DBD 等离子体诱导 SMOSI 和封装用于调节 Cr-MOFs@ZrO2 的布伦斯特-刘易斯酸位点

IF 5.8 2区 生物学 Q1 AGRICULTURAL ENGINEERING Biomass & Bioenergy Pub Date : 2024-11-07 DOI:10.1016/j.biombioe.2024.107475
Xumei Tao , Mingxiao Cheng , Honglin Li , Liang Huang
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引用次数: 0

摘要

研究人员利用介质阻挡放电(DBD)等离子体合成 Zr-MOFs,然后煅烧并与 Cr-MOFs 结合,制备了一种用于将葡萄糖转化为 5-hydroxymethylfurfural (HMF) 的 Brønsted-Lewis 双功能催化剂。DBD 等离子体在催化剂表面形成的强电场诱导了强金属氧化物支撑相互作用(SMOSI)的增强,XPS 可以证明这一点。SMOSI 可以改变金属微粒的嵌入程度。SMOSI 与 Zr 金属纳米颗粒的包覆作用可调节催化剂的酸性位点。路易斯酸在葡萄糖向果糖的异构化过程中发挥了重要作用,而布氏酸则在葡萄糖的进一步转化过程中发挥了关键作用。强勃氏酸位点决定了葡萄糖向 HMF 的转化。与采用水热法的 Cr-MOFs@ZrO2-S 相比,采用 DBD 等离子法的 Cr-MOFs@ZrO2-D 的布氏酸与路易斯酸比率更高。使用 DMF 溶剂系统和 Cr-MOFs@ZrO2-D,在 150 °C 下反应 2 小时,葡萄糖转化率为 97.9%,HMF 产率为 38%。该研究为利用 DBD 等离子体制备 Zr-MOFs 提供了一种新方法,也为全面了解布氏和路易斯酸位点在葡萄糖转化中的作用提供了一种新思路。
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DBD plasma induced SMOSI and encapsulation for regulation of Brønsted-Lewis acid sites of Cr-MOFs@ZrO2
Dielectric barrier discharge (DBD) plasma for the synthesis of Zr-MOFs followed by the calcination and combination with Cr-MOFs was presented to prepare a Brønsted-Lewis bifunctional catalyst for the conversion of glucose to 5-hydroxymethylfurfural (HMF). The strong electric field on the catalyst surface formed by DBD plasma induced the enhancement of strong metal oxide support interaction (SMOSI), which could be indicated by XPS. SMOSI could change the embedding degree of metal micro-particles. SMOSI accompanied with the encapsulation of Zr metal nanoparticles could regulate the acid sites of the catalysts. Lewis acid played an important role in the isomerization of glucose to fructose, while Brønsted acid played a key role in the further conversion of glucose. The strong Brønsted acid sites determined the conversion of glucose to HMF. Cr-MOFs@ZrO2-D with the DBD plasma method afforded a higher Brønsted to Lewis acid ratio, compared with Cr-MOFs@ZrO2-S with the hydrothermal method. Glucose conversion of 97.9 % and HMF yield of 38 % were obtained with DMF solvent system and Cr-MOFs@ZrO2-D at 150 °C for 2h. This research provided a new method for preparing Zr-MOFs by DBD plasma and a new idea to comprehensively understand the role of Brønsted and Lewis acid sites in glucose conversion.
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来源期刊
Biomass & Bioenergy
Biomass & Bioenergy 工程技术-能源与燃料
CiteScore
11.50
自引率
3.30%
发文量
258
审稿时长
60 days
期刊介绍: Biomass & Bioenergy is an international journal publishing original research papers and short communications, review articles and case studies on biological resources, chemical and biological processes, and biomass products for new renewable sources of energy and materials. The scope of the journal extends to the environmental, management and economic aspects of biomass and bioenergy. Key areas covered by the journal: • Biomass: sources, energy crop production processes, genetic improvements, composition. Please note that research on these biomass subjects must be linked directly to bioenergy generation. • Biological Residues: residues/rests from agricultural production, forestry and plantations (palm, sugar etc), processing industries, and municipal sources (MSW). Papers on the use of biomass residues through innovative processes/technological novelty and/or consideration of feedstock/system sustainability (or unsustainability) are welcomed. However waste treatment processes and pollution control or mitigation which are only tangentially related to bioenergy are not in the scope of the journal, as they are more suited to publications in the environmental arena. Papers that describe conventional waste streams (ie well described in existing literature) that do not empirically address ''new'' added value from the process are not suitable for submission to the journal. • Bioenergy Processes: fermentations, thermochemical conversions, liquid and gaseous fuels, and petrochemical substitutes • Bioenergy Utilization: direct combustion, gasification, electricity production, chemical processes, and by-product remediation • Biomass and the Environment: carbon cycle, the net energy efficiency of bioenergy systems, assessment of sustainability, and biodiversity issues.
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