Chemical looping CO2 capture and in-situ conversion: Fundamentals, process configurations, bifunctional materials, and reaction mechanisms

IF 5 Q2 ENERGY & FUELS
Bo Jin , Kerun Wei , Tong Ouyang , Yihan Fan , Haibo Zhao , Haiyan Zhang , Zhiwu Liang
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引用次数: 0

Abstract

As an emerging and promising technology to debate the energy and environment issues raised by anthropogenic CO2 emissions, chemical looping CO2 capture and in-situ conversion (CL-ICCC) exhibits the merit of high efficiency, low cost, and high safety to achieve integrated CO2 capture and conversion (ICCC) by eliminating the purification, compression, transportation, and storage procedures. However, the interpretation and state-of-the-art of CL-ICCC are still unclear, which contribute to a harmful effect on promoting this technology for industrial applications. Herein, this work presents a timely review on CL-ICCC by giving fundamental discussions on definition, process configuration, bifunctional material, reaction mechanism and thermo-economic behavior. Based on the product distributions (syngas, CO, CH4, C2H4/C3H6), CL-ICCC systems using abundant bifunctional materials with flexible combinations of sorbents and catalysts are classified to satisfy the demand of customers. Lots of moderating strategies are proposed to enhance the activity and stability of bifunctional material, meanwhile, reaction mechanism is revealed to explain the underlying reason for superior performance. The challenges and future prospectives from the aspects of microscopic reaction mechanism, bifunctional material rational design, reaction equipment development and system integration and optimization are discussed to provide possible suggestions. This review aims to illustrate CL-ICCC more clearly and accelerate its commercial demonstration.

化学环CO2捕获和原位转化:基础,工艺配置,双功能材料和反应机制
化学环捕集与原位转换技术(CL-ICCC)作为一种新兴的、有前途的技术,通过消除净化、压缩、运输和储存过程,实现了高效、低成本和高安全性的综合捕集与转换(ICCC),以解决人为二氧化碳排放引起的能源和环境问题。然而,CL-ICCC的解释和最新技术仍然不清楚,这对促进该技术的工业应用产生了有害影响。本文对CL-ICCC的定义、工艺结构、双功能材料、反应机理和热经济行为等方面进行了综述。根据产品分布(合成气、CO、CH4、C2H4/C3H6),采用丰富的双功能材料,灵活组合吸附剂和催化剂,对CL-ICCC系统进行分类,以满足客户的需求。提出了多种调节策略来提高双功能材料的活性和稳定性,同时揭示了反应机理,解释了双功能材料性能优越的根本原因。从微观反应机理、双功能材料合理设计、反应设备开发和系统集成优化等方面探讨了当前面临的挑战和未来展望,并提出了可能的建议。本文旨在进一步阐明CL-ICCC,加快其商业化示范。
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
4.20
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