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Optics-based battery diagnostics: decoding of chemo-mechanical evolution

Peer-Reviewed Publication

Science China Press

Optics-based battery diagnostics: decoding of chemo-mechanical evolution

image: 

(a) Schematic illustration of the operando stress measurement system. (b) Stress evolution of NCM811 cathode. (c) The schematic diagram of mechanical changes of particles during cycling. (d) The cycling performance of NCM811 materials at 0.5C.

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Credit: ©Science China Press

NCM811 materials have been considered as the main cathode materials for high energy density Li-ion batteries. However, cracks of poly-crystalline NCM materials caused by stress accelerate the loss of active materials, limiting the cycle life. Hence, monitoring and understanding the chemo-mechanical evolution of NCM materials is of importance.

To address this challenge, the research team led by Prof. Yunhui Huang and Prof. Zhen Li introduced an optical fiber to in operando detect the stress evolution of NCM811 cathode. Through designing the integration of optical fiber and battery, the stress evolution at material level has been successfully monitored. Meanwhile, due to the small size and chemical stability, the implantation of fiber also has little impact on performance of battery and transmission of sensing signals.

They found that the stress evolution of poly-crystalline NCM811 mainly consists chemical stress and structural stress. Chemical stress is caused by (de)lithiation of materials, which is normal and unavoidable. Of importance is the fact that structural stress is found to induce cracks, which is harmful to the performance. Hence, the elimination of cracks, which means the remission of structural, is the key to improve the performance.

Combined with crystallographic results, structural stress is proved to be induced by the nonmonotonic variation of the c-axis of crystal during (de)lithiation and the anisotropy of primary particles in poly-crystalline. Hence, improving the anisotropy of primary particles to construct an ordered arrangement structure is proposed to obtain the chemo-mechanical stable poly-crystalline materials. It has been proved that the structural stress of poly-crystalline with ordered arrangement structure is relieved. Meanwhile, this material delivers a high capacity retention of 82% after 500 cycles at 0.5C.

“With many advantages, optical sensing has received widespread attention in the field pf battery monitoring. We implanted the fiber into the electrode to obtain the stress information at material level, decoding the chemo-mechanical evolution of materials and helping guide the construction of chemo-mechanical stable materials. In the future, optical sensing will play an important role in the battery role, helping to build better, safer and smarter battery.” Prof. Yunhui Huang said.

This research received funding from the National Natural Science Foundation of China. The research paper, titled “Operando chemo-mechanical evolution in LiNi0.8Co0.1Mn0.1O2 cathode”, was recently published in National Science Review, the first comprehensive scholarly journal released in English in China that is aimed at linking the country's rapidly advancing community of scientists with the global frontiers of science and technology.

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See the article:

Operando chemo-mechanical evolution in LiNi0.8Co0.1Mn0.1O2 cathode

Natl. Sci. Rev.

https://doi.org/10.1093/nsr/nwae254


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