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Mechanisms of enhancement of light emission in nanostructures of II-VI compounds doped with manganese

机译:锰掺杂的II-VI族化合物纳米结构中发光增强的机理

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摘要

Intra-shell transitions of transition metal and rare earth ions are parity forbidden processes. For Mn²⁺ ions this is also a spin forbidden process, i.e., light emission should be inefficient. Surprisingly, it has been reported that in nanostructures of ZnMnS the ⁴T₁ to ⁶A₁ intra-shell transition of Mn²⁺ results in a bright photoluminescence characterized by a short PL decay time. The model of a quantum confined atom was introduced to explain the observed experimental results. It was later claimed that this model is incorrect. Based on the results of our photoluminescence, photoluminescence kinetics, time-resolved photoluminescence, electron spin resonance, and optically detected magnetic resonance investigations, we confirm photoluminescence enhancement and decrease of photoluminescence lifetime and relate these effects to spin dependent magnetic interactions between localized spins of Mn²⁺ ions and spins/magnetic moments of free carriers. This mechanism is active in both bulk and in low-dimensional structures, but is significantly enhanced in nanostructure samples.
机译:过渡金属和稀土离子的壳内过渡是奇偶禁止的过程。对于Mn 2+离子,这也是自旋禁止的过程,即发光效率不高。出乎意料的是,据报道,在ZnMnS的纳米结构中,Mn 2+的⁴T₁向⁶A₁的壳内过渡导致明亮的光致发光,其特征是PL衰变时间短。介绍了量子约束原子的模型来解释观察到的实验结果。后来有人声称此模型不正确。根据我们的光致发光,光致发光动力学,时间分辨的光致发光,电子自旋共振和光学检测的磁共振研究的结果,我们确认了光致发光的增强和光致发光寿命的降低,并将这些影响与Mn²局部自旋之间自旋相关的磁相互作用相关carriers离子和自由载流子的自旋/磁矩。该机制在整体和低维结构中均有效,但在纳米结构样品中则显着增强。

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