Marschilok Amy C, Bruck Andrea M, Abraham Alyson, Stackhouse Chavis A, Takeuchi Kenneth J, Takeuchi Esther S, Croft Mark, Gallaway Joshua W
Department of Chemistry, Stony Brook University, Stony Brook, NY 11794, USA.
Phys Chem Chem Phys. 2020 Sep 30;22(37):20972-20989. doi: 10.1039/d0cp00778a.
This perspective article describes the use of energy dispersive X-ray diffraction (EDXRD) to study the evolution of electrochemical energy storage materials. Using a synchrotron light source, EDXRD allows crystallographic changes in materials to be tracked from deep within large specimens, due to the use of highly penetrating X-rays and the ability to define a well-controlled diffraction gauge volume in space. Herein we provide an overview of battery work performed using the EDXRD technique, as developed at beamline X17B1 at the National Synchrotron Light Source (NSLS), and continued at beamline 6BM-A at the Advanced Photon Source (APS), beamline I12 at the Diamond Light Source, and beamline 7T-MPW-EDDI at the Berlin Electron Storage Ring Society for Synchrotron Radiation (BESSY II). The High Energy Engineering X-Ray Scattering (HEX) beamline currently under construction at the National Synchrotron Light Source II (NSLS-II) by Brookhaven National Lab and the State of New York will further expand capability for and access to this technique. The article begins with a general introduction to the technique of EDXRD, including a description of the photon energy and d-spacing relationship and a discussion of the gauge volume. The primary topic of the review, battery characterization by EDXRD, includes discussion of batteries of differing materials chemistries (lithium-based batteries and aqueous batteries) which store energy by different mechanisms (insertion and conversion materials). A discussion of high temperature batteries is also included.
这篇观点文章描述了如何使用能量色散X射线衍射(EDXRD)来研究电化学储能材料的演变。由于使用了高穿透性X射线以及能够在空间中定义一个控制良好的衍射测量体积,借助同步加速器光源,EDXRD能够追踪大型样品内部材料的晶体学变化。在此,我们概述了利用EDXRD技术开展的电池研究工作,该技术最初是在美国国家同步加速器光源(NSLS)的X17B1光束线开发的,后来在先进光子源(APS)的6BM - A光束线、钻石光源的I12光束线以及柏林电子储存环同步辐射协会(BESSY II)的7T - MPW - EDDI光束线得以延续。布鲁克海文国家实验室和纽约州正在国家同步加速器光源II(NSLS - II)建设的高能工程X射线散射(HEX)光束线将进一步拓展该技术的能力和应用范围。文章首先对EDXRD技术进行了总体介绍,包括光子能量与d间距关系的描述以及对测量体积的讨论。综述的主要主题,即通过EDXRD对电池进行表征,包括对不同材料化学组成的电池(锂基电池和水系电池)的讨论,这些电池通过不同机制(嵌入和转换材料)储存能量。此外还包括对高温电池的讨论。