Chemical looping-based energy transformation via lattice oxygen modulated selective oxidation

IF 32 1区 工程技术 Q1 ENERGY & FUELS Progress in Energy and Combustion Science Pub Date : 2023-05-01 DOI:10.1016/j.pecs.2022.101045
Zhao Sun , Christopher K. Russell , Kevin J. Whitty , Eric G. Eddings , Jinze Dai , Yulong Zhang , Maohong Fan , Zhiqiang Sun
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引用次数: 25

Abstract

Modulating anionic oxygen in metal oxides offers exceptional opportunities for energy material synthesis via redox looping; however, several challenges such as overoxidation and catalyst deactivation need to be solved. This paper provides an overview of the state-of-the-art schemes for the selective synthesis of valuable chemicals via lattice oxygen-induced redox looping. Compared with previously published works, this review focuses on lattice oxygen modulated energy transformation technologies via chemical looping. This review discusses the chemical looping-based selective oxidation of methane to syngas/methanol, the oxidative coupling of methane, oxidative steam reforming of alcohols, and the oxidative dehydrogenation of hydrocarbons in the lattice oxygen-induced selective oxidation section. Additionally, moderate- and low-temperature Ellingham diagrams are extended to deduce the reactivity of the lattice oxygen based on thermodynamic calculation, which helps for oxygen carrier selection and product modulation. Moreover, less-researched but potential approaches to produce value-added energy materials by lattice oxygen are proposed in the perspective section, including selective oxidation of glycerol to glyceric acid, selective oxidation of methanol to acetic acid, and oxidative methane aromatization. Finally, implications for advanced oxygen carrier material design, preparation, and characterization are also overviewed. This study expands the scope of the lattice oxygen regulated energy conversion, which seeks to benefit both fundamental research and industrial applications of value-added energy material generation via lattice oxygen modulated energy transformation.

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基于化学环的晶格氧调制选择性氧化的能量转换
调节金属氧化物中的阴离子氧为通过氧化还原环合成能源材料提供了特殊的机会;然而,一些挑战,如过氧化和催化剂失活需要解决。本文概述了通过晶格氧诱导氧化还原环选择性合成有价化学品的最新方案。与以往发表的研究成果相比,本文重点介绍了基于化学环的晶格氧调制能量转换技术。本文综述了基于化学环的甲烷选择性氧化制合成气/甲醇、甲烷氧化偶联、醇类氧化蒸汽重整以及点阵氧诱导的烃类氧化脱氢反应。此外,在热力学计算的基础上,对中低温Ellingham图进行了扩展,推导出晶格氧的反应性,有助于氧载流子的选择和产物调制。此外,展望部分还提出了研究较少但有潜力的利用晶格氧生产增值能源材料的方法,包括甘油选择性氧化制甘油三酸、甲醇选择性氧化制乙酸和甲烷氧化芳构化。最后,对先进氧载体材料的设计、制备和表征也进行了概述。本研究扩大了晶格氧调节能量转换的范围,旨在通过晶格氧调制能量转换产生增值能源材料的基础研究和工业应用。
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来源期刊
Progress in Energy and Combustion Science
Progress in Energy and Combustion Science 工程技术-工程:化工
CiteScore
59.30
自引率
0.70%
发文量
44
审稿时长
3 months
期刊介绍: Progress in Energy and Combustion Science (PECS) publishes review articles covering all aspects of energy and combustion science. These articles offer a comprehensive, in-depth overview, evaluation, and discussion of specific topics. Given the importance of climate change and energy conservation, efficient combustion of fossil fuels and the development of sustainable energy systems are emphasized. Environmental protection requires limiting pollutants, including greenhouse gases, emitted from combustion and other energy-intensive systems. Additionally, combustion plays a vital role in process technology and materials science. PECS features articles authored by internationally recognized experts in combustion, flames, fuel science and technology, and sustainable energy solutions. Each volume includes specially commissioned review articles providing orderly and concise surveys and scientific discussions on various aspects of combustion and energy. While not overly lengthy, these articles allow authors to thoroughly and comprehensively explore their subjects. They serve as valuable resources for researchers seeking knowledge beyond their own fields and for students and engineers in government and industrial research seeking comprehensive reviews and practical solutions.
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