Mixed Co, Cu and Mn-based Metal Oxides for Thermochemical Energy Storage Application

被引:4
|
作者
Andre, Laurie [1 ]
Abanades, Stephane [1 ]
Cassayre, Laurent [2 ]
机构
[1] PROMES CNRS, Proc Mat & Solar Energy Lab, 7 Rue Four Solaire, F-66120 Font Romeu, France
[2] Univ Toulouse, CNRS, INPT, Lab Genie Chim,UPS, Toulouse, France
关键词
HIGH-TEMPERATURE; PHASE-EQUILIBRIA; SYSTEM;
D O I
10.1063/1.5067124
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The potential of metal oxides for thermochemical heat storage in solar power plants at high temperature via reversible redox reactions has been largely demonstrated, and cobalt oxide and manganese oxide commonly appear as the most attractive simple oxides. However, drawbacks of pure oxides such as slow reaction kinetics, low reversibility, loss-in-capacity over cycles or sintering, could be tackled by the addition of a secondary oxide This work presents the experimental evaluation of mixed oxides from the Co-Cu-O, Mn-Cu-O, and Co-Mn-O systems. Within the studied series of mixed oxides, the Co-Cu-O system with low amounts of Cu (<= 10 mol%) shows very good cycling stability and high reaction enthalpy (similar to 570 kJ.kg(-1)). Among the mixed oxides studied in the Mn-Cu-O system, the compositions with Cu amounts in the range 40-80 mol% feature promising redox properties with complete reaction reversibility, even though sintering remains an issue. In contrast, compositions with Cu amounts below 30 mol% cannot be cycled because of the formation of the hausmannite phase during reduction, which inhibits further reoxidation. The compositions with less than 40% Mn in the Co-Mn-O system retain an interesting enthalpy for thermochemical energy storage in CSP plants for a cheaper material than pure cobalt oxide, but the reaction enthalpy decreases with the Mn content. In this system, the cycling ability is lost over 70 mol% Mn due to hausmanite phase formation, similarly to the case of Mn-Cu-O system.
引用
收藏
页数:8
相关论文
共 50 条
  • [41] Novel Mn-based mesoporous mixed oxidic solids
    Stathopoulos, VN
    Petrakis, DE
    Hudson, M
    Falaras, P
    Neofytides, SG
    Pomonis, PJ
    CHARACTERIZATION OF POROUS SOLIDS V, 2000, 128 : 593 - 602
  • [42] Metal hydrides for thermochemical energy storage applications
    Choudhari, Manoj S.
    Sharma, Vinod Kumar
    Paswan, Manikant
    INTERNATIONAL JOURNAL OF ENERGY RESEARCH, 2021, 45 (10) : 14465 - 14492
  • [43] Lattice matching strategy in Cu-based oxides for large-scale and long-term thermochemical energy storage
    Liu, Lei
    Zhou, Zijian
    Liu, Ying
    Long, Yun
    Gu, Quan
    Cao, Xiangkun Elvis
    Liu, Xiaowei
    Xu, Minghou
    ENERGY STORAGE MATERIALS, 2024, 73
  • [44] Design of CeMnCu ternary mixed oxides as soot combustion catalysts based on optimized Ce/Mn and Mn/Cu ratios in binary mixed oxides
    Zhao, Han
    Li, Hongcheng
    Pan, Zaifu
    Feng, Feng
    Gu, Yongwan
    Du, Junchen
    Zhao, Yunkun
    APPLIED CATALYSIS B-ENVIRONMENTAL, 2020, 268
  • [45] Critical review of thermochemical energy storage systems based on cobalt, manganese, and copper oxides
    Han, Xiangyu
    Wang, Liang
    Ling, Haoshu
    Ge, Zhiwei
    Lin, Xipeng
    Dai, Xingjian
    Chen, Haisheng
    RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2022, 158
  • [46] Hydrophobic interface-assisted casting of core-shell CaO-based pellets for thermochemical energy storage: Assembly mechanism for dark Mn-based shell
    Shi, Yi
    Sun, Jian
    Long, Yun
    Wang, Ruilin
    Zhou, Zijian
    Jiang, Long
    Zhao, Chuanwen
    CHEMICAL ENGINEERING JOURNAL, 2025, 507
  • [47] Micro-scale thermal imaging of CO2 absorption in the thermochemical energy storage of Li metal oxides at high temperature
    Morikawa, Junko
    Takasu, Hiroki
    Zamengo, Massimiliano
    Kato, Yukitaka
    THERMOSENSE: THERMAL INFRARED APPLICATIONS XXXIX, 2017, 10214
  • [48] Perovskite oxides for application in thermochemical air separation and oxygen storage
    Vieten, J.
    Bulfin, B.
    Call, F.
    Lange, M.
    Schmuecker, M.
    Francke, A.
    Roeb, M.
    Sattler, C.
    JOURNAL OF MATERIALS CHEMISTRY A, 2016, 4 (35) : 13652 - 13659
  • [49] Pressure effects on the carbonation of MeO (Me = Co, Mn, Pb, Zn) for thermochemical energy storage
    Gravogl, Georg
    Knoll, Christian
    Artner, Werner
    Welch, Jan M.
    Eitenberger, Elisabeth
    Friedbacher, Gernot
    Harasek, Michael
    Hradil, Klaudia
    Werner, Andreas
    Weinberger, Peter
    Mueller, Danny
    Miletich, Ronald
    APPLIED ENERGY, 2019, 252
  • [50] Self-Assembled Structure Evolution of Mn-Fe Oxides for High Temperature Thermochemical Energy Storage
    Xiang, Duo
    Gu, Changdong
    Xu, Haoran
    Xiao, Gang
    SMALL, 2021, 17 (29)