无机盐工业 ›› 2022, Vol. 54 ›› Issue (3): 7-17.doi: 10.19964/j.issn.1006-4990.2021-0628
郝晓东1(),冯心怡1,2,徐阳1,2,张西数1,2,刘雯3,郝方原3,马淑芳1,许并社1
收稿日期:
2021-11-10
出版日期:
2022-03-10
发布日期:
2022-03-18
作者简介:
郝晓东(1987— ),男,工学博士,副教授,主要研究方向为低维纳米功能催化剂材料的可控合成及超微观构效关系研究;E-mail: 基金资助:
HAO Xiaodong1(),FENG Xinyi1,2,XU Yang1,2,ZHANG Xishu1,2,LIU Wen3,HAO Fangyuan3,MA Shufang1,XU Bingshe1
Received:
2021-11-10
Published:
2022-03-10
Online:
2022-03-18
摘要:
铈(Ce)离子的价态转变往往伴随着氧的储存与释放以及氧空位(Ov)的形成与迁移,因此二氧化铈(CeO2)材料被广泛地应用于汽车尾气处理、固态燃料电池、催化等领域。其中铈离子可逆的价态转变(Ce4+⇌Ce3+)是二氧化铈材料发挥其优异性能的关键。在当下中国社会加速实现“双碳”目标的国家战略之下,二氧化铈材料在能源和催化等领域将有着更广阔的应用前景。已有众多研究者借助表界面催化、纳米技术和先进的球差校正扫描透射电子显微学(AC-STEM)等技术,设计与合成结构合理且性能优良的二氧化铈纳米催化剂,并从超微观角度出发对其原子结构、离子价态、化学成分等物理化学性质进行了深入的分析与研究。基于此,综述了近些年来二氧化铈纳米催化剂的可控合成、晶面调控与生长、自组装、功能性掺杂等方面的最新研究进展,深入讨论了其原子结构、化学成分和物理化学性质之间的关系,建立了纳米催化剂的超微观构效关系,为设计合成多组分、多维度、高性能的二氧化铈纳米催化剂提供可靠的实验数据和有力的理论指导。
中图分类号:
郝晓东,冯心怡,徐阳,张西数,刘雯,郝方原,马淑芳,许并社. 二氧化铈纳米催化剂可控合成及超微观构效关系研究[J]. 无机盐工业, 2022, 54(3): 7-17.
HAO Xiaodong,FENG Xinyi,XU Yang,ZHANG Xishu,LIU Wen,HAO Fangyuan,MA Shufang,XU Bingshe. Study on controllable synthesis and ultramicroscopic structure-activity relationship of cerium oxides nanocatalysts[J]. Inorganic Chemicals Industry, 2022, 54(3): 7-17.
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