论文标题
磁耦合在MN2+掺杂的ZnS纳米片的光致发光动力学中的作用
Role of Magnetic Coupling in Photoluminescence Kinetics of Mn2+-doped ZnS Nanoplatelets
论文作者
论文摘要
MN2+掺杂的半导体纳米晶体具有调谐位置和MN2+离子浓度可以产生不同的耦合方案,这可以高度影响其光学特性,例如发射波长和光致发光(PL)寿命。但是,由于MN2+离子与宿主以及MN2+离子之间的复杂相互作用,对MN2+浓度与光学性质之间关系的研究仍然具有挑战性。在这里,选择具有均匀厚度的原子ZnS纳米片(NPL)作为MN2+掺杂的基质。使用时间分辨(TR)PL光谱和密度功能理论(DFT)计算,建立了MN2+离子的耦合与PL动力学之间的联系。 此外,发现驻留在纳米结构表面的MN2+离子会产生发射状态并干扰MN2+/MN2+耦合的特性变化。 在对光学响应抑制表面贡献的配置中,我们显示了通过DFT方法进行双重指数衰减的基本物理原因。我们认为,在其他半导体中,也是研究掺杂剂位置和浓度依赖性属性的通用平台,提出的掺杂策略和模拟方法是一个通用平台。
Mn2+-doped semiconductor nanocrystals with tuned location and concentration of Mn2+ ions can yield diverse coupling regimes, which can highly influence their optical properties such as emission wavelength and photoluminescence (PL) lifetime. However, investigation on the relationship between the Mn2+ concentration and the optical properties is still challenging because of the complex interactions of Mn2+ ions and the host and between the Mn2+ ions. Here, atomically flat ZnS nanoplatelets (NPLs) with uniform thickness were chosen as matrixes for Mn2+ doping. Using time-resolved (TR) PL spectroscopy and density functional theory (DFT) calculations, a connection between coupling and PL kinetics of Mn2+ ions was established. Moreover, it was found that the Mn2+ ions residing on the surface of a nanostructure produce emissive states and interfere with the change of properties by Mn2+/Mn2+ coupling. In a configuration with suppressed surface contribution to the optical response we show the underlying physical reasons for double and triple exponential decay by DFT methods. We believe that the presented doping strategy and simulation methodology of the Mn2+-doped ZnS system is a universal platform to study dopant location- and concentration-dependent properties also in other semiconductors.