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通过水热碳化制备了高效氧还原N掺杂碳纳米片。

Highly Efficient Oxygen Reduction N-Doped Carbon Nanosheets Were Prepared by Hydrothermal Carbonization.

作者信息

Liu Yuchen, Zheng Yajie, Zhang Peiyun, Hou Junhua

机构信息

School of Physics and Information Engineering, Shanxi Normal University, No.339 Taiyu Road, Xiaodian District, Taiyuan 030031, China.

Extreme Optical Collaborative Innovation Center, Shanxi University, No. 92, Wucheng Road, Xiaodian District, Taiyuan 030006, China.

出版信息

Molecules. 2023 Dec 19;29(1):3. doi: 10.3390/molecules29010003.

Abstract

A metal-free carbon catalyst is a kind of oxygen reduction catalyst with great prospects. It is an important material with potential to replace the traditional Pt catalyst. In this paper, a kind of irregular and ultra-thin carbon nanosheet (K180M-300-900) with high catalytic activity was synthesized by hydrothermal calcination using okra as a biomass and NHCl as an N source. The prepared nitrogen-doped metal-free catalyst with high pyridine-N and graphitic-N provides an extremely large number of active sites and has certain lattice defects. Ultra-thin carbon nanosheets promote sufficient contact between the catalyst and electrolyte, promote the diffusion of oxygen, and result in a faster transfer rate of electrons. The initial potential and half-slope potential of K180M-300-900 are 0.99 V and 0.82 V, respectively, which are comparable to those of 20% Pt/C. In addition, the stability and methanol tolerance of this catalyst (K180M-300-900) are better than 20% Pt/C, so it has great development potential and application value. This result provides a new method to prepare metal-free carbon materials that will take the place of traditional Pt catalysts.

摘要

无金属碳催化剂是一种具有广阔前景的氧还原催化剂。它是一种有潜力替代传统铂催化剂的重要材料。本文以秋葵为生物质、氯化铵为氮源,通过水热煅烧合成了一种具有高催化活性的不规则超薄碳纳米片(K180M-300-900)。所制备的具有高吡啶氮和石墨氮的无金属氮掺杂催化剂提供了大量的活性位点且具有一定的晶格缺陷。超薄碳纳米片促进了催化剂与电解质之间的充分接触,促进了氧的扩散,并导致电子转移速率更快。K180M-300-900的初始电位和半坡电位分别为0.99 V和0.82 V,与20% Pt/C的相当。此外,该催化剂(K180M-300-900)的稳定性和甲醇耐受性优于20% Pt/C,因此具有很大的发展潜力和应用价值。这一结果为制备替代传统铂催化剂的无金属碳材料提供了一种新方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6170/10780226/83374bc1b7c9/molecules-29-00003-g001.jpg

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