Kim Ji Hoon, Park Gyeong Seok, Kim Yong-Jae, Choi Eunji, Kang Junhyeok, Kwon Ohchan, Kim Seon Joon, Cho Jeong Ho, Kim Dae Woo
Department of Chemical and Biomolecular Engineering, YONSEI University, Yonsei-ro 50, Seodaemun-gu, Seoul, 03722, Republic of Korea.
Department of Chemical and Biomolecular Engineering, Korea Advanced Institute of Science and Technology (KAIST), Daejeon, 34141, Republic of Korea.
ACS Nano. 2021 May 25;15(5):8860-8869. doi: 10.1021/acsnano.1c01448. Epub 2021 Apr 23.
Large-scale fabrication of MXene films is in high demand for various applications, but it remains difficult to meet industrial requirements. In this study, we develop a slot-die coating method for the preparation of large-area MXene membranes. The technique allows the fabrication of continuous and scalable coatings with a rapid coating speed of 6 mm s. The thickness can be readily controlled from the nanometer scale to the micrometer scale, and the alignment of the nanosheet is enhanced by the shear force of the slot-die head. Molecular separation experiments employing a film with a thickness of approximately 100 nm are performed. A nanofiltration performance with water permeance of 190 LMH/bar and molecular weight cutoff of 269 Da is achieved, surpassing previously reported results obtained using MXene-based nanofiltration membranes. The stability of the membrane is highlighted by its nanofiltration performance of 30 days under harsh oxidizing conditions, which is the longest operation ever achieved for a 2D material-based membrane. The extraordinary stability of the film suggests its high potential for industrial and practical applications. The antioxidizing phenomena can be attributed to self-protection of the MXene surface by adsorbed organic molecules, which are particularly stabilized with positively charged molecules chemisorption.
大规模制备MXene薄膜在各种应用中需求很高,但仍难以满足工业要求。在本研究中,我们开发了一种用于制备大面积MXene膜的狭缝模涂覆方法。该技术能够以6毫米/秒的快速涂覆速度制备连续且可扩展的涂层。厚度可轻松从纳米级控制到微米级,并且通过狭缝模头的剪切力增强了纳米片的排列。使用厚度约为100纳米的薄膜进行了分子分离实验。实现了水渗透率为190 LMH/巴、截留分子量为269 Da的纳滤性能,超过了先前报道的使用基于MXene的纳滤膜所获得的结果。该膜在苛刻氧化条件下30天的纳滤性能突出了其稳定性,这是基于二维材料的膜所实现的最长运行时间。该薄膜的非凡稳定性表明其在工业和实际应用中具有很高的潜力。抗氧化现象可归因于通过吸附有机分子对MXene表面的自我保护,这些有机分子通过带正电分子的化学吸附而特别稳定。