Adsorption of volatile organic compounds on biochar: A review

IF 6.9 2区 环境科学与生态学 Q1 ENGINEERING, CHEMICAL Process Safety and Environmental Protection Pub Date : 2023-11-30 DOI:10.1016/j.psep.2023.11.071
Fatemeh Sadegh , Negar Sadegh , Worawit Wongniramaikul , Ronbanchob Apiratikul , Aree Choodum
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Abstract

Remarkable industrial advances and urbanization have resulted in rapid increase in aromatic volatile organic compound (VOC) generation, causing significant environmental contamination, human health hazards, and considerable resource waste. Hence, scientific VOC reduction methods are necessary. Adsorption is considered efficient and cost-effective in this regard because the adsorbent and adsorbate are retrievable and reusable. Owing to abundant feedstock, cost-effectiveness, and advantageous physical–chemical surface features, biochar demonstrates immense potential for effective VOC adsorption. Herein, typical methods for VOC adsorption, biochar production processes, key variables affecting VOC adsorption on biochar, VOC adsorption mechanisms on biochar, competitive adsorption of multicomponent VOCs on biochar, and comparison of activated carbon and biochar are discussed. The chemical, physical, and structural characteristics of biochar are affected by feedstock properties, production parameters (especially pyrolysis temperature), and modification methods. Surface structure and functional groups, specific surface area, pore volume, and pore size distribution of biochar affect VOC adsorption rate and capacity. Variable pore sizes within biochar enable selective physical adsorption of VOCs based on molecule size, while specific surface functional groups facilitate chemical adsorption. Biochar’s capacity for the adsorption of mixed VOCs depends on adsorption affinity, vapor pressure, and VOC characteristics. High surface area per pore volume of biochar enhances VOC sorption, but competitive inhibition reduces the total adsorbed VOC mass, particularly for light VOCs. The results contribute to our understanding of the potential of renewable sources for VOC adsorption and underscore the need for further research to completely realize biochar as a sustainable solution for air pollution.

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生物炭对挥发性有机物的吸附研究进展
工业的飞速发展和城市化进程导致芳香性挥发性有机化合物(VOC)的产生迅速增加,造成了严重的环境污染、人体健康危害和资源浪费。因此,科学的减少挥发性有机化合物的方法是必要的。在这方面,吸附被认为是高效和具有成本效益的,因为吸附剂和吸附物是可回收和可重复使用的。生物炭具有丰富的原料、成本效益和有利的物理化学表面特性,在有效吸附VOC方面具有巨大的潜力。本文讨论了VOC吸附的典型方法、生物炭的生产工艺、影响生物炭对VOC吸附的关键因素、生物炭对VOC的吸附机理、多组分VOCs在生物炭上的竞争吸附以及活性炭和生物炭的比较。生物炭的化学、物理和结构特性受原料性质、生产参数(尤其是热解温度)和改性方法的影响。生物炭的表面结构和官能团、比表面积、孔体积和孔径分布影响着VOC的吸附速率和容量。生物炭的不同孔径可以根据分子大小对VOCs进行选择性物理吸附,而特定的表面官能团则有利于化学吸附。生物炭对混合挥发性有机化合物的吸附能力取决于吸附亲和度、蒸汽压和挥发性有机化合物的特性。生物炭每孔体积的高表面积增强了挥发性有机化合物的吸附,但竞争性抑制降低了挥发性有机化合物的总吸附质量,特别是对轻挥发性有机化合物。这些结果有助于我们了解可再生能源吸附VOC的潜力,并强调需要进一步研究以完全实现生物炭作为空气污染的可持续解决方案。
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来源期刊
Process Safety and Environmental Protection
Process Safety and Environmental Protection 环境科学-工程:化工
CiteScore
11.40
自引率
15.40%
发文量
929
审稿时长
8.0 months
期刊介绍: The Process Safety and Environmental Protection (PSEP) journal is a leading international publication that focuses on the publication of high-quality, original research papers in the field of engineering, specifically those related to the safety of industrial processes and environmental protection. The journal encourages submissions that present new developments in safety and environmental aspects, particularly those that show how research findings can be applied in process engineering design and practice. PSEP is particularly interested in research that brings fresh perspectives to established engineering principles, identifies unsolved problems, or suggests directions for future research. The journal also values contributions that push the boundaries of traditional engineering and welcomes multidisciplinary papers. PSEP's articles are abstracted and indexed by a range of databases and services, which helps to ensure that the journal's research is accessible and recognized in the academic and professional communities. These databases include ANTE, Chemical Abstracts, Chemical Hazards in Industry, Current Contents, Elsevier Engineering Information database, Pascal Francis, Web of Science, Scopus, Engineering Information Database EnCompass LIT (Elsevier), and INSPEC. This wide coverage facilitates the dissemination of the journal's content to a global audience interested in process safety and environmental engineering.
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