Environmental protection and climate change are current issues at the heart of global economic growth. The awareness of the real risks connected with industrial membrane production sector has been the push towards the search of new, more sustainable, sol vents and raw materials . In this context, dihydrolevoglucosenone (Cyrene(TM)) comes as a green biosolvent derived from waste cellulose, with enormous potentiality, which could offer the possibility to re-design manufacturing processes from the origin. The increasing interest devoted to Cyrene(TM) has its basis in the similarity with many physi cal-chemical properties of highly toxic organic solvents normally used for fabrication membranes (such as N-Methyl-2-pyrrolidone, N,N-Dimethylformamide and N,N-dimethy l acetamide). In fact, Cyrene(TM) is presented as a polar aprotic organic solvent, comple tely miscible with water, and with a relatively high boiling point (227 °C). Herein, Cyrene(TM) was employed for the preparation of polyethersulfone (PES) and pol y(vinylidene fluoride) (PVDF) membranes via phase inversion [2]. By preparing PES/C yrene(TM) and PVDF/Cyrene(TM) casting solutions, without the use of any additive, and b y working at room temperature, microfiltration and ultrafiltration membranes were obta ined. Non-solvent induced phase separation (NIPS) and its combination with vapour-in duced phase separation (VIPS) were adopted as preparation procedure. PES and PVDF membranes were characterized in terms of thickness, porosity, pore size, contact angl e and pure water permeability. The morphology was also assessed. For PVDF membra nes, additional differential scanning calorimetry and Fourier transform infrared spectros copy analysis were performed. The obtained results evidenced as, by varying the exposure time to controlled humid a ir and temperature during the VIPS-NIPS process, membranes with different morpholo gy and properties can be prepared, demonstrating the applicability of Cyrene(TM) for a more sustainable membrane fabrication.

New frontiers in sustainable membrane preparation: Cyrene(TM) as green bioderived solvent

Alberto Figoli;Tiziana Marino;Francesca Russo;Francesco Galiano
2019

Abstract

Environmental protection and climate change are current issues at the heart of global economic growth. The awareness of the real risks connected with industrial membrane production sector has been the push towards the search of new, more sustainable, sol vents and raw materials . In this context, dihydrolevoglucosenone (Cyrene(TM)) comes as a green biosolvent derived from waste cellulose, with enormous potentiality, which could offer the possibility to re-design manufacturing processes from the origin. The increasing interest devoted to Cyrene(TM) has its basis in the similarity with many physi cal-chemical properties of highly toxic organic solvents normally used for fabrication membranes (such as N-Methyl-2-pyrrolidone, N,N-Dimethylformamide and N,N-dimethy l acetamide). In fact, Cyrene(TM) is presented as a polar aprotic organic solvent, comple tely miscible with water, and with a relatively high boiling point (227 °C). Herein, Cyrene(TM) was employed for the preparation of polyethersulfone (PES) and pol y(vinylidene fluoride) (PVDF) membranes via phase inversion [2]. By preparing PES/C yrene(TM) and PVDF/Cyrene(TM) casting solutions, without the use of any additive, and b y working at room temperature, microfiltration and ultrafiltration membranes were obta ined. Non-solvent induced phase separation (NIPS) and its combination with vapour-in duced phase separation (VIPS) were adopted as preparation procedure. PES and PVDF membranes were characterized in terms of thickness, porosity, pore size, contact angl e and pure water permeability. The morphology was also assessed. For PVDF membra nes, additional differential scanning calorimetry and Fourier transform infrared spectros copy analysis were performed. The obtained results evidenced as, by varying the exposure time to controlled humid a ir and temperature during the VIPS-NIPS process, membranes with different morpholo gy and properties can be prepared, demonstrating the applicability of Cyrene(TM) for a more sustainable membrane fabrication.
2019
Istituto per la Tecnologia delle Membrane - ITM
Non-toxic solvent
membrane preparation
cyrene
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/387345
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