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用于增强盐分分离的缺陷修复碳纳米膜:可扩展合成与性能

Defect-Healed Carbon Nanomembranes for Enhanced Salt Separation: Scalable Synthesis and Performance.

作者信息

Yao Zhen, Li Pengfei, Chen Kuo, Yang Yang, Beyer André, Westphal Michael, Niu Qingshan Jason, Gölzhäuser Armin

机构信息

Physics of Supramolecular Systems and Surfaces, Bielefeld University, Bielefeld 33615, Germany.

College of Chemical Engineering, China University of Petroleum (East China), Qingdao 266580, PR China.

出版信息

ACS Appl Mater Interfaces. 2024 May 1;16(17):22614-22621. doi: 10.1021/acsami.4c00252. Epub 2024 Apr 19.

Abstract

Carbon nanomembranes (CNMs), with a high density of subnanometer channels, enable superior salt separation performance compared to conventional membranes. However, defects that occur during the synthesis and transfer processes impede their technical realization on a macroscopic scale. Here, we introduce a practical and scalable interfacial polymerization method to effectively heal defects while preserving the subnanometer pores within CNMs. The defect-healed freestanding CNMs show an exceptional performance in forward osmosis (FO), achieving a water flux of 105 L m h and a specific reverse salt flux of 0.1 g L when measured with 1 M NaCl as draw solution. This water flux is 10 times higher than that of commercially available FO membranes, and the reverse salt flux is 70% lower. Through successful implementation of the defect-healing method and support optimization, we demonstrate the synthesis of fully functional, centimeter-scale CNM-based composite membranes showing high water permeance and a high salt rejection. Our defect-healing method presents a promising pathway to overcome limitations in CNM synthesis, advancing their potential for practical salt separation applications.

摘要

碳纳米膜(CNM)具有高密度的亚纳米级通道,与传统膜相比,具有卓越的盐分分离性能。然而,在合成和转移过程中出现的缺陷阻碍了它们在宏观规模上的技术实现。在此,我们引入一种实用且可扩展的界面聚合方法,以有效修复缺陷,同时保留CNM内的亚纳米级孔隙。缺陷修复后的独立式CNM在正向渗透(FO)中表现出卓越性能,当以1 M NaCl作为汲取溶液进行测量时,实现了105 L m h的水通量和0.1 g L的特定反向盐通量。该水通量比市售FO膜高10倍,反向盐通量低70%。通过成功实施缺陷修复方法和支撑优化,我们展示了具有高透水性和高盐截留率的全功能厘米级基于CNM的复合膜的合成。我们的缺陷修复方法为克服CNM合成中的限制提供了一条有前景的途径,推动了它们在实际盐分分离应用中的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a208/11073045/898c13d5df9c/am4c00252_0001.jpg

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