Revealing carbon capture chemistry with 17-oxygen NMR spectroscopy

被引:0
|
作者
Astrid H. Berge
Suzi M. Pugh
Marion I. M. Short
Chanjot Kaur
Ziheng Lu
Jung-Hoon Lee
Chris J. Pickard
Abdelhamid Sayari
Alexander C. Forse
机构
[1] University of Cambridge,Department of Chemistry
[2] University of Ottawa,Centre for Catalysis Research and Innovation (CCRI), Department of Chemistry and Biomolecular Sciences
[3] University of Cambridge,Department of Materials Science and Metallurgy
[4] Korea Institute of Science and Technology (KIST),Computational Science Research Center
[5] Tohoku University,Advanced Institute for Materials Research
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Carbon dioxide capture is essential to achieve net-zero emissions. A hurdle to the design of improved capture materials is the lack of adequate tools to characterise how CO2 adsorbs. Solid-state nuclear magnetic resonance (NMR) spectroscopy is a promising probe of CO2 capture, but it remains challenging to distinguish different adsorption products. Here we perform a comprehensive computational investigation of 22 amine-functionalised metal-organic frameworks and discover that 17O NMR is a powerful probe of CO2 capture chemistry that provides excellent differentiation of ammonium carbamate and carbamic acid species. The computational findings are supported by 17O NMR experiments on a series of CO2-loaded frameworks that clearly identify ammonium carbamate chain formation and provide evidence for a mixed carbamic acid – ammonium carbamate adsorption mode. We further find that carbamic acid formation is more prevalent in this materials class than previously believed. Finally, we show that our methods are readily applicable to other adsorbents, and find support for ammonium carbamate formation in amine-grafted silicas. Our work paves the way for investigations of carbon capture chemistry that can enable materials design.
引用
收藏
相关论文
共 50 条
  • [31] Hydrogen-bonded structure and NMR parameters of oxygen-17 labeled poly(L-alanine)s as studied by solid state oxygen-17 NMR spectroscopy
    Takahashi, A.
    Kuroki, S.
    Ando, I.
    Ozaki, T.
    Journal of Molecular Structure, 442 (1-3):
  • [32] Selective Oxygen Capture in Lithium Zincate Chemistry
    Linton, David J.
    Davies, Robert P.
    Schooler, Paul
    Wheatley, Andrew E. H.
    PHOSPHORUS SULFUR AND SILICON AND THE RELATED ELEMENTS, 2001, 169 (01) : 309 - 312
  • [33] Selective oxygen capture in lithium zincate chemistry
    Linton, DJ
    Davies, RP
    Schooler, P
    Wheatley, AEH
    PHOSPHORUS SULFUR AND SILICON AND THE RELATED ELEMENTS, 2001, 168 : 633 - 636
  • [34] Carbon dioxide chemistry: Carbon capture, activation and utilization
    He, Liang-Nian
    CHINESE SCIENCE BULLETIN-CHINESE, 2021, 66 (07): : 713 - 715
  • [35] Oxygen efficiency with regard to carbon capture
    Gronkvist, S.
    Bryngelsson, M.
    Westermark, M.
    ENERGY, 2006, 31 (15) : 3220 - 3226
  • [36] Oxygen efficiency with regards to carbon capture
    Grönkvist, S
    Bryngelsson, M
    Westermark, M
    Energy-Efficient, Cost-Effective and Environmentally-Sustainable Systems and Processes, Vols 1-3, 2004, : 487 - 496
  • [37] Deuterium NMR spectroscopy in colloid and surface chemistry
    Molugu, Trivikram
    Lee, Soohyun
    Mallikarjunaiah, K. J.
    Kinnun, Jacob
    Job, Constantin
    Petrache, Horia
    Brown, Michael
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2019, 257
  • [38] NMR spectroscopy in transition metal and organometallic chemistry
    Elsevier, CJ
    MAGNETIC RESONANCE IN CHEMISTRY, 2004, 42 (09) : 719 - 719
  • [39] Dynamic NMR spectroscopy in inorganic and organometallic chemistry
    Orrell, KG
    ANNUAL REPORTS ON NMR SPECTROSCOPY, VOL 37, 1999, 37 : 1 - 74
  • [40] NMR Spectroscopy of supramolecular chemistry on protein surfaces
    Bayer, Peter
    Matena, Anja
    Beuck, Christine
    BEILSTEIN JOURNAL OF ORGANIC CHEMISTRY, 2020, 16 : 2505 - 2522