光热超疏水材料在含油废水处理领域的研究进展
Research Progress of Photothermal Superhydrophobic Materials in the Field of Oily Wastewater Treatment
DOI: 10.12677/ms.2024.146106, PDF,   
作者: 李莹莹, 史雪婷*:兰州交通大学材料科学与工程学院,甘肃 兰州
关键词: 超疏水光热转换油水分离原油吸附Superhydrophobic Photothermal Conversion Oil/Water Separation Crude Oil Absorption
摘要: 工业制造及石油泄漏产生的含油废水含量越发增加,导致水体受污染程度越发严峻。具有特殊润湿性的界面材料成为处理含油废水的首选材料,但是对于高黏度油而言,具有光热性能的超疏水材料可对其进行处理。因此,基于光热转换的超疏水材料用于原油吸附和油水分离领域成为研究热点。本文先介绍了光热超疏水材料的润湿性原理及光热转换机理,然后综述了其用于油水分离和原油吸附的最新研究进展,最后提出了光热超疏水材料在油水分离和原油吸附领域的不足之处并展望了其后续发展进程和工业应用前景。
Abstract: Increasing levels of oily wastewater from industrial manufacturing and oil spills, leading to more and more serious levels of contamination of water bodies. Interfacial materials with special wettability have become the materials of choice for treating oily wastewater, but for highly viscous oils, superhydrophobic materials with photothermal properties can treat them. Therefore, superhydrophobic materials based on photothermal conversion for crude oil adsorption and oil/ water separation have become a research hotspot. In this paper, we first introduce the wettability principle of photothermal superhydrophobic materials and the mechanism of photothermal conversion, then summarized the recent research progress on its use for oil/water separation and crude oil adsorption, finally, the shortcomings of photothermal superhydrophobic materials in the field of oil/water separation and crude oil adsorption are proposed and their subsequent development process and industrial application prospects are anticipated.
文章引用:李莹莹, 史雪婷. 光热超疏水材料在含油废水处理领域的研究进展[J]. 材料科学, 2024, 14(6): 934-945. https://doi.org/10.12677/ms.2024.146106

参考文献

[1] Li, K., Yu, H., Xu, Y. and Luo, X. (2022) Scheduling Optimization of Offshore Oil Spill Cleaning Materials Considering Multiple Accident Sites and Multiple Oil Types. Sustainability, 14, Article 10047. [Google Scholar] [CrossRef
[2] Yang, X., Wang, B., Ma, S., Qi, J., Chen, Z., Feng, Y., et al. (2023) Multifunctional Magnetic Sponge with Outstanding Solar/Electro-Thermal Performance for High-Efficiency and All-Day Continuous Cleanup of Crude Oil Spills. Science of the Total Environment, 892, Article ID: 164601. [Google Scholar] [CrossRef] [PubMed]
[3] Li, Z., Lin, Z., Qiu, F., Uyama, H. and Zhang, T. (2023) Energy-Optimized Oil Spill Cleanup: Joule-/Solar-Heating Copper Foam for Efficient All-Weather Recovery of Viscous Crude Oil. Industrial & Engineering Chemistry Research, 62, 13133-13143. [Google Scholar] [CrossRef
[4] Hu, G., Mohammadiun, S., Gharahbagh, A.A., Li, J., Hewage, K. and Sadiq, R. (2020) Selection of Oil Spill Response Method in Arctic Offshore Waters: A Fuzzy Decision Tree Based Framework. Marine Pollution Bulletin, 161, Article ID: 111705. [Google Scholar] [CrossRef] [PubMed]
[5] Faksness, L., Leirvik, F., Taban, I.C., Engen, F., Jensen, H.V., Holbu, J.W., et al. (2022) Offshore Field Experiments with In-Situ Burning of Oil: Emissions and Burn Efficiency. Environmental Research, 205, Article ID: 112419. [Google Scholar] [CrossRef] [PubMed]
[6] Vergeynst, L., Wegeberg, S., Aamand, J., Lassen, P., Gosewinkel, U., Fritt-Rasmussen, J., et al. (2018) Biodegradation of Marine Oil Spills in the Arctic with a Greenland Perspective. Science of the Total Environment, 626, 1243-1258. [Google Scholar] [CrossRef] [PubMed]
[7] Aziz, Z.S., Jazza, S.H., Dageem, H.N., Banoon, S.R., Balboul, B.A. and Abdelzaher, M.A. (2024) Bacterial Biodegradation of Oil-Contaminated Soil for Pollutant Abatement Contributing to Achieve Sustainable Development Goals: A Comprehensive Review. Results in Engineering, 22, Article ID: 102083. [Google Scholar] [CrossRef
