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White light luminescence from nano-ZnS doped porous silicon

机译:纳米ZnS掺杂多孔硅的白光发光

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摘要

Nano-ZnS was deposited into porous silicon. By varying the concentration of Zn~(2+) ion solution during nano-ZnS formation, the amount of nano-ZnS in the porous silicon host can be controlled. The doped porous silicon exhibited a gradual shift in its photoluminescence peak from red to blue as a function of the nano-ZnS coverage. At an optimum doping, white light photoluminescence was obtained. A study in the luminescence lifetime has shown that the radiative recombination at the blue end of the visible spectrum was due to nano-ZnS, whereas luminescence emission at the red end of the visible spectrum came from porous silicon. The latter luminescence was due to the tunneling of excited electrons from nano-ZnS into porous silicon. Time-resolved photoluminescence has also shown that radiative recombination was effectively dominated by the nano-ZnS. The photoluminescence excitation results revealed the presence of two excitation levels: one belonging to nano-ZnS at the near-ultraviolet region, and another at about 520 nm from the surface states of porous silicon. The doping of nano-ZnS into porous silicon demonstrates that luminescence colour tuning is possible when an appropriate functional material is introduced into porous silicon.
机译:将纳米ZnS沉积到多孔硅中。通过改变纳米ZnS形成过程中Zn〜(2+)离子溶液的浓度,可以控制多孔硅基质中纳米ZnS的含量。掺杂的多孔硅在其光致发光峰中呈现出从红色到蓝色的渐变,这是纳米ZnS覆盖率的函数。在最佳掺杂下,获得白光光致发光。发光寿命的研究表明,可见光谱的蓝色端的辐射复合是由于纳米ZnS引起的,而可见光谱的红色端的发光发射则来自多孔硅。后一种发光是由于激发电子从纳米ZnS隧穿到多孔硅中。时间分辨的光致发光还表明,纳米ZnS有效地控制了辐射复合。光致发光激发结果表明存在两个激发能级:一个在近紫外区属于纳米ZnS,另一个在距多孔硅的表面态约520 nm处。将纳米ZnS掺杂到多孔硅中表明,当将适当的功能材料引入多孔硅中时,可以进行发光颜色调整。

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