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静电纺丝氮氧化钛碳复合纳米纤维的微观结构与电导率

Microstructure and Electrical Conductivity of Electrospun Titanium Oxynitride Carbon Composite Nanofibers.

作者信息

Koderman Podboršek Gorazd, Zupančič Špela, Kaufman Rok, Surca Angelja Kjara, Marsel Aleš, Pavlišič Andraž, Hodnik Nejc, Dražić Goran, Bele Marjan

机构信息

Department of Materials Chemistry, National Institute of Chemistry, Hajdrihova 19, SI-1000 Ljubljana, Slovenia.

Jožef Stefan International Postgraduate School, Jamova 39, SI-1000 Ljubljana, Slovenia.

出版信息

Nanomaterials (Basel). 2022 Jun 24;12(13):2177. doi: 10.3390/nano12132177.

Abstract

Titanium oxynitride carbon composite nanofibers (TiON/C-CNFs) were synthesised with electrospinning and subsequent heat treatment in ammonia gas. In situ four-probe electrical conductivity measurements of individual TiON/C-CNFs were performed. Additionally, the TiON/C-CNFs were thoroughly analysed with various techniques, such as X-ray and electron diffractions, electron microscopies and spectroscopies, thermogravimetric analysis and chemical analysis to determine the crystal structure, morphology, chemical composition, and N/O at. ratio. It was found that nanofibers were composed of 2-5 nm sized titanium oxynitride (TiON) nanoparticles embedded in an amorphous carbon matrix with a small degree of porosity. The average electrical conductivity of a single TiON/C-CNF was 1.2 kS/m and the bulk electrical conductivity of the TiON/C-CNF fabric was 0.053 kS/m. From the available data, the mesh density of the TiON/C-CNF fabric was estimated to have a characteristic length of 1.0 µm and electrical conductivity of a single TiON/C-CNF was estimated to be from 0.45 kS/m to 19 kS/m. The electrical conductivity of the measured TiON/C-CNFs is better than that of amorphous carbon nanofibers and has ohmic behaviour, which indicates that it can effectively serve as a new type of support material for electrocatalysts, batteries, sensors or supercapacitors.

摘要

采用静电纺丝和随后在氨气中进行热处理的方法合成了氮氧化钛碳复合纳米纤维(TiON/C-CNFs)。对单根TiON/C-CNFs进行了原位四探针电导率测量。此外,还使用各种技术对TiON/C-CNFs进行了全面分析,如X射线和电子衍射、电子显微镜和光谱学、热重分析和化学分析,以确定其晶体结构、形态、化学成分以及N/O原子比。结果发现,纳米纤维由嵌入具有少量孔隙率的非晶碳基质中的2-5纳米大小的氮氧化钛(TiON)纳米颗粒组成。单根TiON/C-CNF的平均电导率为1.2 kS/m,TiON/C-CNF织物的体电导率为0.053 kS/m。根据现有数据,估计TiON/C-CNF织物的网孔密度具有1.0 µm的特征长度,单根TiON/C-CNF的电导率估计在0.45 kS/m至19 kS/m之间。所测量的TiON/C-CNFs的电导率优于非晶碳纳米纤维,并且具有欧姆行为,这表明它可以有效地用作电催化剂、电池、传感器或超级电容器的新型支撑材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ee18/9268360/6ff8291d1db2/nanomaterials-12-02177-g001.jpg

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