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Three-dimensional ordered hierarchically porous carbon materials for high performance Li-Se battery

材料科学 电池(电) 电化学 阴极 多孔性 扩散 碳纤维 化学工程 溶解 纳米线 纳米技术 复合材料 电极 化学 热力学 功率(物理) 物理化学 工程类 物理 复合数
作者
Hongyan Li,Wenda Dong,Chao Li,Tarek Barakat,Minghui Sun,Yingying Wang,Liang Wu,Lang Wang,Lei Xia,Zhi‐Yi Hu,Yu Li,Bao‐Lian Su
出处
期刊:Journal of Energy Chemistry [Elsevier]
卷期号:68: 624-636 被引量:28
标识
DOI:10.1016/j.jechem.2021.12.036
摘要

Developing host materials with high specific surface area, good electron conductivity, and fast ion transportation channel is critical for high performance lithium-selenium (Li-Se) batteries. Herein, a series of three dimensional ordered hierarchically porous carbon (3D OHPC) materials with micro/meso/macropores are designed and synthesized for Li-Se battery. The porous structure is tuned by following the concept of the generalized Murray's law to facilitate the mass diffusion and reduce ion transport resistance. The optimized 3D Se/OHPC cathode exhibits a very high 2nd discharge capacity of 651 mAh/g and retains 361 mAh/g after 200 cycles at 0.2 C. Even at a high current rate of 5 C, the battery still shows a discharge capacity as high as 155 mAh/g. The improved electrochemical performance is attributed to the synergy effect of the interconnected and well-designed micro, meso and macroporosity while shortened ions diffusion pathways of such Murray materials accelerate its ionic and electronic conductivities leading to the enhanced electrochemical reaction. The diffusivity coefficient in Se/OHPC can reach a very high value of 1.3 × 10−11 cm2/s, much higher than those in single pore size carbon hosts. Their effective volume expansion accommodation capability and reduced dissolution of polyselenides ensure the high stability of the battery. This work, for the first time, established the clear relationship between textural properties of cathode materials and their performance and demonstrates that the concept of the generalized Murray’s law can be used as efficient guidance for the rational design and synthesis of advanced hierarchically porous materials and the great potential of 3D OHPC materials as a practical high performance cathode material for Li-Se batteries.
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