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首页> 外文期刊>Journal of Electronic Materials >Optical and Ferromagnetic Properties of Ni-Doped CdTeSe Quantum Dots
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Optical and Ferromagnetic Properties of Ni-Doped CdTeSe Quantum Dots

机译:Ni-掺杂Cdteseulum点的光学和铁磁性特性

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A chemical method was used to prepare Cd1-xNixTe0.5Se0.5 (Cd1-xNixTeSe, x=0-0.1) quantum dots (QDs) with particle sizes of 3-4nm. Structural analyses of x-ray diffraction patterns indicate that all QDs are single-phase and crystallize in the zincblende-type structure. The lattice constant gradually decreases with increasing x in Cd1-xNixTeSe. This is due to a partial replacement of Ni (a smaller ion) for Cd2+ (a larger ion). Our study also indicates that the Ni doping causes the red shift of the longitudinal optical mode, the blue shift of the excitonic absorption edge and photoluminescence (PL) peak, and a gradual decrease of the PL quantum yield. When the excitation power increases, the PL peak of CdTeSe (x=0) is almost unchanged, while that of Cd1-xNixTeSe QDs (x>0) shifts linearly towards high energies, which is related to the state-filling effect caused by Ni2+ dopants. Comparing with pure CdTeSe, Ni-doped QDs have longer PL decay times, up to approximate to 580ns. Particularly, all QDs exhibit weak ferromagnetic (FM) order at room temperature generated from defect-mediated exchange interactions of Ni2+ ions. Such results proved ternary Cd1-xNixTeSe QDs having simultaneously the optical and FM properties. Together with very long decay times, they are considered as potential materials for biosensing, photovoltaic and photocatalytic applications.
机译:使用3-4nm的粒径制备化学方法以制备CD1-Xnixte0.5Se0.5(CD1-Xnixte,X = 0-0.1)量子点(QDS)。 X射线衍射图的结构分析表明所有QD是单相的并在锌尖型结构中结晶。随着CD1-Xnixteses的增加,晶格常数逐渐减少。这是由于CD2 +(较大离子)的Ni(较小离子)的部分替换。我们的研究还表明,Ni掺杂导致纵向光学模式的红色移位,激发器吸收边缘和光致发光(PL)峰值的蓝色偏移,以及PL量子产量的逐渐降低。当激励功率增加时,CDTESE(x = 0)的PL峰值几乎不变,而CD1-Xnixtese QDS(x> 0)的线性地朝向高能量移动,这与由Ni2 +引起的状态填充效果有关。掺杂剂。与纯CDTEESE相比,NI掺杂的QDS具有更长的PL衰减时间,近似为580ns。特别地,所有QD在室温下表现出弱的铁磁性(FM)顺序从Ni2 +离子的缺陷介导的交换相互作用产生。这些结果证明了三元CD1-Xnixtese QD同时具有光学和FM性能。它们与非常长的衰减时间,它们被认为是生物传感,光伏和光催化应用的潜在材料。

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