Multiscale architected porous materials for renewable energy conversion and storage

被引:0
|
作者
Hoseini S.S. [1 ]
Seyedkanani A. [1 ]
Najafi G. [4 ]
Sasmito A.P. [3 ]
Akbarzadeh A. [1 ,2 ]
机构
[1] Department of Bioresource Engineering, McGill University, Montreal, H9X 3V9, QC
[2] Department of Mechanical Engineering, McGill University, Montreal, H3A 0C3, QC
[3] Department of Mining and Materials Engineering, McGill University, Montreal, H3A0E8, QC
[4] Department of Biosystems Engineering, Tarbiat Modares University, Tehran
来源
Energy Storage Materials | 2023年 / 59卷
关键词
Additive manufacturing; Architected porous materials; Energy conversion; Energy storage; Multifunctional metamaterials; Renewable energies;
D O I
10.1016/j.ensm.2023.102768
中图分类号
学科分类号
摘要
Before replacing fossil fuels, renewable energy options should overcome conversion and storage challenges. Therefore, it is crucial to develop advanced materials that may enhance the effectiveness of energy conversion and storage systems. Multiscale architected porous materials or cellular-based mechanical metamaterials can offer optimized energy conversion and storage opportunities due to their controllable porosity, high surface area-to-volume ratio, large pore volume, and topological tunability of their underlying architecture. These characteristics may improve a material's performance in terms of energy and power density. Herein, a comprehensive review is presented on the key advancements in utilizing multiscale architected porous materials for renewable energy storage and conversion applications. Our objective is to shed light on the current state-of-the-art multiscale architected porous materials and render research guidance for their future implications in renewable energy systems. To this end, alternative classifications of architected porous materials and the primary methods for their synthesis and fabrication are first discussed. Subsequently, the application of these materials in thermoelectric, triboelectric, piezoelectric, and ferroelectric generators is studied, and their utilization in fuel cells, solar energy cells, lithium-ion batteries, supercapacitors, and composite phase change materials is summarized. Finally, we elicit the research challenges associated with multiscale rationally-designed architected materials to highlight the prospects of their contribution to renewable energy storage and conversion. © 2023 Elsevier B.V.
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