东北大学学报(自然科学版) ›› 2025, Vol. 46 ›› Issue (10): 66-73.DOI: 10.12068/j.issn.1005-3026.2025.20240053

• 材料与冶金 • 上一篇    下一篇

基于DFT的Mn掺杂CaO催化-吸附协同脱硝降碳机理

郭锐1, 谢华清1, 于震宇1, 邵正日2   

  1. 1.东北大学 低碳钢铁前沿技术教育部工程研究中心,辽宁 沈阳 110819
    2.营口理工学院,辽宁 营口 115014
  • 收稿日期:2024-03-07 出版日期:2025-10-15 发布日期:2026-01-13
  • 作者简介:郭 锐(1999—),男,江西赣州人,东北大学硕士研究生
    谢华清(1987—),男,山东菏泽人,东北大学副教授,博士生导师.
  • 基金资助:
    中央高校基本科研业务费专项资金资助项目(N2225043)

Mn-Doped CaO Catalytic-Adsorption Synergistic Mechanism for Denitration and Carbon Reduction Based on DFT

Rui GUO1, Hua-qing XIE1, Zhen-yu YU1, Zheng-ri SHAO2   

  1. 1.Engineering Research Center of Frontier Technologies for Low-Carbon Steelmaking (Ministry of Education),Northeastern University,Shenyang 110819,China
    2.Yingkou Institute of Technology,Yingkou 115014,China. Corresponding author: XIE Hua-qing,E-mail: xiehq@mail. neu. edu. cn
  • Received:2024-03-07 Online:2025-10-15 Published:2026-01-13

摘要:

基于密度泛函理论(DFT)构建了以CaO为催化基底、金属Mn为掺杂金属的催化-吸附双功能催化剂,探究了NO,CO与降碳反应物CO2在催化剂表面的吸附行为及其脱硝降碳反应机理.结果表明:CO和NO分别以弱化学吸附和化学吸附的形式吸附在CaO表面;Mn掺杂显著增强CaO催化剂对CO和NO的吸附性能;Mn掺杂前后的CaO催化剂均表现出较好的CO2吸附性能;在CaO和Mn-CaO表面,CO-SCR反应速率的决定步骤为NO的解离反应,Mn掺杂使该反应的能垒降低了约0.27 eV;随着温度升高,Mn-CaO催化剂的决速步反应自由能能垒逐渐升高,而CO2吸附反应的自由能变化(绝对值)则逐渐降低,表明其具有良好的低温脱硝降碳性能.本研究为协同脱硝降碳双功能催化剂的设计与研发提供了新思路.

关键词: 脱硝降碳, 催化-吸附, CO-SCR, Mn改性, 第一性原理

Abstract:

A dual-functional catalyst with CaO as the substrate and Mn as the dopant metal was constructed using density functional theory (DFT). The adsorption behaviors of NO, CO and carbon reduction reactant (CO2) were studied, alongside the reaction mechanisms for denitration and carbon reduction. Results show that CO and NO adsorb on the CaO surface through weak and strong chemical adsorption, respectively, with Mn doping enhancing adsorption for both. The Mn-doped CaO catalysts also exhibit excellent CO2 adsorption properties, making them effective decarbonization carriers. The rate-determining step for the CO-SCR reaction is the dissociation of NO, with Mn doping lowering its energy barrier by approximately 0.27 eV. As temperature increases, the free energy barrier of the rate-determining step reaction over the Mn-CaO catalyst gradually rises, while the absolute value of the free energy change for the CO2 adsorption reaction gradually decreases, demonstrating the catalyst's superior low temperature denitration and decarbonization performance. This study offers new insights for developing dual-functional catalysts for simultaneous denitration and carbon reduction.

Key words: denitration and decarbonization, catalytic-adsorption, CO-SCR, Mn-modified, first principle

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