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Development and Study of Novel Ultrafiltration Membranes Based on Cellulose Acetate.
Kuzminova, Anna; Dmitrenko, Mariia; Dubovenko, Roman; Puzikova, Margarita; Mikulan, Anna; Korovina, Alexandra; Koroleva, Aleksandra; Selyutin, Artem; Semenov, Konstantin; Su, Rongxin; Penkova, Anastasia.
Afiliação
  • Kuzminova A; St. Petersburg State University, 7/9 Universitetskaya nab., St. Petersburg 199034, Russia.
  • Dmitrenko M; St. Petersburg State University, 7/9 Universitetskaya nab., St. Petersburg 199034, Russia.
  • Dubovenko R; St. Petersburg State University, 7/9 Universitetskaya nab., St. Petersburg 199034, Russia.
  • Puzikova M; St. Petersburg State University, 7/9 Universitetskaya nab., St. Petersburg 199034, Russia.
  • Mikulan A; St. Petersburg State University, 7/9 Universitetskaya nab., St. Petersburg 199034, Russia.
  • Korovina A; St. Petersburg State University, 7/9 Universitetskaya nab., St. Petersburg 199034, Russia.
  • Koroleva A; St. Petersburg State University, 7/9 Universitetskaya nab., St. Petersburg 199034, Russia.
  • Selyutin A; St. Petersburg State University, 7/9 Universitetskaya nab., St. Petersburg 199034, Russia.
  • Semenov K; Pavlov First Saint Petersburg State Medical University, L'va Tolstogo ulitsa 6-8, St. Petersburg 197022, Russia.
  • Su R; State Key Laboratory of Chemical Engineering, School of Chemical Engineering and Technology, Tianjin University, Tianjin 300072, China.
  • Penkova A; St. Petersburg State University, 7/9 Universitetskaya nab., St. Petersburg 199034, Russia.
Polymers (Basel) ; 16(9)2024 Apr 28.
Article em En | MEDLINE | ID: mdl-38732705
ABSTRACT
Recently, increasing attention of researchers in the field of membrane technology has been paid to the development of membranes based on biopolymers. One of the well-proven polymers for the development of porous membranes is cellulose acetate (CA). This paper is devoted to the study of the influence of different parameters on ultrafiltration CA membrane formation and their transport properties, such as the variation in coagulation bath temperature, membrane shrinkage (post-treatment at 80 °C), introduction to casting CA solution of polymers (polyethylene glycol (PEG), polysulfone (PS), and Pluronic F127 (PL)) and carbon nanoparticles (SWCNTs, MWCNTs, GO, and C60). The structural and physicochemical properties of developed membranes were studied by scanning electron and atomic force microscopies, Fourier-transform infrared spectroscopy, X-ray photoelectron spectroscopy, and contact angle measurements. The transport properties of developed CA-based membranes were evaluated in ultrafiltration of bovine serum albumin (BSA), dextran 110 and PVP K-90. All developed membranes rejected 90% compounds with a molecular weight from ~270,000 g/mol. It was shown that the combination of modifications (addition of PEG, PS, PL, PS-PL, and 0.5 wt% C60) led to an increase in the fluxes and BSA rejection coefficients with slight decrease in the flux recovery ratio. These changes were due to an increased macrovoid number, formation of a more open porous structure and/or thinner top selective, and decreased surface roughness and hydrophobization during C60 modification of blend membranes. Optimal transport properties were found for CA-PEG+C60 (the highest water-394 L/(m2h) and BSA-212 L/(m2h) fluxes) and CA-PS+C60 (maximal rejection coefficient of BSA-59%) membranes.
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Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article