†Humboldt-Universität zu Berlin, Institut für Physik, Newstonstraße 15, 12489 Berlin, Germany.
‡Freie Universität Berlin, Fachbereich Physik, Arnimallee 14, 14195 Berlin, Germany.
Nano Lett. 2015 May 13;15(5):3024-9. doi: 10.1021/nl504941q. Epub 2015 Mar 27.
Finding new solid state defect centers in novel host materials is crucial for realizing integrated hybrid quantum photonic devices. We present a preparation method for defect centers with photostable bright single photon emission in zinc oxide, a material with promising properties in terms of processability, availability, and applications. A detailed optical study reveals a complex dynamic of intensity fluctuations at room temperature. Measurements at cryogenic temperatures show very sharp (<60 GHz) zero phonon lines (ZPLs) at 580 nm to 620 nm (≈ 2.0 eV) with frozen out fast fluctuations. Remaining discrete jumps of the ZPL, which depend on the excitation power, are observed. The low temperature results will narrow down speculations on the origin of visible-near-infrared (NIR) wavelength defect emission in zinc oxide and provide a basis for improved theoretical models.
在新型宿主材料中寻找新的固态缺陷中心对于实现集成混合量⼦光电器件至关重要。我们提出了⼀种在氧化锌中制备具有光稳定亮单光子发射缺陷中心的方法,氧化锌在可加工性、可用性和应用方面具有很好的前景。详细的光学研究揭示了室温下强度波动的复杂动态。低温测量表明,在 580nm 到 620nm(约 2.0eV)处有非常尖锐的(<60GHz)零声子线(ZPL),并且快波动被冻结。观察到依赖于激发功率的 ZPL 的剩余离散跃迁。低温结果将缩小对氧化锌中可见近红外(NIR)波长缺陷发射起源的猜测,并为改进的理论模型提供基础。