Comparison of liquid-phase and methanol-swelling crosslinking processes of polyimide dense membrane forCO(2)/CH(4)separation

Authors
Kim, Seong-JoongAhn, YeojinKim, Jeong F.Nam, Seung-EunPark, HosikCho, Young HoonBaek, Kyung-youlPark, You-In
Issue Date
2021-02-15
Publisher
WILEY
Citation
JOURNAL OF APPLIED POLYMER SCIENCE, v.138, no.7
Abstract
To overcome the plasticization effect in polyimide membranes, many researchers have proposed crosslinking method. This can reduce an inter-segmental mobility by tightening and rigidifying the polymer chains. However, it is difficult to modify the whole polymer chains throughout the membrane because the reaction can be hindered by the diffusion rate of the crosslinker. In particular, it is hard for bulky crosslinker to penetrate a dense membrane with a small d-spacing. This study investigated the effect of crosslinking a dense Matrimid membrane withp-phenylenediamine (p-PDA) via two different crosslinking methods (i.e., methanol-swelling crosslinking process [M-SCP] and liquid-phase crosslinking process [L-PCP]). Most of the crosslinking reaction in M-SCP occurs on the membrane surface due to difficulty in penetration of the bulkyp-PDA into the Matrimid dense membrane. In contrast, the L-PCP allows uniform crosslinking across the membrane. The membranes crosslinked using L-PCP showed excellent chemical resistance. Furthermore, the plasticization phenomenon was not observed in the membranes crosslinked using L-PCP withp-PDA more than 15%. Meanwhile, the membrane crosslinked using M-SCP exhibited poor plasticization and chemical resistance properties. These results showed that the L-PCP method can be more effective for the crosslinking of dense membrane to deliver both high plasticization and chemical resistance.
Keywords
MIXED-MATRIX MEMBRANES; HOLLOW-FIBER MEMBRANES; SEPARATION PERFORMANCE; CO2/CH4 SEPARATION; PLASTICIZATION-RESISTANCE; CO2 PLASTICIZATION; BLEND MEMBRANES; GAS-TRANSPORT; DIAMINE; SURFACE; MIXED-MATRIX MEMBRANES; HOLLOW-FIBER MEMBRANES; SEPARATION PERFORMANCE; CO2/CH4 SEPARATION; PLASTICIZATION-RESISTANCE; CO2 PLASTICIZATION; BLEND MEMBRANES; GAS-TRANSPORT; DIAMINE; SURFACE; crosslinking; membranes; separation techniques
ISSN
0021-8995
URI
https://pubs.kist.re.kr/handle/201004/117407
DOI
10.1002/app.49860
Appears in Collections:
KIST Article > 2021
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