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Effect of self-doped heteroatoms on the performance of biomass-derived carbon for supercapacitor applications

机译:自掺杂杂原子对超级电容器应用的生物质衍生碳性能的影响

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摘要

Biomass-derived carbon materials with unique electronic, chemical, and surface properties have become a research hotspot in energy storage applications. However, these activated carbon materials cannot meet the emerging demand for high energy/power densities in the recent era. On the other hand, heteroatom doped carbon materials as supercapacitor electrodes have demonstrated enhanced conductivity, surface wettability and induced pseudocapacitance effect thereby delivering improved energy/power densities with versatile properties. Unlike external doping techniques, self-doping of heteroatoms doesn't involve additional processing steps and/or use of harmful chemicals. While review papers on the post-doping/in-situ doping of biomass carbon using external dopants are available in literature, comprehensive reports on self-doped carbon for supercapacitor has received scant attention. This review article focuses on the state of art update on recent developments in the field of self-doped biomass-derived carbon materials as a supercapacitor electrode. With the discussion on the effect of heteroatom doping species, a progressive development in the single-/dual-/multi-heteroatom doped porous carbon and its electrochemical performance covering the specific capacitance, cyclic life and energy/power densities is explored. Finally, the challenges in the self-doped carbon materials and its future perspectives is highlighted to provide a key insight to the promising factors for future developments of supercapacitor electrodes.
机译:具有独特电子,化学品和表面特性的生物质衍生的碳材料已成为储能应用中的研究热点。然而,这些活性炭材料不能满足最近时代的高能/电力密度的新兴需求。另一方面,掺原子掺杂的碳材料作为超级电容器电极具有增强的导电性,表面润湿性和诱导的假偶像效应,从而提供具有通用性能的改进的能量/功率密度。与外部掺杂技术不同,杂原子的自掺杂不涉及额外的处理步骤和/或使用有害化学物质。在文献中提供了使用外部掺杂剂的掺杂后/原位掺杂的论文,虽然使用外部掺杂剂提供了文献,但对超级电容器的自掺杂碳的综合报告感到了严重的关注。该审查文章侧重于自掺杂生物质衍生碳材料领域的最新发展的最新现象,作为超级电容器电极。探讨了杂液掺杂物种的效果,探讨了单/双/多杂原子掺杂多孔碳的渐进发育及其电化学性能,涵盖特定电容,循环寿命和能量/功率密度。最后,突出了自掺杂碳材料的挑战及其未来的观点,以便对超级电容器电极未来发展的有希望的因素提供关键洞察。

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