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首页> 外文期刊>Nanoscale >Pine needle-derived microporous nitrogen-doped carbon frameworks exhibit high performances in electrocatalytic hydrogen evolution reaction and supercapacitors
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Pine needle-derived microporous nitrogen-doped carbon frameworks exhibit high performances in electrocatalytic hydrogen evolution reaction and supercapacitors

机译:松needle-derived微孔nitrogen-doped高性能碳框架展览electrocatalytic进化反应和氢超级电容器

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摘要

The design of electrochemically active materials with appropriate structures and compositions is very important for applications in energy conversion and storage devices. Herein, we demonstrate an effective strategy to prepare microporous heteroatom-doped carbon frameworks derived from naturally-abundant pine needles. The preparation procedure is based on the carbonization of pine needles, followed by KOH activation at a temperature range of 700-1000 degrees C. The resultant nitrogen-doped carbon consists of abundant micropores and an ultrahigh specific surface area (up to 2433 m(2) g(-1)), leading to high performances in electrocatalytic hydrogen evolution reaction (HER) and supercapacitors. Specifically, when the pine needle-derived carbon (activated at 800 degrees C) serves as a HER electrocatalyst, it exhibits a low onset potential (4 mV), a small Tafel slope (similar to 45.9 mV dec(-1)) and a remarkable stability over long-term cycling. When evaluated as an electrode material for supercapacitors, the pine needle-derived carbon (activated at 900 degrees C) demonstrates high specific capacitance (236 F g(-1) at 0.1 A g(-1)), remarkable rate capability (183 F g(-1) at even 20 A g(-1)) and good long-term stability. Notably, the specific capacitance at 2.0 A g(-1) increased from similar to 205 to similar to 227 F g(-1) after cycling for 5000 times, owing to the further activation and wetting of the electrodes. This novel and low-cost biomass-derived carbon material is very promising for many applications, especially in electrocatalytic water splitting and supercapacitors.
机译:电化学材料的设计以适当的结构和成分在能源非常重要的应用转换和存储设备。演示一个有效的策略准备微孔heteroatom-doped碳框架来自naturally-abundant松针。制备过程是基于碳化的松针,KOH紧随其后激活的温度范围700 - 1000度c合成nitrogen-doped碳包含丰富的微孔隙和超高比表面积(最高可达2433 m (2) g (1)),导致electrocatalytic高性能(她)和氢进化反应超级电容器。needle-derived碳(激活在800度C)作为她electrocatalyst,展品低潜在发病(4 mV),一个小塔费尔斜率(类似于45.9 mV 12月(1))和显著稳定长期的循环。作为超级电容器的电极材料,松needle-derived碳(激活,享年900岁度)高的比电容(236 F g(1)为0.1 g(1)),非凡的速度能力(183 F g(1)甚至20 g (1))良好的长期稳定。电容在2.0 g(1)从相似205年类似的自行车后227 F (g (1)5000倍,由于进一步激活和润湿的电极。非常低成本biomass-derived碳材料承诺对于许多应用程序,尤其是在electrocatalytic水分裂和超级电容器。

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