论文标题
六角硼硝酸盐中的工程旋转缺陷
Engineering spin defects in hexagonal boron nitride
论文作者
论文摘要
二维六角硼硝化硼为纳米级的轻度研究提供了有趣的机会,特别是用于实现量子纳米光子学的实现。在这里,我们演示了基于负电荷的硼空缺中心的光学粘结自旋缺陷的工程。我们表明,这些中心可以使用纳米级的精度在甲状腺氮化硼(氮化硼)中创建。使用激光和谐振微波激发的组合,我们进行了光学检测到的磁共振光谱测量值,该测量揭示了左场基态分裂,缺损〜3.46 GHz。我们还执行光致发光激发光谱和依赖温度的光致发光测量值,以阐明中心的光物理特性。我们的结果对于涉及操纵和识别硝化硼的自旋缺陷的晚期量子和纳米素化学实现非常重要。
Two-dimensional hexagonal boron nitride offers intriguing opportunities for advanced studies of light-matter interaction at the nanoscale, specifically for realizations in quantum nanophotonics. Here, we demonstrate the engineering of optically-addressable spin defects based on the negatively-charged boron vacancy center. We show that these centers can be created in exfoliated hexagonal boron nitride using a variety of focused ion beams (nitrogen, xenon and argon), with nanoscale precision. Using a combination of laser and resonant microwave excitation, we carry out optically detected magnetic resonance spectroscopy measurements, which reveal a zero-field ground state splitting for the defect of ~3.46 GHz. We also perform photoluminescence excitation spectroscopy and temperature dependent photoluminescence measurements to elucidate the photophysical properties of the center. Our results are important for advanced quantum and nanophotonics realizations involving manipulation and readout of spin defects in hexagonal boron nitride.