A theory-guided approach identified single-atom alloy (SAA) nickel (Ni) as a potential promoter.
Purpose of the Study:
- To investigate the interaction of oxygen (O2) with NiAg(100) SAA surfaces.
- To elucidate the mechanism by which Ni enhances ethylene epoxidation selectivity.
- To provide experimental evidence for Ni's role in O2 activation.
Main Methods:
- Utilized scanning tunneling microscopy (STM) to visualize surface species at cryogenic temperatures (78 K).
- Employed density functional theory (DFT) simulations to interpret experimental observations and model surface interactions.
- Compared O2 interaction with pure Ag(100) and NiAg(100) SAA surfaces.
Main Results:
- Pure Ag(100) surfaces only showed molecular O2 upon exposure at 78 K.
- NiAg(100) SAA surfaces exhibited a distinct NiO2 species, indicating O2 dissociation at Ni sites.
- High-resolution STM and DFT confirmed the formation of O-Ni-O species in 4-fold hollow sites, demonstrating Ni's efficacy in O2 activation even at low temperatures.
Conclusions:
- Single-atom Ni is highly effective at activating O2, even at cryogenic temperatures.
- Ni likely accelerates O2 dissociation, a potentially rate-limiting step in ethylene epoxidation.
- This mechanism offers a new pathway for improving EO selectivity, potentially reducing reliance on chlorine promoters and mitigating CO2 emissions.
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