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辐射对电化学储能系统材料的影响。

Radiation effects on materials for electrochemical energy storage systems.

作者信息

Olsen Tristan, Koroni Cyrus, Liu Yuzi, Russell Joshua A, Wharry Janelle P, Xiong Hui

机构信息

Micron School of Materials Science & Engineering, Boise State University, Boise, Idaho, USA.

Center for Nanoscale Materials, Argonne National Laboratory, Lemont, IL, USA.

出版信息

Phys Chem Chem Phys. 2023 Nov 22;25(45):30761-30784. doi: 10.1039/d3cp02697c.

DOI:10.1039/d3cp02697c
PMID:37830239
Abstract

Batteries and electrochemical capacitors (ECs) are of critical importance for applications such as electric vehicles, electric grids, and mobile devices. However, the performance of existing battery and EC technologies falls short of meeting the requirements of high energy/high power and long durability for increasing markets such as the automotive industry, aerospace, and grid-storage utilizing renewable energies. Therefore, improving energy storage materials performance metrics is imperative. In the past two decades, radiation has emerged as a new means to modify functionalities in energy storage materials. There exists a common misconception that radiation with energetic ions and electrons will always cause radiation damage to target materials, which might potentially prevent its applications in electrochemical energy storage systems. But in this review, we summarize recent progress in radiation effects on materials for electrochemical energy storage systems to show that radiation can have both beneficial and detrimental effects on various types of energy materials. Prior work suggests that fundamental understanding toward the energy loss mechanisms that govern the resulting microstructure, defect generation, interfacial properties, mechanical properties, and eventual electrochemical properties is critical. We discuss radiation effects in the following categories: (1) defect engineering, (2) interface engineering, (3) radiation-induced degradation, and (4) radiation-assisted synthesis. We analyze the significant trends and provide our perspectives and outlook on current research and future directions in research seeking to harness radiation as a method for enhancing the synthesis and performance of battery materials.

摘要

电池和电化学电容器(ECs)对于电动汽车、电网和移动设备等应用至关重要。然而,现有电池和EC技术的性能无法满足汽车工业、航空航天和利用可再生能源的电网储能等不断增长的市场对高能量/高功率和长耐久性的要求。因此,提高储能材料的性能指标势在必行。在过去二十年中,辐射已成为一种改变储能材料功能的新手段。有一种常见的误解,即高能离子和电子辐射总会对目标材料造成辐射损伤,这可能会阻碍其在电化学储能系统中的应用。但在本综述中,我们总结了辐射对电化学储能系统材料影响的最新进展,以表明辐射对各种类型的能量材料可能既有有益影响,也有有害影响。先前的工作表明,对控制微观结构、缺陷产生、界面性质、机械性能以及最终电化学性能的能量损失机制有基本的了解至关重要。我们在以下几个类别中讨论辐射效应:(1)缺陷工程,(2)界面工程,(3)辐射诱导降解,以及(4)辐射辅助合成。我们分析了显著趋势,并就当前研究以及寻求利用辐射作为增强电池材料合成和性能方法的未来研究方向提供了我们的观点和展望。

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