Li Yang, Chen Liu, Dekel Dario R, He Xuezhong
Department of Chemical Engineering, Guangdong Technion - Israel Institute of Technology, 241 Daxue Road, Shantou, Guangdong 515063, China.
The Wolfson Department of Chemical Engineering, Technion - Israel Institute of Technology, Haifa 32000, Israel.
ACS Appl Mater Interfaces. 2025 Jan 8;17(1):2261-2270. doi: 10.1021/acsami.4c17780. Epub 2024 Dec 24.
Facilitated transport membranes (FTMs) with an ultraselective layer prepared from amine-rich polyvinylamine (PVAm)/2-(1-piperazinyl)ethylamine salt of sarcosine (PZEA-Sar) (denoted by PM) and an amorphous dendritic cross-linked network of PVAm-functionalized poly(ethylene glycol)diglycidyl ether (PEGDGE) (named PP) were designed for CO separations. The developed membranes expedited CO transport over N through the synergistic effect from the induced CO-philic ethylene oxide groups and highly hydrophilic and polar hydroxyl groups together with the low-crystallinity PP networks, which offer a high diffusion rate for CO-amine complexes through the membrane and stabilize small molecular mobile carriers via hydrogen bonding. The best (PM/PP-10)/polysulfone (PSf) composite membranes achieved a superior CO/N selectivity of 230 (4.6 times higher compared to that of the pristine PVAm/PSf membranes) paired with a CO permeance of 100 GPU, exceeding the 2019 Robeson upper bound. Molecular dynamics (MD) simulations for the PVAm and PVAm/PP-10 membranes suggested that the PVAm matrix was swelled by the introduced PP-10 network with increased fractional free volume (FFV). The engineering of the molecular structure and the manipulation of FFV strongly push the limits of selectivity for PVAm-based FTMs, which may open doors to provide a facile and scalable approach to developing CO-ultraselective membranes for carbon capture from flue gases.