消息
×
loading..
Overturning CO2 Hydrogenation Selectivity from CH4 to CO by Strong Ru-FeOx Interaction Arising from a Multilayer Epitaxial Structure
2024
发表期刊ACS APPLIED MATERIALS AND INTERFACES (IF:8.3[JCR-2023],8.7[5-Year])
ISSN1944-8244
EISSN1944-8252
卷号16期号:49页码:67876-67888
发表状态已发表
DOI10.1021/acsami.4c19597
摘要

The catalytic conversion of CO2 to CO through hydrogenation has emerged as a promising strategy for CO2 utilization, given that CO serves as a valuable C1 platform compound for synthesizing liquid fuels and chemicals. However, the predominant formation of CH4 via deep hydrogenation over Ru-based catalysts poses challenges in achieving selective CO production. High reaction temperatures often lead to catalyst deactivation and changes in selectivity due to dynamic metal evolution or agglomeration, even with a classic strong metal-support interaction. Herein, we have developed a FeOx/Ru/Rutile multilayer epitaxial structure by depositing a FeOx layer onto the epitaxially grown RuO2 nanolayers on the surface of rutile nanoparticles. This multilayer epitaxial structure transformed into a structure in which Ru nanoparticles were decorated with FeOx layers with ultrastable strong metal-support interaction (SMSI). Subsequently, the FeOx decoration on Ru nanoparticles effectively shifted the dominant product from CH4 to 95% CO during CO2 hydrogenation. Remarkably, this catalyst exhibits exceptional stability and can be operated stably at 550 °C for a long time without apparent deactivation. Compared with the dynamic changes observed in supported Ru nanoparticles, the interaction between Ru and FeOx maintains their electronic states at different reaction temperatures. Furthermore, this Ru-FeOx interaction inhibits H2 activation capability, CO adsorption, and subsequent hydrogenation of CO. The transformation strategy employed here, which utilizes initial multilayer epitaxial structures, can be applied to construct SMSI to enhance metal catalysts’ catalytic performance. © 2024 American Chemical Society.

关键词Atomic layer epitaxy Bioremediation Cobalt Doping (additives) Hydrogenation Metal nanoparticles Nanocatalysts Photodissociation Photoionization Rate constants Ruthenium Ruthenium alloys Ruthenium compounds Syngas production Atomic-layer deposition Catalytic conversion CH 4 CO2 hydrogenation Epitaxial structure Hydrogenation selectivity Multilayer epitaxial structure Ru nanoparticles Ru-FeOx interaction Strong metal-support interaction
URL查看原文
收录类别EI ; SCI
语种英语
资助项目National Natural Science Foundation of China["22072172","22302222","22202227"] ; National Science Fund for Distinguished Young Scholars[21825204] ; Youth Innovation Promotion Association CAS[Y2021056] ; Joint Fund of the Yulin University and the Dalian National Laboratory for Clean Energy[2022007] ; Science and Technology Innovation Teams of Shanxi Province[202304051001007] ; Science and Technology Department of Shanxi Province[202303021222409]
WOS研究方向Science & Technology - Other Topics ; Materials Science
WOS类目Nanoscience & Nanotechnology ; Materials Science, Multidisciplinary
WOS记录号WOS:001363912100001
出版者American Chemical Society
EI入藏号20244817451033
EI主题词Catalyst selectivity
EI分类号1301.4.1.2 ; 1502.1 ; 1502.4 ; 202.7.1.5 ; 202.9.3 ; 208.1 ; 712.1 Semiconducting Materials ; 761 Nanotechnology ; 801.3 Colloid Chemistry ; 802.2 Chemical Reactions ; 803 Chemical Agents and Basic Industrial Chemicals
原始文献类型Article in Press
文献类型期刊论文
条目标识符https://kms.shanghaitech.edu.cn/handle/2MSLDSTB/455166
专题物质科学与技术学院
物质科学与技术学院_硕士生
物质科学与技术学院_博士生
通讯作者Zhang, Bin; Qin, Yong
作者单位
1.State Key Laboratory of Coal Conversion, Institute of Coal Chemistry, Chinese Academy of Sciences, Taiyuan; 030001, China;
2.Center of Materials Science and Optoelectronics Engineering, University of Chinese Academy of Sciences, Beijing; 100049, China;
3.Shanghai Synchrotron Radiation Facility, Shanghai Advanced Research Institute, Chinese Academy of Science, Shanghai; 201210, China;
4.School of Physical Science and Technology, ShanghaiTech University, Shanghai; 201210, China;
5.Center for Transformative Science, ShanghaiTech University, Shanghai; 201210, China
推荐引用方式
GB/T 7714
Qi, Yuntao,Zhang, Bin,Xue, Dengrong,et al. Overturning CO2 Hydrogenation Selectivity from CH4 to CO by Strong Ru-FeOx Interaction Arising from a Multilayer Epitaxial Structure[J]. ACS APPLIED MATERIALS AND INTERFACES,2024,16(49):67876-67888.
APA Qi, Yuntao.,Zhang, Bin.,Xue, Dengrong.,Zhang, Hui.,Liu, Xiaoning.,...&Qin, Yong.(2024).Overturning CO2 Hydrogenation Selectivity from CH4 to CO by Strong Ru-FeOx Interaction Arising from a Multilayer Epitaxial Structure.ACS APPLIED MATERIALS AND INTERFACES,16(49),67876-67888.
MLA Qi, Yuntao,et al."Overturning CO2 Hydrogenation Selectivity from CH4 to CO by Strong Ru-FeOx Interaction Arising from a Multilayer Epitaxial Structure".ACS APPLIED MATERIALS AND INTERFACES 16.49(2024):67876-67888.
条目包含的文件
文件名称/大小 文献类型 版本类型 开放类型 使用许可
个性服务
查看访问统计
谷歌学术
谷歌学术中相似的文章
[Qi, Yuntao]的文章
[Zhang, Bin]的文章
[Xue, Dengrong]的文章
百度学术
百度学术中相似的文章
[Qi, Yuntao]的文章
[Zhang, Bin]的文章
[Xue, Dengrong]的文章
必应学术
必应学术中相似的文章
[Qi, Yuntao]的文章
[Zhang, Bin]的文章
[Xue, Dengrong]的文章
相关权益政策
暂无数据
收藏/分享
所有评论 (0)
暂无评论
 

除非特别说明,本系统中所有内容都受版权保护,并保留所有权利。