Regmi Chhabilal, Kshetri Yuwaraj K, Wickramasinghe S Ranil
Ralph E. Martin Department of Chemical Engineering, University of Arkansas, Fayetteville, AR 72701, USA.
Research Center for Green Advanced Materials, Sun Moon University, Asan 31460, Republic of Korea.
Membranes (Basel). 2024 Jul 20;14(7):160. doi: 10.3390/membranes14070160.
The development of an ideal membrane for membrane distillation (MD) is of the utmost importance. Enhancing the efficiency of MD by adding nanoparticles to or onto a membrane's surface has drawn considerable attention from the scientific community. It is crucial to thoroughly examine state-of-the-art nanomaterials-enabled MD membranes with desirable properties, as they greatly enhance the efficiency and reliability of the MD process. This, in turn, opens up opportunities for achieving a sustainable water-energy-environment nexus. By introducing carbon-based nanomaterials into the membrane's structure, the membrane gains excellent separation abilities, resistance to various feed waters, and a longer lifespan. Additionally, the use of carbon-based nanomaterials in MD has led to improved membrane performance characteristics such as increased permeability and a reduced fouling propensity. These nanomaterials have also enabled novel membrane capabilities like in situ foulant degradation and localized heat generation. Therefore, this review offers an overview of how the utilization of different carbon-based nanomaterials in membrane synthesis impacts the membrane characteristics, particularly the liquid entry pressure (LEP), hydrophobicity, porosity, and membrane permeability, as well as reduced fouling, thereby advancing the MD technology for water treatment processes. Furthermore, this review also discusses the development, challenges, and research opportunities that arise from these findings.
开发用于膜蒸馏(MD)的理想膜至关重要。通过在膜表面添加纳米颗粒来提高膜蒸馏效率已引起科学界的广泛关注。全面研究具有理想性能的先进纳米材料基膜蒸馏膜至关重要,因为它们能极大地提高膜蒸馏过程的效率和可靠性。这反过来又为实现可持续的水 - 能源 - 环境关系创造了机会。通过将碳基纳米材料引入膜结构,膜获得了出色的分离能力、对各种进水的耐受性以及更长的使用寿命。此外,在膜蒸馏中使用碳基纳米材料还改善了膜的性能特性,如提高了渗透率和降低了污染倾向。这些纳米材料还实现了诸如原位污染物降解和局部发热等新型膜功能。因此,本综述概述了在膜合成中使用不同碳基纳米材料如何影响膜的特性,特别是液体进入压力(LEP)、疏水性、孔隙率和膜渗透率,以及减少污染,从而推动膜蒸馏技术用于水处理过程。此外,本综述还讨论了这些研究结果带来的发展、挑战和研究机会。