A nano-silicate material with exceptional capacity for CO2 capture and storage at room temperature

被引:26
|
作者
Cavalcanti, Leide P. [1 ]
Kalantzopoulos, Georgios N. [2 ]
Eckert, Juergen [3 ]
Knudsen, Kenneth D. [1 ,4 ]
Fossum, Jon Otto [4 ]
机构
[1] Inst Energy Technol IFE, Kjeller, Norway
[2] Univ Oslo, Dept Chem, Ctr Mat Sci & Nanotechnol SMN, Oslo, Norway
[3] USF, Tampa, FL USA
[4] Norwegian Univ Sci & Technol NTNU, Trondheim, Norway
来源
SCIENTIFIC REPORTS | 2018年 / 8卷
关键词
CARBON-DIOXIDE; CHARGE HOMOGENEITY; ADSORPTION; MONTMORILLONITE; METHANE;
D O I
10.1038/s41598-018-30283-2
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
In order to mitigate climate change driven by the observed high levels of carbon dioxide (CO2) in the atmosphere, many micro and nano-porous materials are being investigated for CO2 selectivity, capture and storage (CCS) purposes, including zeolites, metal organic frameworks (MOFs), functionalized polymers, activated carbons and nano-silicate clay minerals. Key properties include availability, non-toxicity, low cost, stability, energy of adsorption/desorption, sorbent regeneration, sorption kinetics and CO2 storage capacity. Here, we address the crucial point of the volumetric capture and storage capacity for CO2 in a low cost material which is natural, non-toxic, and stable. We show that the nano-silicate Nickel Fluorohectorite is able to capture 0.79 metric tons of CO2 per m(3) of host material - one of the highest capacities ever achieved - and we compare volumetric and gravimetric capacity of the best CO2 sorbent materials reported to date. Our results suggest that the high capture capacity of this fluorohectorite clay is strongly coupled to the type and valence of the interlayer cation (here Ni2+) and the high charge density, which is almost twice that of montmorillonite, resulting in the highest reported CO2 uptake among clay minerals.
引用
收藏
页数:6
相关论文
共 50 条
  • [41] High capacity adsorbents for CO2 capture in gasification
    Blackman, James M.
    Cooper, Mick
    Drage, Trevor C.
    Snape, Colin E.
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2006, 231
  • [42] High temperature materials for CO2 capture
    Singh, Ranjeet
    Reddy, M. K. Ram
    Wilson, Simon
    Joshi, Kaustubh
    da Costa, Joao C. Diniz
    Webley, Paul
    GREENHOUSE GAS CONTROL TECHNOLOGIES 9, 2009, 1 (01): : 623 - 630
  • [43] Room-Temperature Ionic Liquids and Composite Materials: Platform Technologies for CO2 Capture
    Bara, Jason E.
    Camper, Dean E.
    Gin, Douglas L.
    Noble, Richard D.
    ACCOUNTS OF CHEMICAL RESEARCH, 2010, 43 (01) : 152 - 159
  • [44] Effects of Anisotropy and CO2 Wettability on CO2 Storage Capacity in Sandstone
    Song, Jun Young
    Jeong, Yeon Jong
    Yun, Tae Sup
    GEOFLUIDS, 2022, 2022
  • [45] Comparison of CO2 abatement by use of renewable energy and CO2 capture and storage
    Davison, J
    GREENHOUSE GAS CONTROL TECHNOLOGIES, 2001, : 851 - 856
  • [46] CO2 capture analysis in different combustion methods for CO2 utilisation and storage
    Huang, Weijia
    Xu, Ruina
    Zhang, Fuzhen
    Zou, Yining
    Jiang, Peixue
    INTERNATIONAL JOURNAL OF OIL GAS AND COAL TECHNOLOGY, 2022, 29 (03) : 285 - 305
  • [47] Solubility phenomena related to CO2 capture and storage
    De Visscher, Alex
    Conejo, Maria S.
    PURE AND APPLIED CHEMISTRY, 2013, 85 (11) : 2051 - 2058
  • [48] THE IMPORTACE OF CO2 CAPTURE AND STORAGE - A GEOPOLITICAL DISCUSSION
    Johnsson, Filip
    Kjarstad, Jan
    Odenberger, Mikael
    THERMAL SCIENCE, 2012, 16 (03): : 655 - 668
  • [49] Electrochemical Capture and Storage of CO2 as Calcium Carbonate
    Oloye, Olawale
    O'Mullane, Anthony P.
    CHEMSUSCHEM, 2021, 14 (07) : 1767 - 1775
  • [50] Special Issue: CO2 Capture and Storage Preface
    Bandyopadhyay, Amitava
    Luo, Guangsheng
    Fei, Weiyang
    SEPARATION AND PURIFICATION TECHNOLOGY, 2012, 94 : 85 - 86