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将毛发转化为具有高比表面积的杂原子掺杂碳。

Transforming hair into heteroatom-doped carbon with high surface area.

机构信息

Department of Advanced Materials Chemistry, Korea University, 2511 Sejong-ro, Sejong, 339-700, Republic of Korea.

出版信息

Small. 2014 Jul 9;10(13):2625-36. doi: 10.1002/smll.201303831. Epub 2014 Mar 24.

DOI:10.1002/smll.201303831
PMID:24664643
Abstract

Herein, a unique approach to dispose of human hair by pyrolizing it in a regulated environment is presented, yielding highly porous, conductive hair carbons with heteroatoms and high surface area. α-keratin in the protein network of hair serves as a precursor for the heteroatoms and carbon. The carbon framework is ingrained with heteroatoms such as nitrogen and sulfur, which otherwise are incorporated externally through energy-intensive, hazardous, chemical reactions using proper organic precursors. This judicious transformation of organic-rich waste not only addresses the disposal issue, but also generates valuable functional carbon materials from the discard. This unique synthesis strategy involving moderate activation and further graphitization enhances the electrical conductivity, while still maintaining the precious heteroatoms. The effect of temperature on the structural and functional properties is studied, and all the as-obtained carbons are applied as metal-free catalysts for the oxygen reduction reaction (ORR). Carbon graphitized at 900 °C emerges as a superior ORR electrocatalyst with excellent electrocatalytic performance, high selectivity, and long durability, demonstrating that hair carbon can be a promising alternative for costly Pt-based electrocatalysts in fuel cells. The ORR performance can be discussed in terms of heteroatom doping, surface properties, and electrical conductivity of the resulting porous hair carbon materials.

摘要

本文提出了一种独特的方法,即在受控环境中通过热解来处理人类毛发,得到具有杂原子和高比表面积的高度多孔、导电的毛发碳纤维。毛发中的角蛋白在蛋白质网络中充当杂原子和碳的前体。碳框架中嵌入了氮和硫等杂原子,否则这些杂原子需要通过使用适当的有机前体进行能量密集型、危险的化学反应来外部掺入。这种对富含有机物的废物的明智转化不仅解决了处理问题,而且还从废弃物中生成了有价值的功能性碳材料。这种涉及适度活化和进一步石墨化的独特合成策略提高了电导率,同时仍保留了宝贵的杂原子。研究了温度对结构和功能特性的影响,所有获得的碳都被用作无金属的氧还原反应 (ORR) 催化剂。在 900°C 下石墨化的碳作为一种出色的 ORR 电催化剂,具有卓越的电催化性能、高选择性和长耐久性,表明毛发碳可以替代昂贵的基于 Pt 的燃料电池电催化剂。可以根据杂原子掺杂、表面特性和所得多孔毛发碳材料的电导率来讨论 ORR 性能。

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