Leveraging novel microwave techniques for tailoring the microstructure of energy storage materials

Yongfei You, Guangyu Fang, Miao Fan, Jiayue Guo, Qingxiang Li, Jun Wan
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Abstract

In the dynamic landscape of energy storage materials, the demand for efficient microstructural engineering has surged, driven by the imperative to seamlessly integrate renewable energy. Traditional material preparation methods encounter challenges such as poor controllability, high costs, and stringent operational conditions. The advent of microwave techniques heralds a transformative shift, offering rapid responses, high-temperature energy, and superior controllability. This review critically examines the nuanced applications of microwave technology in tailoring the microstructure of energy storage materials, emphasizing its pivotal role in the energy paradigm and addressing challenges posed by conventional methods. Notably, non-liquid-phase advanced microwave technology holds promise for introducing novel models and discoveries compared to traditional liquid-phase microwave methods. The ensuing discussion explores the profound impact of advanced microwave strategies on microstructural engineering, highlighting discernible advantages in optimizing performance for energy storage applications. Various applications of advanced microwave techniques in this domain are comprehensively discussed, providing a forward-looking perspective on their untapped potential to propel transformative strides in renewable energy research. This review offers insights into the promising future of leveraging microwaves for tailoring the microstructure of energy storage materials.
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利用新型微波技术定制储能材料的微观结构
在储能材料的动态发展中,对高效微结构工程的需求急剧增加,其驱动力是无缝集成可再生能源。传统的材料制备方法面临着可控性差、成本高和操作条件苛刻等挑战。微波技术的出现预示着一种变革性的转变,它能提供快速反应、高温能量和卓越的可控性。本综述认真研究了微波技术在定制储能材料微观结构方面的细微应用,强调了微波技术在能源范例中的关键作用,并探讨了传统方法所带来的挑战。值得注意的是,与传统的液相微波方法相比,非液相先进微波技术有望引入新的模式和发现。接下来的讨论探讨了先进微波策略对微结构工程的深远影响,突出了在优化储能应用性能方面的明显优势。文章全面讨论了先进微波技术在这一领域的各种应用,从前瞻性的角度探讨了这些技术在推动可再生能源研究取得变革性进展方面尚未开发的潜力。这篇综述为利用微波定制储能材料的微观结构这一充满希望的未来提供了见解。
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