Research output: Contribution to journal › Article › peer-review
Co-polyamide with 2-pyridylquinoline moieties in the main chain and its metal-polymer complex with Cu(II) for toluene recovery: synthesis, structure, physicochemical and transport properties. / Пулялина, Александра Юрьевна; Полоцкая, Галина Андреевна; Файков, Илья Ильич; Груздева, Екатерина Олеговна; Подешво, Ирина Владимировна; Новиков, Александр Сергеевич; Гофман, Иосиф; Абалов, И.В.; Лорецян, Наири Левоновна; Сапрыкина, Н. Н.
In: Macromolecular Chemistry and Physics, 07.01.2025.Research output: Contribution to journal › Article › peer-review
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TY - JOUR
T1 - Co-polyamide with 2-pyridylquinoline moieties in the main chain and its metal-polymer complex with Cu(II) for toluene recovery: synthesis, structure, physicochemical and transport properties
AU - Пулялина, Александра Юрьевна
AU - Полоцкая, Галина Андреевна
AU - Файков, Илья Ильич
AU - Груздева, Екатерина Олеговна
AU - Подешво, Ирина Владимировна
AU - Новиков, Александр Сергеевич
AU - Гофман, Иосиф
AU - Абалов, И.В.
AU - Лорецян, Наири Левоновна
AU - Сапрыкина, Н. Н.
PY - 2025/1/7
Y1 - 2025/1/7
N2 - Currently, recovery of organic solvents using eco-friendly methods is one of the primary industrial tasks. Separation of liquid media by pervaporation offers more advantages as compared to conventional purification methods, such as distillation, in view of low energy and resource consumption. This work is focused on the study of novel copolyamide with 2-pyridylquinoline-4,7-dicarboxylic acid moieties in the main chain and its metal-polymer complex in the form of dense films. At present, metal-polymer complexes are growing in importance among membranes. The analysis of mechanical and thermal properties of the films also supports their high operational characteristics. Comprehensive studies of the structure of the obtained films show that both samples have a rigid and dense structure, but the metal-polymer complex is characterized by an increased surface roughness. The hypothesis of supramolecular association between polymers and separated liquids (methanol and toluene) is confirmed by quantum chemical calculations. Transport properties of novel polymers in pervaporation of toluene/methanol mixtures are examined and compared with the literature data. Both polymer films demonstrate an outstanding selectivity toward toluene in the separation of binary mixtures. The developed films have higher values of total flux and separation factor as compared to the most of known membranes.
AB - Currently, recovery of organic solvents using eco-friendly methods is one of the primary industrial tasks. Separation of liquid media by pervaporation offers more advantages as compared to conventional purification methods, such as distillation, in view of low energy and resource consumption. This work is focused on the study of novel copolyamide with 2-pyridylquinoline-4,7-dicarboxylic acid moieties in the main chain and its metal-polymer complex in the form of dense films. At present, metal-polymer complexes are growing in importance among membranes. The analysis of mechanical and thermal properties of the films also supports their high operational characteristics. Comprehensive studies of the structure of the obtained films show that both samples have a rigid and dense structure, but the metal-polymer complex is characterized by an increased surface roughness. The hypothesis of supramolecular association between polymers and separated liquids (methanol and toluene) is confirmed by quantum chemical calculations. Transport properties of novel polymers in pervaporation of toluene/methanol mixtures are examined and compared with the literature data. Both polymer films demonstrate an outstanding selectivity toward toluene in the separation of binary mixtures. The developed films have higher values of total flux and separation factor as compared to the most of known membranes.
KW - metal-polymer complex
KW - pervaporation
KW - polyamide with 2-pyridylquinoline moieties
KW - toluene purification
UR - https://www.mendeley.com/catalogue/4a006e4c-1a16-309c-bbc7-dcb2f6dc19eb/
U2 - 10.1002/macp.202400178
DO - 10.1002/macp.202400178
M3 - Article
JO - Macromolecular Chemistry and Physics
JF - Macromolecular Chemistry and Physics
SN - 1022-1352
M1 - 2400178
ER -
ID: 127363728