Eric Youngsam Kim, Zachary T Messegee, Zhenzhen Yang, Xiaoyan Tan, Chao Luo
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引用次数: 0
Abstract
Developing high-capacity and fast-charging anode materials is critical for achieving high-performance Li-ion batteries (LIBs). Herein, polycrystalline quaternary transition metal silicon sulfides, Cu2TSiS4 (T = Fe, Mn), were synthesized using a solid-state method and investigated as anode materials in LIBs. Cu2FeSiS4 retains a reversible capacity of 670 mAh g-1 at 200 mA g-1 for 400 cycles, while Cu2MnSiS4 suffers from a fast capacity loss in the initial 50 cycles. More importantly, Cu2FeSiS4 can maintain a reversible capacity of 379 mAh g-1 after 700 cycles at a high current density of 2 A g-1, demonstrating high cyclic stability and fast-charging capacity. To further understand the structure degradation and phase transformation, we investigated the postcycling electrodes using multiple techniques, including the scanning electron microscope with energy-dispersive X-ray spectroscopy, X-ray diffraction, and X-ray photoelectron spectroscopy techniques. The results indicated that Cu2FeSiS4 undergoes reversible phase transitions with Li2S as a major product component. To further assess the performance for practical applications, Cu2FeSiS4 was coupled with LiFePO4 to make LiFePO4||Cu2FeSiS4 full cells, which delivered superior electrochemical performance. These results demonstrate great promise for using quaternary transition metal silicon sulfides as anodes to achieve low-cost and sustainable LIBs.
开发高容量、快速充电的负极材料是实现高性能锂离子电池的关键。本文采用固相法合成了多晶季系过渡金属硫化硅Cu2TSiS4 (T = Fe, Mn),并对其作为锂离子电池的负极材料进行了研究。在400次循环中,Cu2FeSiS4在200 mA g-1下保持670 mAh g-1的可逆容量,而cu2mnis4在最初的50次循环中遭受快速容量损失。更重要的是,在2 a g-1的高电流密度下,经过700次循环后,Cu2FeSiS4可以保持379 mAh g-1的可逆容量,具有很高的循环稳定性和快速充电能力。为了进一步了解循环后电极的结构降解和相变,我们使用多种技术对循环后电极进行了研究,包括扫描电子显微镜和能量色散x射线能谱、x射线衍射和x射线光电子能谱技术。结果表明,Cu2FeSiS4发生了以Li2S为主要产物组分的可逆相变。为了进一步评估实际应用的性能,我们将Cu2FeSiS4与LiFePO4偶联制成LiFePO4||Cu2FeSiS4全电池,其具有优异的电化学性能。这些结果表明,使用第四过渡金属硫化硅作为阳极来实现低成本和可持续的锂离子电池具有很大的前景。
期刊介绍:
ACS Applied Energy Materials is an interdisciplinary journal publishing original research covering all aspects of materials, engineering, chemistry, physics and biology relevant to energy conversion and storage. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrate knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important energy applications.