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Review Article: Synthesis properties and applications of fluorescent diamond particles

机译:评论文章:荧光钻石颗粒的合成性质和应用

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摘要

Diamond particles containing color centers—fluorescent crystallographic defects embedded within the diamond lattice—outperform other classes of fluorophores by providing a combination of unmatched photostability, intriguing coupled magneto-optical properties, intrinsic biocompatibility, and outstanding mechanical and chemical robustness. This exceptional combination of properties positions fluorescent diamond particles as unique fluorophores with emerging applications in a variety of fields, including bioimaging, ultrasensitive metrology at the nanoscale, fluorescent tags in industrial applications, and even potentially as magnetic resonance imaging contrast agents. However, production of fluorescent nanodiamond (FND) is nontrivial, since it requires irradiation with high-energy particles to displace carbon atoms and create vacancies—a primary constituent in the majority color centers. In this review, centrally focused on material developments, major steps of FND production are discussed with emphasis on current challenges in the field and possible solutions. The authors demonstrate how the combination of fluorescent spectroscopy and electron paramagnetic resonance provides valuable insight into the types of radiation-induced defects formed and their evolution upon thermal annealing, thereby guiding FND performance optimization. A recent breakthrough process allowing for production of fluorescent diamond particles with vibrant blue, green, and red fluorescence is also discussed. Finally, the authors conclude with demonstrations of a few FND applications in the life science arena and in industry.
机译:包含色心的钻石颗粒-嵌入钻石晶格中的荧光晶体缺陷-通过提供无与伦比的光稳定性,引人入胜的磁光特性,固有的生物相容性以及出色的机械和化学强度的组合,胜过其他种类的荧光团。这种卓越的性能组合将荧光钻石颗粒定位为独特的荧光团,并在各种领域中出现了新的应用,包括生物成像,纳米级的超灵敏计量学,工业应用中的荧光标签,甚至有可能用作磁共振成像造影剂。但是,荧光纳米金刚石(FND)的生产并非易事,因为它需要用高能粒子照射以置换碳原子并产生空位,而空位是大多数色心中的主要成分。在这篇综述中,集中于材料开发,讨论了FND生产的主要步骤,重点是该领域当前的挑战和可能的解决方案。作者证明了荧光光谱法和电子顺磁共振的结合如何为形成的辐射诱导缺陷的类型及其在热退火时的演化提供了有价值的见识,从而指导了FND性能的优化。还讨论了最近的突破性方法,该方法允许生产具有鲜艳的蓝色,绿色和红色荧光的荧光钻石颗粒。最后,作者以在生命科学领域和工业中的一些FND应用的演示作为结尾。

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