TY - JOUR
T1 - Surpassing Robeson Upper Limit for CO2/N2 Separation with Fluorinated Carbon Molecular Sieve Membranes
AU - Yang, Zhenzhen
AU - Guo, Wei
AU - Mahurin, Shannon Mark
AU - Wang, Song
AU - Chen, Hao
AU - Cheng, Long
AU - Jie, Kecheng
AU - Meyer, Harry M.
AU - Jiang, De en
AU - Liu, Gongping
AU - Jin, Wanqin
AU - Popovs, Ilja
AU - Dai, Sheng
N1 - Publisher Copyright:
© 2019
PY - 2020/3/12
Y1 - 2020/3/12
N2 - Rational design of robust and highly selective separation processes leading to an efficient sequestration of anthropogenic CO2 is one of the most important problems, especially considering the effects of climate change. Unsurprisingly, the fabrication of highly selective CO2 separation membranes, especially those capable of overcoming undesirable trade-off relationship between permeability and selectivity, is a vibrant and ever-growing field. However, there are only a handful examples of membranes that reportedly overcome the Robeson upper limit in CO2 separations. In this work, we present an efficient strategy that addresses a rational design of materials that exhibit remarkable affinity toward CO2 by introducing CO2-philic fluorine-containing substituents into their structure, via a bottom up polymerization and pyrolysis approach and a precise control over the ultra-microporosity, resulting in some of the most efficient and promising CO2 separation media reported thus far.
AB - Rational design of robust and highly selective separation processes leading to an efficient sequestration of anthropogenic CO2 is one of the most important problems, especially considering the effects of climate change. Unsurprisingly, the fabrication of highly selective CO2 separation membranes, especially those capable of overcoming undesirable trade-off relationship between permeability and selectivity, is a vibrant and ever-growing field. However, there are only a handful examples of membranes that reportedly overcome the Robeson upper limit in CO2 separations. In this work, we present an efficient strategy that addresses a rational design of materials that exhibit remarkable affinity toward CO2 by introducing CO2-philic fluorine-containing substituents into their structure, via a bottom up polymerization and pyrolysis approach and a precise control over the ultra-microporosity, resulting in some of the most efficient and promising CO2 separation media reported thus far.
KW - SDG13: Climate action
KW - carbon dioxide capture
KW - covalent triazine framework
KW - fluorine
KW - membrane separation
KW - molecular sieve membrane
UR - http://www.scopus.com/inward/record.url?scp=85080987456&partnerID=8YFLogxK
U2 - 10.1016/j.chempr.2019.12.006
DO - 10.1016/j.chempr.2019.12.006
M3 - 文章
AN - SCOPUS:85080987456
SN - 2451-9308
VL - 6
SP - 631
EP - 645
JO - Chem
JF - Chem
IS - 3
ER -