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Enhanced Energy Transfer from Nitrogen-Vacancy Centers to Three-Dimensional Graphene Heterostructures by Laser Nanoshaping

机译:通过激光纳米膦化增强从氮空位中心到三维石墨烯异质结构的能量转移

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Graphene, a well-studied 2D material, is used to tailor the emission behavior of proximal light emitters by controlling the energy flow to modulate the related relaxation rates, with potentials in fields of biosensing and photovoltaics. Good interface between emitters and 2D materials are important to efficiently modulate the photon emission behavior. However, seamless integration of quantum light emitters and atomically thin materials is challenging due to fabrication limitation. In this paper, the utilization of laser nanoshaping approaches to "wrap" the atomically thin graphene on nanodiamond particles is reported. Compared with 2D layout, the 3D integration enhances the energy transfer by 45%. Furthermore, it is found that the energy transfer efficiency of nitrogen-vacancy (NV) centers to the 3D graphene can reach a maximum value of 80% over a long distance (approximate to 25 nm), under intense laser excitation. The authors' analysis indicates that the photon-generated carrier density of graphene enhances the nonradiative decay rate of NV centers. Besides contributing new insight on the fundamentals of interactions between graphene and quantum emitters, the effort undertaken furthermore holds tremendous promise in developing the graphene-based nano-cavities for various applications ranging from sensing, to photovoltaics, to lasing, and to quantum communications.
机译:Graphene是一种研究良好的2D材料,用于通过控制能量流量来定制近端光发射器的排放行为,以调节相关的松弛率,具有生物传感和光伏领域的潜力。发射器和2D材料之间的良好界面很重要,可以有效地调节光子排放行为。然而,由于制造限制,量子光发射器和原子薄材料的无缝集成是具有挑战性的。本文报道,报道了激光纳米磷酸盐方法的利用“包装”在纳米金刚石颗粒上的原子薄石墨烯。与2D布局相比,3D集成增强了能量转移45%。此外,发现在激光激发下,氮空位(NV)中心的能量转移效率(NV)中心到3D石墨烯的最大值可以在长距离(近似为25nm)上达到80%的最大值。作者的分析表明,石墨烯的光子产生的载体密度增强了NV中心的非相互作用衰减率。除了为石墨烯和量子发射仪之间相互作用的基础上有所贡献,还在开发基于石墨烯的纳米腔中进行的各种应用的努力来实现巨大的承诺,该应用范围从传感到光伏,光伏,激光和量子通信。

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