Chitosan derived nitrogen and oxygen dual-doped hierarchical porous carbon/Ti 3 C 2 T x MXene fiber for flexible cable shaped lithium-selenium battery

Pursuing flexible, matchable and miniaturized power supply with high capacitance is necessary for portable electronics as long-term period of energy source in wearable system. Here, a hierarchical Se/chitosan derived nitrogen and oxygen dual-doped porous carbon/Ti C T (Se-NOCT) fiber is proposed via...

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Veröffentlicht in:International journal of biological macromolecules 2024-12, Vol.282 (Pt 4), p.136836
Hauptverfasser: Xu, Jian, Pi, Xiangxiang, Qi, Kangxin, Zhang, Shenao, Wang, Yusen, Man, Zengming, Yang, Chao, Tang, Qingqing, An, Chengzhi, Zhang, Yu, Sun, Bin, Zhang, Yang, Wu, Guan
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Sprache:eng
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Zusammenfassung:Pursuing flexible, matchable and miniaturized power supply with high capacitance is necessary for portable electronics as long-term period of energy source in wearable system. Here, a hierarchical Se/chitosan derived nitrogen and oxygen dual-doped porous carbon/Ti C T (Se-NOCT) fiber is proposed via microfluidic spinning method prior to co-heating process for the fiber cathode of cable-shaped lithium‑selenium (LiSe) battery. Due to the interconnected structure, consecutive conductive frameworks and good synergistic effect, the fabricated Se-NOCT fibrous electrode shows excellent ions diffusion kinetics, fast electron migration rate and strong polyselenide adsorption ability proving by density functional theory (DFT) calculations. As a result, an admired specific capacitance (866 mAh g at 0.1 A g ), favorable rate performance (256 mAh g at 2 A g ) and long-term cycling property (226 mAh g after 500 cycling) can be achieved for the Se-NOCT electrode. More importantly, after assembling to the fibrous LiSe battery, the energy storage device not only presents stable operation at bending to 180 , 97.3 % capacitance retention after 100 times bending and impressive launderability, but also weave into the garment and support various electronics. Thus, customized flexible electrode provides a bright future for the progress of fiber shaped LiSe battery in smart wearable system.
ISSN:1879-0003