[8] Etkin, D.S. and Nedwed, T.J. (2021) Effectiveness of Mechanical Recovery for Large Offshore Oil Spills. Marine Pollution Bulletin, 163, Article ID: 111848. [Google Scholar] [CrossRef] [PubMed]
[9] Piao, L., Park, C.J., Kim, S., Park, K., Lee, Y., Kim, H., et al. (2023) Development of Rapid and Effective Oil-Spill Response System Integrated with Oil Collection, Recovery and Storage Devices for Small Oil Spills at Initial Stage: from Lab-Scale Study to Field-Scale Test. Journal of Environmental Management, 345, Article ID: 118833. [Google Scholar] [CrossRef] [PubMed]
[10] Wen, H., Liang, L., Xu, N. and Liu, C. (2024) Multi-functional Self-Cleaning Superhydrophobic Cotton Fabric as Photothermal-Reinforced Crude Oil Separator, Oil Skimmer and Underwater Oil Absorbent. Separation and Purification Technology, 337, Article ID: 126258. [Google Scholar] [CrossRef
[11] Cui, X., Ruan, Q., Zhuo, X., Xia, X., Hu, J., Fu, R., et al. (2023) Photothermal Nanomaterials: A Powerful Light-to-Heat Converter. Chemical Reviews, 123, 6891-6952. [Google Scholar] [CrossRef] [PubMed]
[12] Said, Z., Sohail, M.A., Pandey, A.K., Sharma, P., Waqas, A., Chen, W., et al. (2023) Nanotechnology-Integrated Phase Change Material and Nanofluids for Solar Applications as a Potential Approach for Clean Energy Strategies: Progress, Challenges, and Opportunities. Journal of Cleaner Production, 416, Article ID: 137736. [Google Scholar] [CrossRef
[13] Chi, J., Zhang, X., Wang, Y., Shao, C., Shang, L. and Zhao, Y. (2021) Bio-Inspired Wettability Patterns for Biomedical Applications. Materials Horizons, 8, 124-144. [Google Scholar] [CrossRef] [PubMed]
[14] Elzaabalawy, A. and Meguid, S.A. (2019) Effect of Surface Topology on the Wettability of Superhydrophobic Surfaces. Journal of Dispersion Science and Technology, 41, 470-478. [Google Scholar] [CrossRef
[15] Muhammed, N.S., Haq, B. and Al Shehri, D.A. (2023) Hydrogen Storage in Depleted Gas Reservoirs Using Nitrogen Cushion Gas: A Contact Angle and Surface Tension Study. International Journal of Hydrogen Energy, 48, 38782-38807. [Google Scholar] [CrossRef
[16] Wenzel, R.N. (1936) Resistance of Solid Surfaces to Wetting by Water. Industrial & Engineering Chemistry, 28, 988-994. [Google Scholar] [CrossRef
[17] Cassie, A.B.D. and Baxter, S. (1944) Wettability of Porous Surfaces. Transactions of the Faraday Society, 40, 546-551. [Google Scholar] [CrossRef
[18] Lafuma, A. and Quéré, D. (2003) Superhydrophobic States. Nature Materials, 2, 457-460. [Google Scholar] [CrossRef] [PubMed]
[19] Liu, S., Liang, H. and Yin, Y. (2024) Site-Selective Reprogrammable Actuators for Soft Robotic Systems Using Plasmonic Photothermal Conversion. Device, 2, Article ID: 100330. [Google Scholar] [CrossRef
[20] Xu, C. and Pu, K. (2021) Second Near-Infrared Photothermal Materials for Combinational Nanotheranostics. Chemical Society Reviews, 50, 1111-1137. [Google Scholar] [CrossRef] [PubMed]
[21] Zhang, G., Hu, H., Deng, S., Xiao, X., Xiong, Y., Peng, J., et al. (2023) An Integrated Colorimetric and Photothermal Lateral Flow Immunoassay Based on Bimetallic Ag-Au Urchin-Like Hollow Structures for the Sensitive Detection of E. coli O157: H7. Biosensors and Bioelectronics, 225, Article ID: 115090. [Google Scholar] [CrossRef] [PubMed]
[22] Chen, Y., Chen, Z., Yang, D., Zhu, L., Liang, Z., Pang, Y., et al. (2022) Novel Microbial Palladium Nanoparticles with a High Photothermal Effect for Antibacterial Applications. ACS Omega, 8, 1534-1541. [Google Scholar] [CrossRef] [PubMed]
[23] Seifikar, F., Azizian, S., Eslamipanah, M. and Jaleh, B. (2022) Efficient Photo-Thermal Conversion Using Pt Nanofluid Prepared by Laser Ablation in Liquid. Solar Energy Materials and Solar Cells, 238, Article ID: 111581. [Google Scholar] [CrossRef
