Kim Minseok, Biswas Sohag, Barraza Alvarez Isabel, Christopher Phillip, Wong Bryan M, Mangolini Lorenzo
Department of Mechanical Engineering, University of California, Riverside, Riverside, California 92521, United States.
Materials Science & Engineering Program, University of California, Riverside, Riverside, California 92521, United States.
JACS Au. 2024 Jul 12;4(8):2979-2988. doi: 10.1021/jacsau.4c00309. eCollection 2024 Aug 26.
Nonthermal plasmas provide a unique approach to electrically driven heterogeneous catalytic processes. Despite much interest from the community, fundamental activation pathways in these processes remain poorly understood. Here, we investigate how exposure to a nonthermal plasma sustained in an argon nonreactive atmosphere affects the desorption of carbon monoxide (CO) from platinum nanoparticles. Temperature-programmed desorption measurements indicate that the plasma reduces the effective binding energy (BE) of CO to Pt surfaces by as much as ∼0.3 eV, with the reduction in the BE scaling linearly with the plasma density. We find that the effective CO BE is most strongly reduced for under-coordinated sites (steps and edges) compared to well-coordinated sites (terraces). Density functional theory calculations suggest that this is due to plasma-induced charging and electric fields at the catalyst surface, which preferentially affect under-coordinated sites. This study provides direct experimental evidence of plasma-induced nonthermal activation of the adsorbate-catalyst couple.
非热等离子体为电驱动的多相催化过程提供了一种独特的方法。尽管该领域受到了广泛关注,但这些过程中的基本活化途径仍知之甚少。在此,我们研究了在氩气非反应气氛中维持的非热等离子体暴露如何影响一氧化碳(CO)从铂纳米颗粒上的脱附。程序升温脱附测量表明,等离子体使CO与Pt表面的有效结合能(BE)降低了多达约0.3 eV,且BE的降低与等离子体密度呈线性关系。我们发现,与配位良好的位点(平台)相比,低配位位点(台阶和边缘)处的有效CO BE降低最为显著。密度泛函理论计算表明,这是由于等离子体诱导的催化剂表面电荷和电场,它们优先影响低配位位点。这项研究提供了等离子体诱导吸附质 - 催化剂对非热活化的直接实验证据。