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纳米金刚石层的高能准分子退火

High-Energy Excimer Annealing of Nanodiamond Layers.

作者信息

Hurtuková Klaudia, Slepičková Kasálková Nikola, Fajstavr Dominik, Lapčák Ladislav, Švorčík Václav, Slepička Petr

机构信息

Department of Solid State Engineering, University of Chemistry and Technology Prague, 166 28 Prague, Czech Republic.

Central Laboratories, University of Chemistry and Technology, 166 28 Prague, Czech Republic.

出版信息

Nanomaterials (Basel). 2023 Jan 30;13(3):557. doi: 10.3390/nano13030557.

Abstract

Here, we aimed to achieve exposure of a nanodiamond layer to a high-energy excimer laser. The treatment was realized in high-vacuum conditions. The carbon, in the form of nanodiamonds (NDs), underwent high-temperature changes. The induced changes in carbon form were studied with Raman spectroscopy, X-ray photoelectron spectroscopy, and X-ray diffraction (XRD) and we searched for the Q-carbon phase in the prepared structure. Surface morphology changes were detected by atomic force microscopy (AFM) and scanning electron microscopy (SEM). NDs were exposed to different laser energy values, from 1600 to 3000 mJ cm. Using the AFM and SEM methods, we found that the NDs layer was disrupted with increasing beam energy, to create a fibrous structure resembling Q-carbon fibers. Layered micro-/nano-spheres, representing the role of diamonds, were created at the junction of the fibers. A Q-carbon structure (fibers) consisting of 80% sp hybridization was prepared by melting and quenching the nanodiamond film. Higher energy values of the laser beam (2000 and 3000 mJ cm), in addition to oxygen bonds, also induced carbide bonds characteristic of Q-carbon. Raman spectroscopy confirmed the presence of a diamond (sp) phase and a low-intensity graphitic (G) peak occurring in the Q-carbon form samples.

摘要

在此,我们旨在使纳米金刚石层暴露于高能准分子激光下。该处理是在高真空条件下实现的。以纳米金刚石(NDs)形式存在的碳经历了高温变化。通过拉曼光谱、X射线光电子能谱和X射线衍射(XRD)研究了碳形态的诱导变化,并在制备的结构中寻找Q-碳相。通过原子力显微镜(AFM)和扫描电子显微镜(SEM)检测表面形态变化。将NDs暴露于1600至3000 mJ/cm²的不同激光能量值下。使用AFM和SEM方法,我们发现随着光束能量增加,NDs层被破坏,形成了类似Q-碳纤维的纤维结构。在纤维的交界处形成了代表金刚石作用的层状微/纳米球。通过熔化和淬火纳米金刚石薄膜制备了由80% sp³杂化组成的Q-碳结构(纤维)。除了氧键外,较高能量值的激光束(2000和3000 mJ/cm²)还诱导了Q-碳特有的碳化物键。拉曼光谱证实了在Q-碳形式样品中存在金刚石(sp³)相和低强度石墨(G)峰。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cd26/9921808/d565f644f099/nanomaterials-13-00557-g001.jpg

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