[24] Sun, M., Yang, D., Fanqi, W., Wang, Z., Ji, H., Liu, Z., et al. (2020) SiO2@Cu7S4 Nanotubes for Photo/Chemodynamic and Photo-Thermal Dual-Mode Synergistic Therapy under 808 nm Laser Irradiation. Journal of Materials Chemistry B, 8, 5707-5721. [Google Scholar] [CrossRef] [PubMed]
[25] Qi, K., Sun, B., Liu, S. and Zhang, M. (2023) Research Progress on Carbon Materials in Tumor Photothermal Therapy. Biomedicine & Pharmacotherapy, 165, Article ID: 115070. [Google Scholar] [CrossRef] [PubMed]
[26] Zhu, J., Huang, L., Bao, F., Chen, G., Song, K., Wang, Z., et al. (2024) Carbon Materials for Enhanced Photothermal Conversion: Preparation and Applications on Steam Generation. Materials Reports: Energy, 4, Article ID: 100245. [Google Scholar] [CrossRef
[27] Fillet, R., Nicolas, V., Celzard, A. and Fierro, V. (2023) Solar Evaporation Performance of 3D-Printed Concave Structures Filled with Activated Carbon under Low Convective Flow. Chemical Engineering Journal, 457, Article ID: 141168. [Google Scholar] [CrossRef
[28] Zheng, D., Shi, L., Zhang, M., Jiang, W., An, C., Huang, W., et al. (2024) Easily Constructed HNs/CNTs Photothermal Membrane with High-Temperature Resistance for Efficient Solar Desalination and Dye-Polluted Water Purification. Journal of Environmental Chemical Engineering, 12, Article ID: 112004. [Google Scholar] [CrossRef
[29] Pham, T.D., Phan, L.M.T., Nam, S., Hoang, T.X., Nam, J., Cho, S., et al. (2024) Selective Photothermal and Photodynamic Capabilities of Conjugated Polymer Nanoparticles. Polymer, 294, Article ID: 126689. [Google Scholar] [CrossRef
[30] Maity, S., Yadav, M. and Patra, A.K. (2023) Polypyrrole Coated Textiles as Photothermal Material for Interfacial Solar Evaporation. Fibers and Polymers, 24, 3591-3600. [Google Scholar] [CrossRef
[31] Sang, H., Tang, C., Ma, K. and Li, X. (2023) Sustainable Production of Clean Water: 1 T-MoS2/PDA Composite Enhanced the Photothermal Conversion. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 674, Article ID: 131838. [Google Scholar] [CrossRef
[32] Warrier, A.R. and Vijayakumar, K.P. (2023) Chapter 11-Photothermal Studies in Semiconductor Materials. In: Thakur, S.N., Rai, V.N. and Singh, J.P., Eds., Photoacoustic and Photothermal Spectroscopy, Elsevier, 245-262. [Google Scholar] [CrossRef
[33] Zhao, X., Jiang, Y., Wang, T., Lu, Q., Zhao, K. and Pan, J. (2023) Photothermal-Photocatalytic Route of MOF-Based Membrane with Nanosheet Array Structures for Solar-Driven Water Purification. Chemical Engineering Journal, 475, Article ID: 146268. [Google Scholar] [CrossRef
[34] Tryba, B., Miądlicki, P., Rychtowski, P., Trzeciak, M. and Wróbel, R.J. (2023) The Superiority of TiO2 Supported on Nickel Foam over Ni-Doped TiO2 in the Photothermal Decomposition of Acetaldehyde. Materials, 16, Article 5241. [Google Scholar] [CrossRef] [PubMed]
[35] Colak, B., Cihan, M.C. and Ertas, Y.N. (2023) 3D-Printed, Implantable Alginate/CUS Nanoparticle Scaffolds for Local Tumor Treatment via Synergistic Photothermal, Photodynamic, and Chemodynamic Therapy. ACS Applied Nano Materials, 6, 16076-16085. [Google Scholar] [CrossRef
[36] Fan, T., Su, Y., Fan, Q., Li, Z., Cui, W., Yu, M., et al. (2021) Robust Graphene@PPS Fibrous Membrane for Harsh Environmental Oil/water Separation and All-Weather Cleanup of Crude Oil Spill by Joule Heat and Photothermal Effect. ACS Applied Materials & Interfaces, 13, 19377-19386. [Google Scholar] [CrossRef] [PubMed]
[37] He, X., Lu, J., Liu, J., Wu, Z., Li, B., Chen, Z., et al. (2024) Superhydrophobic CO-MOF-Based Sponge for Efficient Oil-Water Separation Utilizing Photothermal Effect. Journal of Hazardous Materials, 469, Article ID: 134090. [Google Scholar] [CrossRef] [PubMed]
[38] 张静静, 李艳香, 李望良, 等. 三聚氰胺基疏水海绵的制备及其吸油性能[J]. 石油学报(石油加工), 2024, 40(2): 534-545.
