New perspectives on the effects of texture and chemical properties on the hydrogen storage capacity of biochar at room temperature

IF 7.2 2区 工程技术 Q1 CHEMISTRY, APPLIED Fuel Processing Technology Pub Date : 2023-11-01 DOI:10.1016/j.fuproc.2023.107922
Lihua Deng, Yijun Zhao, Shaozeng Sun, Dongdong Feng, Wenda Zhang
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引用次数: 1

Abstract

Analyzing the effects of texture and chemical structure on hydrogen adsorption performance at room temperature can provide a theoretical basis for accurately constructing carbon-based hydrogen adsorbents. Based on thermal regulation technology, the biochar with different specific surface areas (803.85–2801.88 m2/g) and oxygen content (21.57–41.86%) was successfully prepared by the two-step “carbonization-activation” method. Various characterization methods were used to explore the relationship between the physicochemical structure and hydrogen adsorption characteristics at room temperature. The results show that the hydrogen storage characteristics of biochar at room temperature are controlled by specific surface area, oxygen content, and acidic surface groups. The boundary conditions for promoting/inhibiting hydrogen adsorption are related to oxygen content. In different pressure regions, specific surface area, oxygen content, and the acid surface group have different degrees of effect on hydrogen adsorption, and oxygen content has the most significant impact. The Freundlich model accurately fits the hydrogen adsorption process at room temperature. Among the carbon-based hydrogen storage materials, biochar has excellent hydrogen storage performance, with an adsorption capacity of 0.52 wt% at 50 bar.

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结构和化学性质对生物炭室温储氢能力影响的新视角
分析其织构和化学结构对室温下氢吸附性能的影响,为准确构建碳基氢吸附剂提供理论依据。基于热调节技术,采用两步“炭化-活化”法制备了不同比表面积(803.85 ~ 2801.88 m2/g)和氧含量(21.57 ~ 41.86%)的生物炭。采用多种表征方法探讨了其理化结构与室温下氢吸附特性之间的关系。结果表明,室温下生物炭的储氢特性受比表面积、氧含量和表面酸性基团的控制。促进/抑制氢吸附的边界条件与氧含量有关。在不同压力区,比表面积、氧含量、酸表面基团对氢吸附有不同程度的影响,其中氧含量的影响最为显著。Freundlich模型准确地拟合了室温下的氢吸附过程。在碳基储氢材料中,生物炭具有优异的储氢性能,在50 bar下的吸附量为0.52 wt%。
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来源期刊
Fuel Processing Technology
Fuel Processing Technology 工程技术-工程:化工
CiteScore
13.20
自引率
9.30%
发文量
398
审稿时长
26 days
期刊介绍: Fuel Processing Technology (FPT) deals with the scientific and technological aspects of converting fossil and renewable resources to clean fuels, value-added chemicals, fuel-related advanced carbon materials and by-products. In addition to the traditional non-nuclear fossil fuels, biomass and wastes, papers on the integration of renewables such as solar and wind energy and energy storage into the fuel processing processes, as well as papers on the production and conversion of non-carbon-containing fuels such as hydrogen and ammonia, are also welcome. While chemical conversion is emphasized, papers on advanced physical conversion processes are also considered for publication in FPT. Papers on the fundamental aspects of fuel structure and properties will also be considered.
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