Sattar Saud, Statheros Thomas, Raza Ali, Kellner Quirin, Yu Yifei, Bhagat Rohit, Roberts Alexander J, Guo Yue
Centre for E-Mobility and Clean Growth, Coventry University, Coventry CV1 5FB, UK.
Centre for Future Transport and Cities, Coventry University, Coventry CV1 5FB, UK.
Sensors (Basel). 2024 Nov 30;24(23):7686. doi: 10.3390/s24237686.
The existing body of research on battery state of health has identified various degradation modes for the electrolyte, yet very few studies have explored the role of electrolyte colour changes as a diagnostic tool for state of health (SOH). This study investigates the impact of elevated temperatures and its correlation with electrolyte colour changes and capacity fade during cycling. Specifically, the research examines whether cycling cells at elevated temperatures induces noticeable changes in electrolyte colour and whether these changes can be linked to the SOH of the cells. The methodology employs in operando optical sensors to monitor real-time colour shifts in the electrolyte, aiming to demonstrate a qualitative relationship between electrolyte colour change, degradation, thermal ageing, and capacity fade, laying the foundations for future quantitative assessment of the relationships identified. Our research builds upon these findings by offering a novel approach that integrates optical sensing to provide real-time visual evidence of electrolyte degradation and colour change during cell operation. The results demonstrate a clear relationship between elevated temperature, electrolyte colour change, and capacity fade, leading to accelerated degradation. This approach offers a new insight over traditional in exitu battery diagnostics, as it enables continuous in operando monitoring of electrolyte colour change and has the potential to unlock a detailed understanding of the chemical reactions and electrolyte breakdown during cycling.
现有的关于电池健康状态的研究主体已经确定了电解质的各种降解模式,但很少有研究探讨电解质颜色变化作为健康状态(SOH)诊断工具的作用。本研究调查了高温的影响及其与循环过程中电解质颜色变化和容量衰减的相关性。具体而言,该研究考察了在高温下对电池进行循环是否会引起电解质颜色的显著变化,以及这些变化是否与电池的健康状态相关。该方法采用原位光学传感器来监测电解质中的实时颜色变化,旨在证明电解质颜色变化、降解、热老化和容量衰减之间的定性关系,为未来对所确定关系的定量评估奠定基础。我们的研究基于这些发现,提供了一种新颖的方法,该方法集成了光学传感,以提供电池运行期间电解质降解和颜色变化的实时视觉证据。结果表明,高温、电解质颜色变化和容量衰减之间存在明显的关系,导致加速降解。这种方法为传统的非原位电池诊断提供了新的见解,因为它能够对电解质颜色变化进行连续的原位监测,并且有可能深入了解循环过程中的化学反应和电解质分解。