[39] Ma, J., Ma, S., Xue, J., Xu, M., Zhang, J., Li, J., et al. (2023) Synthesis of Elastic Hydrophobic Biomass Sponge for Rapid Solar-Driven Viscous Crude-Oil Cleanup Absorption, Oil-Water Separation and Organic Pollutants Treating. Separation and Purification Technology, 305, Article ID: 122512. [Google Scholar] [CrossRef
[40] Chen, J., Sun, M., Ni, Y., Zhu, T., Huang, J., Li, X., et al. (2023) Superhydrophobic Polyurethane Sponge for Efficient Water-Oil Emulsion Separation and Rapid Solar-Assisted Highly Viscous Crude Oil Adsorption and Recovery. Journal of Hazardous Materials, 445, Article ID: 130541. [Google Scholar] [CrossRef] [PubMed]
[41] Yang, Y., Guo, Z. and Liu, W. (2024) Robust Mussel-Inspired Superhydrophobic Sponge with Eco-Friendly Photothermal Effect for Crude Oil/Seawater Separation. Journal of Hazardous Materials, 461, Article ID: 132592. [Google Scholar] [CrossRef] [PubMed]
[42] Cai, C., Wei, Z., Huang, Y. and Fu, Y. (2021) Wood-Inspired Superelastic Mxene Aerogels with Superior Photothermal Conversion and Durable Superhydrophobicity for Clean-Up of Super-Viscous Crude Oil. Chemical Engineering Journal, 421, Article ID: 127772. [Google Scholar] [CrossRef
[43] 户晶荣, 李欣聪. 改性碳气凝胶/石蜡复合相变储热材料的研究[J]. 无机盐工业, 2024, 56(5): 58-63.
[44] 林铭增, 许银超, 张学金, 等. 阻燃纤维素气凝胶研究进展[J]. 中国造纸, 2024, 43(4): 25-36.
[45] Zheng, D., Yao, W., Sun, C., Chen, X., Wang, Z., Wang, B., et al. (2022) Solar-Assisted Self-Heating Ti3C2Tx-Decorated Wood Aerogel for Adsorption and Recovery of Highly Viscous Crude Oil. Journal of Hazardous Materials, 435, Article ID: 129068. [Google Scholar] [CrossRef] [PubMed]
[46] Song, C., Chen, X., Xu, G., Jiang, Z., Xu, W., Liu, X., et al. (2023) Bifunctional Cellulose-Based Aerogel for In-Situ Solar-Driven Crude Oil Recovery and Desalination: An Effective Approach towards Marine Life Protection. Cellulose, 30, 7265-7276. [Google Scholar] [CrossRef
[47] Hu, Y., Jiang, Y., Ni, L., Huang, Z., Liu, L., Ke, Q., et al. (2023) An Elastic MOF/Graphene Aerogel with High Photothermal Efficiency for Rapid Removal of Crude Oil. Journal of Hazardous Materials, 443, Article ID: 130339. [Google Scholar] [CrossRef] [PubMed]
[48] 陈春晖, 许多, 李治江, 等. 疏水亲油复合棉织物的制备及其性能[J]. 现代纺织技术, 2022, 30(4): 115-123.
[49] Sun, S., Xu, P., Chen, Z., Xiao, Q., Qiang, X. and Shi, X. (2023) “One Stone Three Birds”: A Multifunctional Cotton Fabric with Favorable Self-Cleaning, Photothermal Effect and Joule Heating Properties. Applied Surface Science, 623, Article ID: 156961. [Google Scholar] [CrossRef
[50] Zeng, H., Wang, P., Liang, L., Hu, H., Peng, Y., Li, X., et al. (2022) Facile Preparation of Superhydrophobic Cotton Fabric with a Photothermal Conversion Effect via Polypyrrole Deposition for Oil/water Separation. Journal of Environmental Chemical Engineering, 10, Article ID: 106915. [Google Scholar] [CrossRef
[51] Chen, X., Wang, J., Xie, A., Wang, B., Wu, J., Chen, G., et al. (2023) Fabrication of Robust Superhydrophobic Polyester Fabrics with Photothermal Conversion and Oil-Water Separation Performance through Deposition of Natural Polyphenols. Langmuir, 39, 15817-15827. [Google Scholar] [CrossRef] [PubMed]