Nanoelectronics Centre (NEC), Advanced Technology Institute (ATI), University of Surrey, Guildford, Surrey, UK.
Nanotechnology. 2011 Jul 1;22(26):265711. doi: 10.1088/0957-4484/22/26/265711. Epub 2011 May 18.
The hole transport properties of poly(2-methoxy, 5-(2'-ethyl-hexoxy)-p-phenylene vinylene) (MEH-PPV) blended with acid oxidized multiwall carbon nanotubes (COOH-MWCNTs) were investigated in a diode configuration using the time-of-flight (TOF) photocurrent method. While the room temperature hole mobility in pure MEH-PPV films was non-dispersive with positive field dependent mobility, MEH-PPV:COOH-MWCNT blended devices exhibited dispersive transport and negative field dependent mobility. This indicates that the hole mobility in this composite is influenced by positional disorder caused by the presence of COOH-MWCNTs in the MEH-PPV matrix. These results strongly suggest that the distribution of COOH-MWCNTs optimising in the organic matrix is important for charge transport in the high mobility nanotube component to be activated, when used in hybrid material systems.
采用飞时(TOF)光电流法,在二极管结构中研究了聚(2-甲氧基,5-(2'-乙基己氧基)-对苯乙炔)(MEH-PPV)与酸氧化多壁碳纳米管(COOH-MWCNTs)共混物的空穴输运性能。虽然在纯 MEH-PPV 薄膜中,室温空穴迁移率在正电场下具有各向同性,但 MEH-PPV:COOH-MWCNT 共混器件表现出各向异性输运和负电场依赖性迁移率。这表明,COOH-MWCNTs 的存在引起 MEH-PPV 基质中的位置无序,从而影响了该复合材料中的空穴迁移率。这些结果强烈表明,在使用混合材料体系时,为了激活高迁移率碳纳米管组分中的电荷输运,COOH-MWCNTs 在有机基质中的优化分布对于优化电荷输运非常重要。