Formation, cathodoluminescence and field emission of ZnO quantum dots attached on oxygen plasma activated carbon nanotubes

Chun-Kuo Liu, H. Shih
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Abstract

A simple method to grow uniform ZnO quantum dots homogenously on the whole surface of multi-wall carbon nanotubes (MWCNTs) with oxygen plasma activation was reported in this work. The ZnO quantum dots can be successfully grown without catalyst using and well attached on the whole surface of MWCNTs with 20 s oxygen plasma treatment (O20). The ZnO quantum dots are uniform in the diameter of ~15 nm, and exhibit a single crystalline hexagonal wurtzite structure with lattice fringe of ~0.52 nm and growth direction along the [0001] axis from XRD and HRTEM results. Auger electron spectroscopy results show that the elemental composition of Zn on O20 sample can reach up to 43.8%, and the Zn/O ratio is ~1. From cathodoluminescence results, O20 sample shows a small ratio of green emission intensity to ultra-violet emission intensity, revealing that O20 sample has a highly crystalline structure with fewer oxygen deficiencies. ZnO quantum dots attached on MWCNTs with longer durations of oxygen plasma treatment result in a slight blue shift of both UV and green emission. Besides, O20 sample also reveals outstanding field emission properties (turn-on field of 0.27 V/μm, threshold field of 3.24 V/μm, field enhancement factor of 11897) greater than pristine MWCNTs (turn-on field of 4.39 V/μm, threshold field of 6.16 V/μm, field enhancement factor of 1582). Therefore, ZnO quantum dots attached on oxygen plasma activated carbon nanotubes successfully combine the particular advantages of ZnO and MWCNTs.
氧等离子体活性炭纳米管上ZnO量子点的形成、阴极发光和场发射
本文报道了一种在多壁碳纳米管(MWCNTs)表面均匀生长ZnO量子点的简单方法。采用20 s氧等离子体处理(O20),可以在没有催化剂的情况下成功生长ZnO量子点,并在MWCNTs的整个表面粘附良好。XRD和HRTEM结果表明,ZnO量子点在~15 nm直径范围内均匀,呈单晶六方纤锌矿结构,晶格条纹为~0.52 nm,生长方向沿[0001]轴。俄歇电子能谱分析结果表明,O20样品上Zn元素组成可达43.8%,Zn/O比值为~1。从阴极发光结果来看,O20样品的绿色发射强度与紫外线发射强度之比很小,说明O20样品具有高度结晶的结构,缺氧较少。在氧等离子体处理时间较长的MWCNTs上,ZnO量子点会导致紫外和绿光发射发生轻微的蓝移。此外,O20样品的场发射性能(导通场为0.27 V/μm,阈值场为3.24 V/μm,场增强因子为11897)也优于原始MWCNTs(导通场为4.39 V/μm,阈值场为6.16 V/μm,场增强因子为1582)。因此,将氧化锌量子点附着在氧等离子体活性炭纳米管上,成功地结合了氧化锌和MWCNTs的独特优点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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