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首页> 外文期刊>RSC Advances >One-step production of N–O–P–S co-doped porous carbon from bean worms for supercapacitors with high performance
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One-step production of N–O–P–S co-doped porous carbon from bean worms for supercapacitors with high performance

机译:来自高性能的超级电容器的豆蠕虫的N-O-P-S共掺杂多孔碳的一步生产

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摘要

In recent years, multi-heteroatom-doped hierarchical porous carbons (HPCs) derived from natural potential precursors and synthesized in a simple, efficient and environmentally friendly manner have received extensive attention in many critical technology applications. Herein, bean worms (BWs), a pest in bean fields, were innovatively employed as a precursor via a one-step method to prepare N–O–P–S co-doped porous carbon materials. The pore structure and surface elemental composition of carbon can be modified by adjusting KOH dosage, exhibiting a high surface area ( S _(BET) ) of 1967.1 m ~(2) g ~(?1) together with many surface functional groups. The BW-based electrodes for supercapacitors were shown to have a good capacitance of up to 371.8 F g ~(?1) in 6 M KOH electrolyte at 0.1 A g ~(?1) , and good rate properties with 190 F g ~(?1) at a high current density of 10 A g ~(?1) . Furthermore, a symmetric supercapacitor based on the optimal carbon material (BWPC _(1/3) ) was also assembled with a wide voltage window of 2.0 V, demonstrating satisfactory energy density (27.5 W h kg ~(?1) at 200 W kg ~(?1) ) and electrochemical cycling stability (97.1% retention at 10 A g ~(?1) over 10?000 charge/discharge cycles). The facile strategy proposed in this work provides an attractive way to achieve high-efficiency and scalable production of biomass-derived HPCs for energy storage.
机译:近年来,源自天然潜在前体的多杂原子掺杂的分层多孔碳(HPC)以简单,高效和环保的方式合成,在许多关键技术应用中受到广泛的关注。这里,豆蠕虫(BWS),豆类领域的害虫,通过一种通过一步法制备N-O-P-S共掺杂多孔碳材料作为前体的创新性地使用。通过调节KOH剂量,可以通过调节KOH剂量来改变孔结构和表面元素组成,其具有1967.1m〜(2)G〜(2)G〜(α1)的高表面积(BET)与许多表面官能团一起。对于超级电容器的BW基电极显示在0.1Ag〜(α1)的6M KOH电解质中具有高达371.8fg〜(α1)的良好电容,以及190 f g〜( ?1)在高电流密度为10 a g〜(Δ1)。此外,基于最佳碳材料(BWPC _(1/3))的对称超级电容器也与2.0V的宽电压窗口组装,呈现令人满意的能量密度(27.5WH kg〜(α1),200 kg 〜(?1))和电化学循环稳定性(97.1%在10 a g〜(Δ1)上超过10Ω充电/放电循环)。本作作品中提出的Bacile策略提供了一种有吸引力的方法来实现高效和可扩展的生物质衍生HPC的生产,以实现能量存储。

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