Graphite to diamond transition induced by photoelectric absorption of ultraviolet photons

Author:

Gómez de Castro Ana I.,Rheinstädter Maikel,Clancy Patrick,Castilla Maribel,de Isidro Federico,Larruquert Juan I.,de Lis-Sánchez Tomas,Britten James,Cabero Piris Mariona,de Isidro-Gómez Federico P.

Abstract

AbstractThe phase transition from graphite to diamond is an appealing object of study because of many fundamental and also, practical reasons. The out-of-plane distortions required for the transition are a good tool to understand the collective behaviour of layered materials (graphene, graphite) and the van der Waals forces. As today, two basic processes have been successfully tested to drive this transition: strong shocks and high energy femtolaser excitation. They induce it by increasing either pressure or temperature on graphite. In this work, we report a third method consisting in the irradiation of graphite with ultraviolet photons of energies above 4.4 eV. We show high resolution electron microscopy images of pyrolytic carbon evidencing the dislocation of the superficial graphitic layers after irradiation and the formation of crystallite islands within them. Electron energy loss spectroscopy of the islands show that the sp2 to sp3 hybridation transition is a surface effect. High sensitivity X-ray diffraction experiments and Raman spectroscopy confirm the formation of diamond within the islands.

Publisher

Springer Science and Business Media LLC

Subject

Multidisciplinary

Cited by 4 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Characterization of the picosecond laser-ablated HOPG using Raman spectroscopy and SEM microscopy;Materials Today Communications;2023-03

2. An aluminum-based reflective nanolens array that enhances the effectiveness of a continuous-flow ultraviolet disinfection system for livestock water;Journal of Animal Science and Technology;2023-01

3. Progress and prospect of diamond dynamic friction polishing technology;The International Journal of Advanced Manufacturing Technology;2022-12-01

4. Graphite to diamond phase transition induced by UV radiation;UV and Higher Energy Photonics: From Materials to Applications 2022;2022-10-03

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