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On the thermodynamic path enabling a room-temperature laser-assisted graphite to nanodiamond transformation

机译:在热力学路径上实现室温激光辅助石墨向纳米金刚石的转化

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摘要

Nanodiamonds are the subject of active research for their potential applications in nano-magnetometry, quantum optics, bioimaging and water cleaning processes. Here, we present a novel thermodynamic model that describes a graphite-liquid-diamond route for the synthesis of nanodiamonds. Its robustness is proved via the production of nanodiamonds powders at room-temperature and standard atmospheric pressure by pulsed laser ablation of pyrolytic graphite in water. The aqueous environment provides a confinement mechanism that promotes diamond nucleation and growth, and a biologically compatible medium for suspension of nanodiamonds. Moreover, we introduce a facile physico-chemical method that does not require harsh chemical or temperature conditions to remove the graphitic byproducts of the laser ablation process. A full characterization of the nanodiamonds by electron and Raman spectroscopies is reported. Our model is also corroborated by comparison with experimental data from the literature.
机译:纳米金刚石因其在纳米磁力测定,量子光学,生物成像和水清洗工艺中的潜在应用而受到积极研究。在这里,我们介绍了一种新颖的热力学模型,该模型描述了用于合成纳米金刚石的石墨-液体-金刚石途径。通过在室温和标准大气压下通过热解石墨在水中的脉冲激光烧蚀生产纳米金刚石粉末,证明了其坚固性。水性环境提供了促进金刚石成核和生长的限制机制,以及用于悬浮纳米金刚石的生物相容性介质。此外,我们引入了一种简便的物理化学方法,该方法不需要苛刻的化学或温度条件即可去除激光烧蚀过程中产生的石墨副产物。报道了通过电子和拉曼光谱学对纳米金刚石的完整表征。通过与文献中的实验数据进行比较,我们的模型得到了证实。

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