Self-Assembled Structure Evolution of Mn-Fe Oxides for High Temperature Thermochemical Energy Storage

被引:34
|
作者
Xiang, Duo [1 ]
Gu, Changdong [2 ]
Xu, Haoran [1 ]
Xiao, Gang [1 ]
机构
[1] Zhejiang Univ, Coll Energy Engn, State Key Lab Clean Energy Utilizat, Hangzhou 310027, Zhejiang, Peoples R China
[2] Zhejiang Univ, Coll Mat Sci & Engn, State Key Lab Silicon Mat, Hangzhou 310027, Zhejiang, Peoples R China
基金
中国国家自然科学基金;
关键词
redox mechanism; self-assembled core-shell structure; thermochemical energy storage; MN2O3/MN3O4 REDOX COUPLE; HEAT-STORAGE; MANGANESE OXIDES; IRON OXIDE; CYCLES; KINETICS; EXPLOITATION; SYSTEMS; COBALT; PERFORMANCE;
D O I
10.1002/smll.202101524
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Thermochemical energy storage (TCES) materials have emerged as a promising alternative to meet the high-temperature energy storage requirements of concentrated solar power plants. However, most of the energy storage materials are facing challenges in redox kinetics and cyclic stability. Iron-doped manganese oxide attracts raising attention due to its non-toxicity, low cost, and high energy capacity over 800 degrees C. However, there are few investigations on the reversibility enhancement of the redox reaction from the microstructural-evolution-mechanism point of view. Herein, bixbyite-type (Mn0.8Fe0.2)(2)O-3 is synthesized and extruded into honeycomb units, which can maintain an 85% initial capacity after 100 redox cycles. It is also found that a self-assembled core-shell MnFe2O4@Mn2.7Fe0.3O4 structure forms during the reduction step, and then transforms into a homogeneous solid solution of (Mn0.8Fe0.2)(2)O-3 in the following oxidation step. During the reduction step, shells are formed spontaneously from the Mn2.7Fe0.3O4 with the MnFe2O4 as cores due to the lower surface energy, which facilitates the oxygen adsorption and dissociation during subsequent oxidation step. Through the density functional theory calculation, it is revealed that the lower formation energy of oxygen vacancies in the shell contributes to the improvement of oxygen diffusion rate. This study can provide a guideline to design prospective materials for high-temperature TCES.
引用
收藏
页数:10
相关论文
共 50 条
  • [1] High-temperature thermochemical energy storage based on redox reactions using Co-Fe and Mn-Fe mixed metal oxides
    Andre, Laurie
    Abanades, Stephane
    Cassayre, Laurent
    JOURNAL OF SOLID STATE CHEMISTRY, 2017, 253 : 6 - 14
  • [2] Thermochemical reaction kinetics of Mn-Fe based particles for High-Temperature energy storage systems
    Li, Jiasong
    Zhu, Peiwang
    Xu, Haoran
    Bao, Yiming
    Gong, Jueyuan
    Xiao, Gang
    SOLAR ENERGY, 2025, 285
  • [3] Experimental and Thermodynamic Study of Co-Fe and Mn-Fe Based Mixed Metal Oxides for Thermochemical Energy Storage Application
    Andre, Laurie
    Abanades, Stephane
    Cassayre, Laurent
    INTERNATIONAL CONFERENCE ON CONCENTRATING SOLAR POWER AND CHEMICAL ENERGY SYSTEMS (SOLARPACES 2016), 2017, 1850
  • [4] Long-term replenishment strategy of SiC-doped Mn-Fe particles for high-temperature thermochemical energy storage
    Gan, Di
    Sheng, Hongbin
    Zhu, PeiWang
    Xu, Haoran
    Xiao, Gang
    SOLAR ENERGY, 2023, 262
  • [5] Experimental and simulation study of Mn-Fe particles in a controllable-flow particle solar receiver for high-temperature thermochemical energy storage
    Gan, Di
    Zhu, Peiwang
    Xu, Haoran
    Xie, Xiangyu
    Chai, Fengyuan
    Gong, Jueyuan
    Li, Jiasong
    Xiao, Gang
    ENERGY, 2023, 282
  • [6] Magnesium-manganese oxides for high temperature thermochemical energy storage
    Randhir, Kelvin
    King, Keith
    Rhodes, Nathan
    Li, Like
    Hahn, David
    Mei, Renwei
    AuYeung, Nicholas
    Klausner, James
    JOURNAL OF ENERGY STORAGE, 2019, 21 : 599 - 610
  • [7] Thermochemical energy storage at high temperature via redox cycles of Mn and Co oxides: Pure oxides versus mixed ones
    Carrillo, Alfonso J.
    Moya, Javier
    Bayon, Alicia
    Jana, Prabhas
    de la Pena O'Shea, Victor A.
    Romero, Manuel
    Gonzalez-Aguilar, Jose
    Serrano, David P.
    Pizarro, Patricia
    Coronado, Juan M.
    SOLAR ENERGY MATERIALS AND SOLAR CELLS, 2014, 123 : 47 - 57
  • [8] Thermochemical Energy Storage Performance Analysis of (Fe,Co,Mn)Ox Mixed Metal Oxides
    Dessie, Yabibal Getahun
    Hong, Qi
    Lougou, Bachirou Guene
    Zhang, Juqi
    Jiang, Boshu
    Anees, Junaid
    Tegegne, Eyale Bayable
    CATALYSTS, 2021, 11 (03) : 1 - 23
  • [9] Self-assembled materials for electrochemical energy storage
    Hao Chen
    Peter Benedek
    Khande-Jaé Fisher
    Vanessa Wood
    Yi Cui
    MRS Bulletin, 2020, 45 : 815 - 822
  • [10] Self-assembled materials for electrochemical energy storage
    Chen, Hao
    Benedek, Peter
    Fisher, Khande-Jae
    Wood, Vanessa
    Cui, Yi
    MRS BULLETIN, 2020, 45 (10) : 815 - 822