玻璃化转变
二胺
溶解度
芴
吡啶
气体分离
缩聚物
高分子化学
甲基三甲氧基硅烷
BPDA公司
聚酰亚胺
材料科学
有机化学
吊坠组
化学
共聚物
化学工程
沸点
沸腾
接触角
选择性
聚合物
大气温度范围
半透膜
乙醚
化学结构
热处理
红外光谱学
环己酮
傅里叶变换红外光谱
热稳定性
膜
作者
Zhongying Liu,Hongchao Niu,Xianlong Wei,Zhiqing Liang,Xiangkai Li,Hui Wu,Chanjuan Liu,Xiaohua Huang
摘要
ABSTRACT In this study, a novel diamine 4‐(2,6‐bis(4‐(trifluoromethyl)phenyl)pyridine)phenyl‐3,5‐diaminobenzoate (FPPAB) containing trifluoromethyl, pyridine, and ester groups was synthesized by a three‐step organic reaction. Then, four structures of copolyimides were prepared by a one‐step polycondensation reaction using diamine (FPPAB), dianhydride 4,4′‐(hexafluoroisopropyl)diphthalic anhydride (6FDA), and four commercial diamines. The synthesized copolyimides exhibited high thermal stability, with the glass transition temperature ( T g ) and 5% loss temperature ( T 5% ) in the range of 210°C–256°C and 343°C–452°C, respectively, and X‐ray diffraction analysis indicated that the copolyimides featured a d ‐spacing of 4.90–5.57 Å. They also showed excellent solubility in both high and low boiling point organic solvents. Furthermore, the membranes not only had outstanding optical properties (wavelength range of 80% transmittance = 378–454 nm) but also had excellent hydrophobicity (water contact angle > 91.96°). Notably, the copolyimide membrane with a fluorene structure showed the highest gas permeability ( P (He) = 46.27, P (CO 2 ) = 21.06, P (N 2 ) = 1.57 barrer) and favorable selectivity ( α (He/N 2 ) = 29.55, α (CO 2 /N 2 ) = 13.69). This membrane also exhibited the largest fractional free volume (FFV). Overall, the prepared copolyimides exhibited a well‐balanced combination of properties, particularly in gas separation performance, indicating that the properties of copolyimides could be effectively optimized by adjusting the structure of monomers.
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