Centre for Research in Nanotechnology & Science (CRNTS), Indian Institute of Technology Bombay, Mumbai400076, India.
Environmental Science and Engineering Department (ESED), Indian Institute of Technology Bombay, Mumbai400076, India.
ACS Appl Mater Interfaces. 2023 Feb 15;15(6):7899-7910. doi: 10.1021/acsami.2c17106. Epub 2023 Feb 7.
Laser-induced graphene (LIG) is a low-cost, chemical-free single-step fabrication process and has shown its potential in water treatment, electronics, and sensing. LIG fabrication optimization is mostly explored for dense polyimide (PI) polymers. However, LIG-based filters and membranes for water treatment need to be porous, and additional steps are required to get porous surfaces from PI-based surfaces. Polyethersulfone (PES) porous membranes are cost-effective and are common in water purification as compared to PI; further, the optimization of LIG fabrication on PES-based porous membranes is not explored. So, this study demonstrated the fabrication, optimization, and characterization of LIG with different laser parameters such as power, speed, image density (ID), focusing, laser platforms, and membrane support layer effect on porous PES commercial (UP010) and lab-casted 15% PES (PES15) membranes. The performance of optimized LIG filters was tested for interfacial evaporation (IE)-based desalination in single and stacked layer configuration and water purification applications such as dye removal and disinfection. IE was done in Joule heating (JH) and solar heating (SH) modes, and the UP010-ID7 LIG filter showed the highest JH evaporation rates of ∼1.1, 1.8, and 2.82 kg m h in single, double, and triple stacked configurations, respectively. Using a JH IE setup, the best-performing UP010-ID7 LIG filters have also shown ∼100% removal of methylene blue dye from the contaminated water. Furthermore, all LIG filters showed a complete 6-log bacterial inhibition at the 5 V filtration experiments; at 2.5 V, the optimized LIG filters showed a higher removal than the non-optimized filters. Additionally, the LIGs obtained with the aluminum platform were the best quality. This work demonstrates that laser power, ID, platform, and membrane support are critical parameters for the best-performing PES-LIG filters, and they can be effectively utilized to fabricate PES-based LIG porous surfaces for various energy, environmental, and catalysis applications.
激光诱导石墨烯(LIG)是一种低成本、无化学物质的单步制造工艺,已在水处理、电子和传感等领域显示出其潜力。LIG 的制造优化主要针对致密的聚酰亚胺(PI)聚合物进行探索。然而,用于水处理的基于 LIG 的过滤器和膜需要是多孔的,并且需要额外的步骤才能从基于 PI 的表面获得多孔表面。与 PI 相比,聚醚砜(PES)多孔膜具有成本效益,并且在水净化中更为常见;此外,基于 PES 的多孔膜上的 LIG 制造优化尚未得到探索。因此,本研究展示了使用不同的激光参数(如功率、速度、图像密度(ID)、聚焦、激光平台和膜支撑层)制造、优化和表征 LIG,这些参数会影响商用多孔 PES(UP010)和实验室浇注的 15%PES(PES15)膜的性能。优化后的 LIG 过滤器的性能测试用于基于界面蒸发(IE)的单层和多层配置脱盐和水净化应用,如染料去除和消毒。IE 在焦耳加热(JH)和太阳能加热(SH)模式下进行,UP010-ID7 LIG 过滤器在单层、双层和三层堆叠配置下分别显示出最高的 JH 蒸发率约为 1.1、1.8 和 2.82kgm h。使用 JH IE 装置,性能最佳的 UP010-ID7 LIG 过滤器还显示出约 100%从受污染水中去除亚甲基蓝染料。此外,所有 LIG 过滤器在 5V 过滤实验中均表现出完全的 6 对数细菌抑制;在 2.5V 下,优化后的 LIG 过滤器的去除率高于非优化过滤器。此外,使用铝平台获得的 LIG 质量最好。这项工作表明,激光功率、ID、平台和膜支撑是制造性能最佳的 PES-LIG 过滤器的关键参数,它们可有效用于制造用于各种能源、环境和催化应用的基于 PES 的 LIG 多孔表面。