Marckx Bret A, Maclennan Hunter, Capraz Ömer Özgür
Department of Chemical, Biochemical and Environmental Engineering, University of Maryland, Baltimore County, Baltimore, Maryland 21250 United States.
School of Chemical Engineering, Oklahoma State University, Stillwater, Oklahoma 74078 United States.
Chem Biomed Imaging. 2025 Mar 16;3(6):352-358. doi: 10.1021/cbmi.5c00003. eCollection 2025 Jun 23.
Aqueous batteries have received a great deal of attention for grid-scale energy storage applications but suffer from low-capacity retention and utilization. A lack of understanding of chemomechanical instabilities and charge storage mechanisms in cathodes limits the development of advanced aqueous batteries. To shed light on these instabilities, operando techniques are necessary to probe the complex interplay between electrochemistry and mechanics during cycling. Here, we report an operando technique to probe electrochemical strains in cathodes in aqueous electrolytes during battery cycling via optical imaging and digital image correlation. Operando mechanical measurements indicate that the cathode undergoes positive strain generation during discharge and negative generation during charge. Strain derivatives reveal a close correlation between electrochemical and mechanical behaviors, highlighting the connection between electrochemistry and mechanics. This operando imaging technique is broadly applicable and paves the way for a deeper understanding of deformation mechanisms in aqueous, multivalent ion battery materials.
水系电池在大规模储能应用中备受关注,但存在容量保持率低和利用率低的问题。对阴极中化学机械不稳定性和电荷存储机制的缺乏了解限制了先进水系电池的发展。为了阐明这些不稳定性,需要采用原位技术来探测循环过程中电化学与力学之间的复杂相互作用。在此,我们报告了一种原位技术,通过光学成像和数字图像相关技术来探测电池循环过程中水系电解质中阴极的电化学应变。原位力学测量表明,阴极在放电过程中产生正应变,在充电过程中产生负应变。应变导数揭示了电化学行为与力学行为之间的密切相关性,突出了电化学与力学之间的联系。这种原位成像技术具有广泛的适用性,为深入理解水系多价离子电池材料的变形机制铺平了道路。