Mass-transport-limited reaction rates and molecular diffusion in the van der Waals gap beneath graphene
arXiv:2507.07479 · doi:10.1021/acsnano.5c12130
Abstract
The confinement of molecules within the van der Waals (vdW) gap between a two-dimensional 2D material and a catalytic substrate offers a promising route toward the development of molecule-selective catalysts with increased reaction rates. However, identifying the kinetic limitations of such confined reactions remains challenging. Here, we employ an inverted wedding-cake configuration of multilayer graphene on platinum to study the dynamics of graphene etching in the vdW gap by various molecules (O2, H2, and CO), using in situ scanning electron microscopy. Under the experimental conditions explored (up to p = 1.4x10-3 Pa and T = 1000 °C), the etching reaction rates are limited by mass transport within the confined space. This limitation persists even for CO, despite its anomalously enhanced transport resulting from a significant lifting of the vdW gap. Reactive molecular dynamics simulations further reveal multiple etching pathways for CO, enabled by confinement within the vdW space. Once mass-transport limitations are overcome, the vdW gap acts as an effective nanoreactor, facilitating reaction pathways that would be otherwise inaccessible on a pristine surface without spatial confinement.
38 pages including Supporting Information, 5 figures in the main text, 10 figures in SI
References in corpus (8)
- Oxidation of graphene on metals
- Interface-Confined Doubly Anisotropic Oxidation of Two-Dimensional MoS2
- Stabilizing an atomically thin quantum spin Hall insulator at ambient conditions: Graphene-intercalation of indenene
- Two-dimensional few-atom noble gas clusters in a graphene sandwich
- Intercalation and desorption of oxygen between graphene and Ru(0001) studied with helium ion scattering
- Reversible Switching of the Environment-Protected Quantum Spin Hall Insulator Bismuthene at the Graphene/SiC Interface
- Novel structures of Gallenene intercalated in epitaxial Graphene
- Visualizing intercalation effects in 2D materials using AFM based techniques