碳基纳米复合材料,表面功能化是一种很有前景的 VOC(挥发性有机化合物)处理材料。

IF 8.1 2区 环境科学与生态学 Q1 ENVIRONMENTAL SCIENCES
Farooq Nawaz , Muhammad Ali , Shakeel Ahmad , Yang Yong , Suhaib Rahman , Muhammad Naseem , Sadam Hussain , Abdul Razzaq , Adnan Khan , Farman Ali , Rayya Ahmed Al Balushi , Mohammad M. Al-Hinaai , Nisar Ali
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引用次数: 0

摘要

城市住宅和工业的发展影响着可持续和健康的室内环境。环境问题是一个全球性问题。室内空气质量的恶化促使人们创造了多种空气净化技术。本综述介绍了碳基材料如何影响利用光催化技术开发空气净化系统。这些碳基材料在去除挥发性有机化合物的过程中具有独特的性能和优势。由生物质热解产生的生物炭以其多孔结构和富碳成分提供了一种环境可持续解决方案。碳量子点具有量子约束效应和可调的表面特性,在挥发性有机化合物的传感和去除应用中大有可为。由于石墨烯和聚合物基质的协同作用,含有还原氧化石墨烯的聚合物显示出更强的吸附能力。活性碳纤维具有高纵横比和相互连接的孔隙率,能以快速的动力学效应高效去除挥发性有机化合物。石墨碳氮化物具有独特的电子和结构特性,为在可见光下光催化降解挥发性有机化合物提供了机会。与二维纳米材料 MXene 集成的催化剂在 VOC 氧化反应中表现出更强的催化活性。利用各种碳基材料去除挥发性有机化合物,展示了碳基方法在应对与室内空气污染有关的环境挑战方面的多功能性和有效性。金属有机框架材料是碳基化合物。它研究了挥发性有机化合物矿化与碳材料特定特性之间的相关性,包括表面积、吸附能力、表面官能团和光电特性。讨论内容包括 PCO 的基本原理、影响催化剂降解程度的变量以及降解机制。该书探讨了未来如何改进技术,以推动健康和可持续的室内空气质量研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Carbon based nanocomposites, surface functionalization as a promising material for VOCs (volatile organic compounds) treatment

Carbon based nanocomposites, surface functionalization as a promising material for VOCs (volatile organic compounds) treatment

Urban residential and industrial growth development affects sustainable and healthful indoor environments. Environmental issues are a global problem. The deterioration of indoor air quality has prompted the creation of several air cleansing techniques. This review explains how carbon-based materials have influenced the development of air purification systems using photocatalysis. These carbon-based materials offer unique properties and advantages in VOC removal processes. Biochar, produced from biomass pyrolysis, provides an environmentally sustainable solution with its porous structure and carbon-rich composition. Carbon quantum dots, with their quantum confinement effects and tunable surface properties, show promise in VOC sensing and removal applications. Polymers incorporating reduced graphene oxide demonstrate enhanced adsorption capabilities owing to the synergistic effects of graphene and polymer matrices. Activated carbon fibers, characterized by their high aspect ratio and interconnected porosity, provide efficient VOC removal with rapid kinetics. With their unique electronic and structural properties, graphitic carbon nitrides offer opportunities for photocatalytic degradation of VOCs under visible light. Catalysts integrated with MXene, a two-dimensional nanomaterial, exhibit enhanced catalytic activity for VOC oxidation reactions. Using various carbon-based materials in VOC removal showcases the versatility and effectiveness of carbon-based approaches in addressing environmental challenges associated with indoor air pollution. Metal-organic-framework materials are carbon-based compounds. It examines the correlation between VOC mineralization and specific characteristics of carbon materials, including surface area, adsorption capability, surface functional groups, and optoelectronic properties. Discussions include the basics of PCO, variables influencing how well catalysts degrade, and degradation mechanisms. It explores how technology will improve in the future to advance studies on healthy and sustainable indoor air quality.

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来源期刊
Chemosphere
Chemosphere 环境科学-环境科学
CiteScore
15.80
自引率
8.00%
发文量
4975
审稿时长
3.4 months
期刊介绍: Chemosphere, being an international multidisciplinary journal, is dedicated to publishing original communications and review articles on chemicals in the environment. The scope covers a wide range of topics, including the identification, quantification, behavior, fate, toxicology, treatment, and remediation of chemicals in the bio-, hydro-, litho-, and atmosphere, ensuring the broad dissemination of research in this field.
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