Control of Local Electronic Structure of Pd Single Atom Catalyst by Adsorbate Induction.
Wei RuYanan LiuBaoai FuFengzhi FuJunting FengDianqing LiPublished in: Small (Weinheim an der Bergstrasse, Germany) (2021)
Aiming at regulating and controlling the localized electronic states while maintaining the metal atoms in the isolation form, an in situ adsorbate induced strategy is proposed at a programmed temperature to activate Zr-based metal-organic framework (MOF) supported single Pd atom catalyst. It is discovered that in situ treatment environments trigger the change of lattice parameters in MOF materials by reaction heat effect, observed by in situ X-ray diffraction, spherical aberration-corrected electron microscope, and X-ray adsorption fine structure (XAFS). The as-obtained electron-deficient Pd single atoms are critical to the high intrinsic activity (turnover frequency of 0.132 s-1 ) and selectivity of 93% with the long-term stability in the semihydrogenation of acetylene, which can be comparable to the state-of-the-art Pd catalysts. This superior catalytic behavior correlates with the reduced C2 H4 desorption energy and the activation barriers for the hydrogenation, confirmed by density functional theory calculation.
Keyphrases
- metal organic framework
- density functional theory
- molecular dynamics
- electron microscopy
- electron transfer
- high resolution
- highly efficient
- dual energy
- room temperature
- computed tomography
- bone mineral density
- combination therapy
- air pollution
- diabetic rats
- high glucose
- ionic liquid
- postmenopausal women
- contrast enhanced
- smoking cessation
- pet ct