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January 8, 2024ACS Catalysis59 citations

Oxygen Vacancy Enhanced Proton Transfer to Boost Carbamate Decomposition Kinetics with Tunable Heterostructure Ni/NiO

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XLXing LiLXLei XingGZGuoxiong Zhan

Key Points

  • To develop tunable magnetic Ni/NiO heterostructure catalysts that accelerate carbamate decomposition kinetics and lower the heat duty required for amine solvent regeneration in carbon capture.
  • Synthesized magnetic heterostructure nanocatalysts composed of tunable metallic nickel nanoparticles on nickel oxide supports.
  • Assessed carbon dioxide desorption kinetics using a carbon dioxide-saturated monoethanolamine solvent system.
  • Investigated oxygen vacancy generation and proton-transfer mechanisms using in situ spectroscopy and theoretical calculations.
  • Ni/NiO nanocatalysts achieved a carbon dioxide desorption rate of up to 3 mmol/min in saturated monoethanolamine solvent, representing an approximate 50% increase compared to catalyst-free desorption.
  • Spectroscopic and theoretical analyses confirmed that surface oxygen vacancies promote hydroxyl generation and water-assisted proton hopping to facilitate RNHCOO– carbon-nitrogen bond cleavage.

Abstract

Catalytic carbamate decomposition is a feasible option for reducing the heat duty of amine solvent regeneration during the chemisorption of CO2 capture; advanced material with excellent proton transfer and exchange performance is crucial to boost the decomposition kinetics in an alkaline environment. Here, we prepared magnetic heterostructure Ni/NiO nanocatalysts with tunable Ni(0) nanoparticles and NiO support. The heterointerface of the proposed materials creates abundant surface oxygen vacancies (OVs) and offers abundant reactive active sites ascribed to the special electron transfer scheme of Ni0–NiO. The generated surface hydroxyls and unsaturated coordinated Ni, respectively, provide transferable protons and electrons, involved in the deprotonation of RNH3+ and C–N break of RNHCOO–. Thus, the obtained nanomaterials achieved considerably improved CO2 desorption of up to 3 mmol/min for a CO2-saturated monoethanolamine solvent, representing a substantial (approximately 50%) increase over the catalyst-free case. The reinforcement mechanism of OV generation by the Ni/NiO heterostructure and the induced proton transfer were revealed through in situ spectroscopic measurement and theoretical calculations. The results verified that the OVs stimulate the production of surface hydroxyls and water-assisted proton hopping, providing an advantageous condition for carbamate decomposition.

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Cite This Study

Li et al. (2024) studied this question.

synapsesocial.com/papers/6a0080514716aad0cc85b84dhttps://doi.org/10.1021/acscatal.3c03852
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