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Shell Thickness Dependence of Interparticle Energy Transfer in Core-Shell ZnSe/ZnSe Quantum Dots Doping with Europium

机译:Core掺杂的壳核ZnSe / ZnSe量子点中粒子间能量转移的壳厚度依赖性

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Low-toxic core-shell ZnSe:Eu/ZnS quantum dots (QDs) were prepared through two steps in water solution: nucleation doping and epitaxial shell grown. The structural and morphological characteristics of ZnSe/ZnS:Eu QDs with different shell thickness were explored by transmission electron microscopy (TEM) and X-ray diffraction (XRD) results. The characteristic photoluminescence (PL) intensity of Eu ions was enhanced whereas that of band-edge luminescence and defect-related luminescence of ZnSe QDs was decreased with increasing shell thickness. The transformation of PL intensity revealed an efficient energy transfer process between ZnSe and Eu. The PL intensity ratio of Eu ions ( I ~(613)) to ZnSe QDs ( I ~( B )) under different shell thickness was systemically analyzed by PL spectra and time–resolved PL spectra. The obtained results were in agreement with the theory analysis results by the kinetic theory of energy transfer, revealing that energy was transmitted in the form of dipole-electric dipole interaction. This particular method of adjusting luminous via changing the shell thickness can provide valuable insights towards the fundamental understanding and application of QDs in the field of optoelectronics.
机译:通过水溶液中的两步制备低毒核壳ZnSe:Eu / ZnS量子点(QDs):成核掺杂和外延壳生长。通过透射电子显微镜(TEM)和X射线衍射(XRD)研究了不同壳厚的ZnSe / ZnS:Eu量子点的结构和形态特征。 Eu离子的特征光致发光(PL)强度随着壳厚度的增加而降低,而ZnSe QD的带边缘发光和缺陷相关发光的强度降低。 PL强度的转变揭示了ZnSe和Eu之间有效的能量转移过程。通过PL光谱和时间分辨PL光谱系统分析了不同壳厚度下Eu离子(I〜(613))与ZnSe QDs(I〜(B))的PL强度比。所得结果与能量转移动力学理论的理论分析结果吻合,表明能量以偶极-电偶极相互作用的形式传输。通过改变外壳厚度来调节发光的这种特殊方法可以为光电子领域中量子点的基本理解和应用提供有价值的见解。

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