化工进展 ›› 2022, Vol. 41 ›› Issue (3): 1136-1151.doi: 10.16085/j.issn.1000-6613.2021-1909
邵斌(), 孙哲毅(
), 章云, 潘冯弘康, 赵开庆, 胡军(
), 刘洪来
收稿日期:
2021-09-07
修回日期:
2021-10-19
出版日期:
2022-03-23
发布日期:
2022-03-28
通讯作者:
胡军
E-mail:shaobin_88@163.com;zheyisun@163.com;junhu@ecust.edu.cn
作者简介:
邵斌(1996—),男,博士研究生,研究方向为二氧化碳捕集与转化。E-mail:基金资助:
SHAO Bin(), SUN Zheyi(
), ZHANG Yun, PAN Fenghongkang, ZHAO Kaiqing, HU Jun(
), LIU Honglai
Received:
2021-09-07
Revised:
2021-10-19
Online:
2022-03-23
Published:
2022-03-28
Contact:
HU Jun
E-mail:shaobin_88@163.com;zheyisun@163.com;junhu@ecust.edu.cn
摘要:
由于二氧化碳(CO2)过度排放导致全球变暖日益严峻,发展零碳技术已成为人类社会面向可持续发展的战略选择。将CO2捕集并转化为高附加值化学和能源产品,可以优化化石能源为主体的能源结构、有效缓解环境问题,并实现碳资源的充分利用,是一项可以大规模实现低碳减排的技术。本文重点介绍了CO2高效利用新途径,通过二氧化碳-合成气-高附加值化学品的产品工艺路线,实现CO2的资源化利用。对比综述了热催化法、电催化法和光催化法高效转化合成气的最新进展,总结了热、电、光催化制备合成气过程中催化剂的设计原理和方法以及目前工业化应用前景;简单概述了合成气作为重要平台分子,进一步通过费托合成路线或接力催化路线转化为低碳烯烃和液态燃料或芳烃等化学品过程中催化剂设计研究进展。最后,总结了大规模工业化CO2转化为合成气及高附加值产品过程催化剂设计和反应器优化的技术难题,并对未来CO2高效转化利用方向进行了展望。同时指出目前各技术还普遍存在反应机理不清晰、催化剂成本高以及缺乏大规模合成等问题,未来开发出高效、高活性、低成本且稳定的催化剂是各技术推广应用的关键。
中图分类号:
邵斌, 孙哲毅, 章云, 潘冯弘康, 赵开庆, 胡军, 刘洪来. 二氧化碳转化为合成气及高附加值产品的研究进展[J]. 化工进展, 2022, 41(3): 1136-1151.
SHAO Bin, SUN Zheyi, ZHANG Yun, PAN Fenghongkang, ZHAO Kaiqing, HU Jun, LIU Honglai. Recent progresses in CO2 to syngas and high value-added products[J]. Chemical Industry and Engineering Progress, 2022, 41(3): 1136-1151.
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