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Sustainable pervaporation membranes based on carboxymethyl cellulose modified with metal organic frameworks for water/isopropanol separation. / Кузьминова, Анна Игоревна; Дмитренко, Мария Евгеньевна; Степанова, Анастасия Сергеевна; Микулан, Анна Ярославовна; Пузикова, Маргарита Егоровна; Селютин, Артем Александрович; Муханова, Елизавета; Пенькова, Анастасия Владимировна.

в: Journal of Materials Science, 29.11.2025.

Результаты исследований: Научные публикации в периодических изданияхстатьяРецензирование

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@article{298911e4c5844bce84f73d09d4882cd9,
title = "Sustainable pervaporation membranes based on carboxymethyl cellulose modified with metal organic frameworks for water/isopropanol separation",
abstract = "Selecting the right polymer–modifier pairs is essential for creating mixed matrix membranes (MMMs) with enhanced transport properties. In this study, novel dense and supported MMMs based on the biopolymer carboxymethylcellulose (CMC) modified using Cu-based metal–organic frameworks (MOFs: HKUST-1 and HKUST-1-AcOH) were developed to improve the pervaporation dehydration of isopropanol. The effect of varying the content of the MOFs, selecting the solvent for creating of polyacrylonitrile (PAN)-based porous support, and choosing the concentration of the CMC solution for developing supported membranes on the structure and properties was investigated. The synthesized MOFs and CMC-based membranes were studied using Fourier–transform infrared spectroscopy, X-ray diffraction analysis, surface area measurement, scanning electron microscopy, atomic force microscopy, energy- dispersive X-ray spectroscopy, thermogravimetric analysis, contact angle, mechanical properties, and swelling measurements. The transport properties of dense and supported membranes were tested in the pervaporation dehydration of isopropanol. Combining a 10 wt.% HKUST-1-AcOH concentration, a porous PAN support, a 0.5 wt.% CMC concentration, and cross-linking the polymer chains with glutaraldehyde (GA) resulted in a membrane that remained stable for 8 days and exhibited improved performance, achieving the highest permeation flux (0.075–1.264 kg/(m2 h)), pervaporation separation index (≥ 123 kg/(m2 h)), and component permeances (≥ 2123 GPU for water and ≥ 0.28 GPU for isopropanol) in the pervaporation separation of water/isopropanol mixtures containing 12–90 wt.% water at 22 °C.",
author = "Кузьминова, {Анна Игоревна} and Дмитренко, {Мария Евгеньевна} and Степанова, {Анастасия Сергеевна} and Микулан, {Анна Ярославовна} and Пузикова, {Маргарита Егоровна} and Селютин, {Артем Александрович} and Елизавета Муханова and Пенькова, {Анастасия Владимировна}",
year = "2025",
month = nov,
day = "29",
doi = "10.1007/s10853-025-11898-z",
language = "English",
journal = "Journal of Materials Science",
issn = "0022-2461",
publisher = "Springer Nature",

}

RIS

TY - JOUR

T1 - Sustainable pervaporation membranes based on carboxymethyl cellulose modified with metal organic frameworks for water/isopropanol separation

AU - Кузьминова, Анна Игоревна

AU - Дмитренко, Мария Евгеньевна

AU - Степанова, Анастасия Сергеевна

AU - Микулан, Анна Ярославовна

AU - Пузикова, Маргарита Егоровна

AU - Селютин, Артем Александрович

AU - Муханова, Елизавета

AU - Пенькова, Анастасия Владимировна

PY - 2025/11/29

Y1 - 2025/11/29

N2 - Selecting the right polymer–modifier pairs is essential for creating mixed matrix membranes (MMMs) with enhanced transport properties. In this study, novel dense and supported MMMs based on the biopolymer carboxymethylcellulose (CMC) modified using Cu-based metal–organic frameworks (MOFs: HKUST-1 and HKUST-1-AcOH) were developed to improve the pervaporation dehydration of isopropanol. The effect of varying the content of the MOFs, selecting the solvent for creating of polyacrylonitrile (PAN)-based porous support, and choosing the concentration of the CMC solution for developing supported membranes on the structure and properties was investigated. The synthesized MOFs and CMC-based membranes were studied using Fourier–transform infrared spectroscopy, X-ray diffraction analysis, surface area measurement, scanning electron microscopy, atomic force microscopy, energy- dispersive X-ray spectroscopy, thermogravimetric analysis, contact angle, mechanical properties, and swelling measurements. The transport properties of dense and supported membranes were tested in the pervaporation dehydration of isopropanol. Combining a 10 wt.% HKUST-1-AcOH concentration, a porous PAN support, a 0.5 wt.% CMC concentration, and cross-linking the polymer chains with glutaraldehyde (GA) resulted in a membrane that remained stable for 8 days and exhibited improved performance, achieving the highest permeation flux (0.075–1.264 kg/(m2 h)), pervaporation separation index (≥ 123 kg/(m2 h)), and component permeances (≥ 2123 GPU for water and ≥ 0.28 GPU for isopropanol) in the pervaporation separation of water/isopropanol mixtures containing 12–90 wt.% water at 22 °C.

AB - Selecting the right polymer–modifier pairs is essential for creating mixed matrix membranes (MMMs) with enhanced transport properties. In this study, novel dense and supported MMMs based on the biopolymer carboxymethylcellulose (CMC) modified using Cu-based metal–organic frameworks (MOFs: HKUST-1 and HKUST-1-AcOH) were developed to improve the pervaporation dehydration of isopropanol. The effect of varying the content of the MOFs, selecting the solvent for creating of polyacrylonitrile (PAN)-based porous support, and choosing the concentration of the CMC solution for developing supported membranes on the structure and properties was investigated. The synthesized MOFs and CMC-based membranes were studied using Fourier–transform infrared spectroscopy, X-ray diffraction analysis, surface area measurement, scanning electron microscopy, atomic force microscopy, energy- dispersive X-ray spectroscopy, thermogravimetric analysis, contact angle, mechanical properties, and swelling measurements. The transport properties of dense and supported membranes were tested in the pervaporation dehydration of isopropanol. Combining a 10 wt.% HKUST-1-AcOH concentration, a porous PAN support, a 0.5 wt.% CMC concentration, and cross-linking the polymer chains with glutaraldehyde (GA) resulted in a membrane that remained stable for 8 days and exhibited improved performance, achieving the highest permeation flux (0.075–1.264 kg/(m2 h)), pervaporation separation index (≥ 123 kg/(m2 h)), and component permeances (≥ 2123 GPU for water and ≥ 0.28 GPU for isopropanol) in the pervaporation separation of water/isopropanol mixtures containing 12–90 wt.% water at 22 °C.

UR - https://www.mendeley.com/catalogue/0e527bd2-b997-305c-9ff0-7cb7ae2097f7/

U2 - 10.1007/s10853-025-11898-z

DO - 10.1007/s10853-025-11898-z

M3 - Article

JO - Journal of Materials Science

JF - Journal of Materials Science

SN - 0022-2461

ER -

ID: 137929807