Acceleration mechanisms of Fe and Mn doping on CO2 separation of CaCO3 in calcium looping thermochemical heat storage

被引:2
|
作者
Bian, Zhiguo [1 ]
Ma, Xiaotong [1 ]
Lu, Xiao [1 ]
Yu, Hao [1 ]
Chang, Long [1 ]
Han, Zongying [1 ]
Sun, Chongzheng [1 ]
Zhang, Wan [2 ]
机构
[1] Shandong Univ Sci & Technol, Coll Energy Storage Technol, Qingdao 266590, Peoples R China
[2] Yangzhou Univ, Coll Elect Energy & Power Engn, Yangzhou 225127, Peoples R China
基金
中国国家自然科学基金;
关键词
Thermochemical heat storage; Calcium looping; Density functional theory; Fe doping; Mn doping; CAO;
D O I
10.1016/j.seppur.2024.128057
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
The doping strategy with dark metallic oxide has proven effective in improving optical absorptions and heat storage performances of calcium-based materials for the direct solar-driven thermochemical energy storage system, but the microscopic mechanisms of accelerated decomposition of CaCO3 during heat storage process are still unclear. Carbide slag as an industrial waste with low cost and high CaO content is considered as a potential calcium-based precursor for large-scale thermochemical energy storage. Herein, the novel Fe-doped and Mndoped calcium-based materials were synthesized from carbide slag and their optical absorption properties and heat storage performances were determined in the experiment. The optimum decomposition temperatures of CaCO3 during heat storage process decreased 10.5 degrees C and 18.6 degrees C due to Fe doping and Mn doping, respectively. The acceleration mechanisms by Fe doping and Mn doping for enhancing the CO2 separation of CaCO3 in the calcination stage of the heat storage process were investigated by density functional theory (DFT) calculations. The structural parameters, partial density of states, electron differential densities and energy barriers during CO32- dissociation in heat storage process on the doped CaCO3 and undoped CaCO3 surfaces were compared to clarify the effects of Fe doping and Mn doping on the CaCO3 decomposition. The energy barriers of Fe-doped material and Mn-doped material are 1.68 eV and 1.42 eV, respectively, which are 29.4% and 40.3% lower than that of undoped material. This work helps to understand the microscopic mechanisms of accelerated CaCO3 decomposition by Fe and Mn during heat storage process.
引用
收藏
页数:13
相关论文
共 50 条
  • [31] A DFT study for in-situ CO2 utilization realized by calcium-looping dry reforming of methane based on Ni/CaCO3
    Wang, Feifei
    Zhao, Wenhan
    Li, Yingjie
    Zhang, Chunxiao
    He, Zirui
    CHEMICAL ENGINEERING JOURNAL, 2024, 481
  • [32] Calcium looping for CO2 capture: sorbent enhancement through doping
    Gonzalez, Belen
    Blamey, John
    McBride-Wright, Mark
    Carter, Nathaniel
    Dugwell, Denis
    Fennell, Paul
    Carlos Abanades, J.
    10TH INTERNATIONAL CONFERENCE ON GREENHOUSE GAS CONTROL TECHNOLOGIES, 2011, 4 : 402 - 409
  • [33] Development of post-combustion CO2 capture with CaO/CaCO3 looping in a bench scale plant
    Huang, Chin-Ming
    Hsu, Heng-Wen
    Liu, Wan-Hsia
    Cheng, Jui-Yen
    Chen, Wei-Cheng
    Wen, Tzeng-Wen
    Chen, Wang
    10TH INTERNATIONAL CONFERENCE ON GREENHOUSE GAS CONTROL TECHNOLOGIES, 2011, 4 : 1268 - 1275
  • [34] Study on heat transport analysis and improvement method in a single CaCO3 pellet for thermochemical energy storage
    Zhang, Huajing
    Xu, Chao
    Xu, Bowen
    Sun, Xiangyu
    Xing, Jiaxin
    Liao, Zhirong
    APPLIED THERMAL ENGINEERING, 2024, 248
  • [35] Kinetic parameters of CaCO3 decomposition in vacuum, air and CO2 calculated theoretically by means of the thermochemical approach
    Boris V. L’vov
    Reaction Kinetics, Mechanisms and Catalysis, 2015, 114 : 31 - 40
  • [36] Kinetic parameters of CaCO3 decomposition in vacuum, air and CO2 calculated theoretically by means of the thermochemical approach
    L'vov, Boris V.
    REACTION KINETICS MECHANISMS AND CATALYSIS, 2015, 114 (01) : 31 - 40
  • [37] Coupled CO2 capture and thermochemical heat storage of CaO derived from calcium acetate
    Sun, Chaoying
    Yan, Xianyao
    Li, Yingjie
    Zhao, Jianli
    Wang, Zeyan
    Wang, Tao
    GREENHOUSE GASES-SCIENCE AND TECHNOLOGY, 2020, 10 (05): : 1027 - 1038
  • [38] Utilization of a CO2 Storage Material: Shape-Controlled Preparation of CaCO3 Microspheres
    Meng, Xianlong
    Zhao, Long
    Guo, Haitao
    Sha, Feng
    Shi, Huihu
    Wu, Zhaojun
    Zhang, Jianbin
    CRYSTALS, 2019, 9 (08):
  • [39] CO2 storage in heterogeneous aquifer: A study on the effect of injection rate and CaCO3 concentration
    Raza, A.
    Rezaee, R.
    Bing, C. H.
    Gholami, R.
    Nagarajan, R.
    Hamid, M. A.
    10TH CURTIN UNIVERSITY TECHNOLOGY SCIENCE AND ENGINEERING INTERNATIONAL CONFERENCE (CUTSE2015), 2016, 121
  • [40] CO2 storage and CaCO3 production using seawater and an alkali industrial by-product
    Jeon, Junhyeok
    Kim, Myoung-Jin
    CHEMICAL ENGINEERING JOURNAL, 2019, 378