Yunpeng Shen , Ayan Yao , Jinyang Li , Dan Hua , Kok Bing Tan , Guowu Zhan , Xiaoping Rao
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The ultrathin MXene was then integrated into the commercial P84 polymeric matrices to fabricate MMMs for </span></span>organic solvent<span><span> nanofiltration (OSN) application. The as-prepared MMMs were systematically characterized by SEM, XRD, </span>AFM<span>, EDX, TG, </span></span></span></span>mechanical properties, </span><em>etc</em>. Compared to the original P84 membrane, the u-Ti<sub>3</sub>C<sub>2</sub>T<sub>x</sub>@P84 MMMs<sub>x</sub> showed improved ethanol permeability (3.97 vs. 2.14 L m<sup>−2</sup> h<sup>−1</sup> bar<sup>−1</sup>) without sacrificing BBR rejection (96.1 vs. 94.2%). Furthermore, the permeance showed a typical “volcano” curve with increasing u-Ti<sub>3</sub>C<sub>2</sub>T<sub>x</sub> loading content, while the rejection showed a “wavy” trend. Interestingly, a substantial increase in permeance without sacrificing rejection was found when compared with bulk MXene. Moreover, the developed u-Ti<sub>3</sub>C<sub>2</sub>T<sub>x</sub><span><span>@P84 MMMs with good long-term stability (up to 50 h) also exhibited excellent OSN performance in other organic solvents such as methanol, isopropanol, acetone, acetonitrile, </span>hexane, </span><em>etc</em>. 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However, the traditional method to disperse MXene has low exfoliation efficiency accompanied by </span>auxiliary<span><span><span> toxic chemicals. In this work, a novel method was applied to obtain a few or monolayer MXene by using the sonication-assisted potassium fulvic acid (PFA) method for the exfoliation of bulk MXene. It not only improved the </span>wettability of Mxene, but also increased the surface </span>Zeta potential and enhanced the electrostatic repulsion between particles. The ultrathin MXene was then integrated into the commercial P84 polymeric matrices to fabricate MMMs for </span></span>organic solvent<span><span> nanofiltration (OSN) application. The as-prepared MMMs were systematically characterized by SEM, XRD, </span>AFM<span>, EDX, TG, </span></span></span></span>mechanical properties, </span><em>etc</em>. 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引用次数: 0
摘要
新兴的二维(2D) MXene具有高宽高比、亲水性和丰富的末端,已被用于制造用于各种纳滤应用的混合基质膜(MMMs)。然而,传统的分散MXene的方法去角质效率低,并伴有辅助有毒化学品。本文采用超声辅助富里酸钾(PFA)法制备少量或单层MXene。它不仅提高了Mxene的润湿性,而且增加了表面Zeta电位,增强了颗粒间的静电斥力。然后将超薄MXene集成到商用P84聚合物基质中,以制备用于有机溶剂纳滤(OSN)应用的MMMs。采用SEM、XRD、AFM、EDX、TG、力学性能等手段对所制备的MMMs进行了系统表征。与原来的P84膜相比,u-Ti3C2Tx@P84 MMMsx在不牺牲BBR排斥(96.1比94.2%)的情况下提高了乙醇渗透性(3.97比2.14 L m−2 h−1 bar−1)。渗透率随u-Ti3C2Tx加载量的增加呈典型的“火山”型曲线,而截留率呈“波浪”型趋势。有趣的是,与大量MXene相比,在不牺牲排异反应的情况下,发现渗透率大幅增加。此外,所制备的u-Ti3C2Tx@P84 mm在甲醇、异丙醇、丙酮、乙腈、己烷等其他有机溶剂中也表现出良好的OSN性能,具有良好的长期稳定性(长达50 h)。因此,分散的MXene在OSN的实际应用中具有很大的潜力。
Dispersive two-dimensional MXene via potassium fulvic acid for mixed matrix membranes with enhanced organic solvent nanofiltration performance
The emerging two-dimensional (2D) MXene with high aspect ratio, hydrophilic, and abundant terminations, has been used to fabricate mixed matrix membranes (MMMs) for diverse nanofiltration applications. However, the traditional method to disperse MXene has low exfoliation efficiency accompanied by auxiliary toxic chemicals. In this work, a novel method was applied to obtain a few or monolayer MXene by using the sonication-assisted potassium fulvic acid (PFA) method for the exfoliation of bulk MXene. It not only improved the wettability of Mxene, but also increased the surface Zeta potential and enhanced the electrostatic repulsion between particles. The ultrathin MXene was then integrated into the commercial P84 polymeric matrices to fabricate MMMs for organic solvent nanofiltration (OSN) application. The as-prepared MMMs were systematically characterized by SEM, XRD, AFM, EDX, TG, mechanical properties, etc. Compared to the original P84 membrane, the u-Ti3C2Tx@P84 MMMsx showed improved ethanol permeability (3.97 vs. 2.14 L m−2 h−1 bar−1) without sacrificing BBR rejection (96.1 vs. 94.2%). Furthermore, the permeance showed a typical “volcano” curve with increasing u-Ti3C2Tx loading content, while the rejection showed a “wavy” trend. Interestingly, a substantial increase in permeance without sacrificing rejection was found when compared with bulk MXene. Moreover, the developed u-Ti3C2Tx@P84 MMMs with good long-term stability (up to 50 h) also exhibited excellent OSN performance in other organic solvents such as methanol, isopropanol, acetone, acetonitrile, hexane, etc. Accordingly, the dispersive MXene has great potential for OSN practical applications.
期刊介绍:
The Journal of Membrane Science is a publication that focuses on membrane systems and is aimed at academic and industrial chemists, chemical engineers, materials scientists, and membranologists. It publishes original research and reviews on various aspects of membrane transport, membrane formation/structure, fouling, module/process design, and processes/applications. The journal primarily focuses on the structure, function, and performance of non-biological membranes but also includes papers that relate to biological membranes. The Journal of Membrane Science publishes Full Text Papers, State-of-the-Art Reviews, Letters to the Editor, and Perspectives.