Recent Progress on Redox Materials for High-Temperature Thermochemical Heat Storage

被引:0
作者
Carrillo, Alfonso J. [1 ]
Serra, Jose Manuel [1 ]
机构
[1] Univ Politecn Valencia, Consejo Super Invest Cient, Inst Tecnol Quim, Ave Naranjos S-N, Valencia 46022, Spain
来源
ADVANCED ENERGY AND SUSTAINABILITY RESEARCH | 2025年 / 6卷 / 04期
关键词
concentrated solar power; oxides; thermal energy storage; thermochemical cycles; STORING SOLAR-ENERGY; MANGANESE OXIDES; SOLID-SOLUTION; PERFORMANCE; CYCLES; MN; MANGANITES; PARTICLES; SYSTEMS; COUPLE;
D O I
10.1002/aesr.202400317
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Thermal energy storage based on gas-solid reversible chemical reactions offers higher-energy storage densities than commercially implemented sensible heat-storage systems. Despite the promise, it is a much less mature technology, and several aspects still require further improvement. Among the wide variety of reversible thermochemical reactions that show potential for thermal energy storage, reduction-oxidation reactions of metal oxides are promising since air can be employed as reactant without the need of costly pressurized storage units. In this perspective, the fundamental aspects of metal oxides for redox thermochemical heat storage are explored, paying special attention to the latest developments that will assure high energy-storage density and multicycle stability. The design of more efficient redox materials remains a key aspect in thermochemical heat storage; however, the development of high-temperature reactors and their implementation in concentrated solar power plants also plays an important role in the advancement of this technology. All these interrelated elements together with techno-economic assessments, a paramount tool in terms of materials choice, are also discussed.
引用
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页数:12
相关论文
共 69 条
[61]   Lithium manganese oxides as high-temperature thermal energy storage system [J].
Varsano, Francesca ;
Alvani, Carlo ;
La Barbera, Aurelio ;
Masi, Andrea ;
Padella, Franco .
THERMOCHIMICA ACTA, 2016, 640 :26-35
[62]  
Vert V. B., 2012, APPL CATAL B-ENVIRON, P115346
[63]   Effects of TiO2 doping on the performance of thermochemical energy storage based on Mn2O3/Mn3O4 redox materials [J].
Wang, Boyan ;
Wang, Zhiyuan ;
Dou, Binlin ;
Ma, Yan ;
Liang, Yijing .
RSC ADVANCES, 2021, 11 (53) :33744-33758
[64]   A thermochemical study of iron aluminate-based materials: a preferred class for isothermal water splitting [J].
Warren, Kent J. ;
Tran, Justin T. ;
Weimer, Alan W. .
ENERGY & ENVIRONMENTAL SCIENCE, 2022, 15 (02) :806-821
[65]   Thermodynamic and kinetic investigation of a technical grade manganese-iron binary oxide for thermochemical energy storage [J].
Wokon, Michael ;
Block, Tina ;
Nicolai, Sven ;
Linder, Marc ;
Schmuecker, Martin .
SOLAR ENERGY, 2017, 153 :471-485
[66]  
Wong B., 2010, P 26 IEEE S MASS STO, P1
[67]  
Xiang D., 2021, SMALL, V2101524, P2101524
[68]   Tunable Redox Temperature of a Co3-xMnxO4 (0 ≤ x ≤ 3) Continuous Solid Solution for Thermochemical Energy Storage [J].
Zaki, Abdelali ;
Carrasco, Javier ;
Bielsa, Daniel ;
Faik, Abdessamad .
ACS APPLIED MATERIALS & INTERFACES, 2020, 12 (06) :7010-7020
[69]   Particle-based high-temperature thermochemical energy storage reactors [J].
Zhao, Jian ;
Korba, David ;
Mishra, Ashreet ;
Klausner, James ;
Randhir, Kelvin ;
Auyeung, Nick ;
Li, Like .
PROGRESS IN ENERGY AND COMBUSTION SCIENCE, 2024, 102