Recent Advances in Carbon Capture with Metal-Organic Frameworks

被引:17
作者
Stylianou, Kyriakos C. [1 ]
Queen, Wendy L. [1 ]
机构
[1] EPFL, Inst Chem Sci & Engn EPFL ISIC Valais, Sion, Switzerland
关键词
CO2; capture; Flue gas; Hydrolytic stability and regeneration; Metal-organic frameworks (MOF); MOF synthesis; Selectivity; DIOXIDE CAPTURE; CO2; CAPTURE; FLUE-GAS; HIGH-PRESSURE; PORE-SIZE; ADSORPTION; CAPACITY; STABILITY; SEPARATION; BINDING;
D O I
10.2533/chimia.2015.274
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The escalating level of CO2 in the atmosphere is one of the most critical environmental issues of our age. The carbon capture and storage from pilot test plants represents an option for reducing CO2 emissions, however, the energy cost associated with post-combustion carbon capture process alone is similar to 30% of the total energy generated by the power plant. Thus, the generation of carbon capture adsorbents with high uptake capacities, great separation performance and low cost is of paramount importance. Metal-organic frameworks are infinite networks of metal-containing nodes bridged by organic ligands through coordination bonds into porous extended structures and several reports have revealed that they are ideal candidates for the selective capture of CO2. In this review we summarize recent advances related to the synthesis of porous MOFs and the latest strategies to enhance the CO2 adsorption enthalpies and capacities at low-pressures, increase hydrolytic and mechanical stabilities, and improve the ease of regeneration. Although they show great promise for post-combustion carbon capture, there are still major challenges that must be overcome before they can be used for such a large-scale application.
引用
收藏
页码:274 / 283
页数:10
相关论文
共 98 条
[81]  
Smit B., 2014, INTRO CARBON CAPTURE
[82]  
Steeneveldt R, 2006, CHEM ENG RES DES, V84, P739, DOI 10.1205/cherd.05049
[83]  
Stocker T., 2014, Climate change 2013: the physical science barir: Working Group I contribution to the Fifth assessment report of the Intergovernmental Panel on Climate Change, DOI 10.1017/cbo9781107415324
[84]  
Stolle A., 2014, Ball Milling Towards Green Synthesis: Applications, Projects, Challenges
[85]  
Sumida K, 2011, ABSTR PAP AM CHEM S, V242
[86]   Mechanical properties of hybrid inorganic-organic framework materials: establishing fundamental structure-property relationships [J].
Tan, Jin Chong ;
Cheetham, Anthony K. .
CHEMICAL SOCIETY REVIEWS, 2011, 40 (02) :1059-1080
[87]   Room temperature synthesis of metal-organic frameworks: MOF-5, MOF-74, MOF-177, MOF-199, and IRMOF-0 [J].
Tranchemontagne, David J. ;
Hunt, Joseph R. ;
Yaghi, Omar M. .
TETRAHEDRON, 2008, 64 (36) :8553-8557
[88]   Direct Observation and Quantification of CO2 Binding Within an Amine-Functionalized Nanoporous Solid [J].
Vaidhyanathan, Ramanathan ;
Iremonger, Simon S. ;
Shimizu, George K. H. ;
Boyd, Peter G. ;
Alavi, Saman ;
Woo, Tom K. .
SCIENCE, 2010, 330 (6004) :650-653
[89]   Nanopore structure and sorption properties of Cu-BTC metal-organic framework [J].
Vishnyakov, A ;
Ravikovitch, PI ;
Neimark, AV ;
Bulow, M ;
Wang, QM .
NANO LETTERS, 2003, 3 (06) :713-718
[90]   Enhancing the stability of metal-organic frameworks in humid air by incorporating water repellent functional groups [J].
Wu, Tianjiao ;
Shen, Lingjuan ;
Luebbers, Matthew ;
Hu, Chunhua ;
Chen, Qingmei ;
Ni, Zheng ;
Masel, Richard I. .
CHEMICAL COMMUNICATIONS, 2010, 46 (33) :6120-6122