The immobilization and adsorption mechanisms of agro-waste based biochar: A review on the effectiveness of pyrolytic temperatures on heavy metal removal

IF 9 Q1 ENVIRONMENTAL SCIENCES
Obey Gotore , Tirivashe Philip Masere , Macdonald Tatenda Muronda
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引用次数: 0

Abstract

The multifunctional properties of biochar make it a promising adsorbent of heavy metals for environmental bioremediation. Pyrolytic temperature is a key factor that impacts the properties, performance, and mechanisms of agro-wastes-derived biochar because of the physiochemical transformation of its structural composition. It has been deliberated that increased pyrolysis temperatures strongly enhance specific surface area, pH, and high microporosity as well as carbon and ash content with low cation exchange capacity and volatiles content. The reason for different properties from different pyrolysis is related to the variations in the lignin-cellulose structures as well as moistures in different agro-waste biomasses. Biochar has been considered a low-cost material that has shown its convenient applicability in rural areas of developing countries where environmental contamination of heavy metals is emerging. A wide range of pyrolytic temperatures has shown distinctive properties and characteristics of biochar from different biomass and their capacities to remove heavy metals. Higher pyrolysis temperatures can exhibit higher specific surface areas, enhanced functional groups, and stability than modified biochar. Different pyrolysis temperatures exhibited diverse adsorption capacities on biomass such as rice husk and corncob, as efficiency increases with temperatures on selective heavy metals such as hexavalent chromium [Cr(VI)], cadmium [Cd(II)] and zinc [Zn(II)]. This review aimed to understand the physiochemical and structural properties, and the transformation of pristine biochar that can enhance the environmental bioremediation of heavy metals. The deliberations on the mechanisms of diverse biomasses obtained from different pyrolysis for decision-making processes as well as production costs were reviewed. The authors propose future investigations on heavy metal immobilization to unlock the full potential of biochar in environmental bioremediation.

基于农业废弃物的生物炭的固定化和吸附机制:热解温度对重金属去除效果的综述
生物炭的多功能特性使其很有希望成为一种用于环境生物修复的重金属吸附剂。热解温度是影响农业废弃物衍生生物炭特性、性能和机制的关键因素,因为生物炭的结构组成会发生物理化学变化。有研究认为,热解温度升高会大大提高比表面积、pH 值、高微孔率以及碳和灰分含量,而阳离子交换能力和挥发物含量则较低。不同热解产生不同特性的原因与不同农业废弃物生物质中木质素-纤维素结构和湿度的变化有关。生物炭一直被认为是一种低成本材料,在重金属环境污染日益严重的发展中国家农村地区,生物炭显示出其便利的适用性。各种热解温度显示了不同生物质的生物炭的独特性质和特点,以及它们去除重金属的能力。与改性生物炭相比,较高的热解温度能表现出更高的比表面积、更强的功能基团和稳定性。不同的热解温度对稻壳和玉米芯等生物质的吸附能力不同,对六价铬(Cr(VI))、镉(Cd(II))和锌(Zn(II))等选择性重金属的吸附效率随温度升高而提高。本综述旨在了解原始生物炭的理化和结构特性及其转化过程,从而提高重金属的环境生物修复能力。综述了从不同热解过程中获得的各种生物质的决策机制以及生产成本。作者建议今后开展重金属固定化研究,以充分释放生物炭在环境生物修复方面的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
15.40
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