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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Low-cost, environmentally friendly synthesis, structural and spectroscopic properties of Fe:ZnSe colloidal nanocrystals
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Low-cost, environmentally friendly synthesis, structural and spectroscopic properties of Fe:ZnSe colloidal nanocrystals

机译:Fe:ZnSe胶态纳米晶体的低成本,环保合成,结构和光谱性质

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Semiconductor nanocrystals have been the focus of great interest in recent years due to their size dependent physical and chemical properties. Here, we present a facile, eco-friendly and feasible approach for the fabrication of highly luminescent Fe:ZnSe nanocrystals by using low-cost, and environmentally friendly reagents and solvents, benefiting the practical applications. The developed process produces Fe:ZnSe nanocrystals having in situ capping of mercaptoacetic acid on the surface, resulting in good water solubility due to effective surface functionalization. Surface investigation of the nanocrystals indicates that mercaptoacetic acid is chemisorbed onto the surface of Fe:ZnSe nanocrystals and the sulfur atom in the thiol is coordinated to the zinc atom, leading to the formation of the covalent Zn-S bond. Ultrasmall Fe:ZnSe nanocrystals were produced with average particles size ca. 4 nm, indicating they are in the alleged quantum confinement regime. The Fe:ZnSe samples are found to be nanocrystalline in nature with cubic zinc blende structure. The Fe:ZnSe nanocrystals are quasi-spherical shaped, and the regular behavior of the lattice fringes inside the nanocrystal further demonstrates that most nanoparticles have a good crystalline characteristics with no obvious defects. The microstructural properties of the Fe:ZnSe nanocrystals were probed by X-ray diffraction in detail. The photoluminescence spectrum band is relatively narrow and symmetric, which reveals the obtained Fe:ZnSe nanocrystals are nearly monodisperse and homogeneous. The photoluminescence quantum yield of the fabricated Fe:ZnSe nanocrystals was calculated to be ca. 35%, that makes Fe:ZnSe nanocrystals a promising candidate for applications in biolabeling, bioimaging, and light emitting devices. The blue shifted band gap energy of the fabricated Fe:ZnSe nanocrystals in comparison to the corresponding bulk value derives from size quantization characteristics of the resulting products in nanoparticle form. The exhibited quantum confinement effects were probed within the framework of the effective mass approximation model. Furthermore, the underlying mechanisms were also elucidated. This work provides a more promising synthetic strategy with advantages of being simplicity and low cost in preparation, environmentally friendly and suitable for large scale production of functionalized doped and alloyed nanocrystals with excellent synthetic reproducibility. (C) 2014 Elsevier B.V. All rights reserved.
机译:半导体纳米晶体由于其尺寸依赖性的物理和化学性质,近年来已成为人们关注的焦点。在这里,我们提出了一种通过使用低成本,环保的试剂和溶剂来制造高度发光的Fe:ZnSe纳米晶体的简便,环保,可行的方法,这对实际应用很有帮助。所开发的方法生产的Fe:ZnSe纳米晶体在表面上具有巯基乙酸的原位封端,由于有效的表面官能化,其水溶性良好。纳米晶体的表面研究表明,巯基乙酸被化学吸附到Fe:ZnSe纳米晶体的表面,硫醇中的硫原子与锌原子配位,导致形成共价Zn-S键。产生具有平均粒径约3μm的超小Fe:ZnSe纳米晶体。 4 nm,表明它们处于所谓的量子限制机制中。发现Fe:ZnSe样品本质上是具有立方锌混合结构的纳米晶体。 Fe:ZnSe纳米晶体为准球形,纳米晶体内部晶格条纹的规则行为进一步表明,大多数纳米颗粒具有良好的晶体特性,没有明显的缺陷。通过X射线衍射对Fe:ZnSe纳米晶体的微观结构特性进行了详细研究。光致发光光谱带相对窄且对称,这表明所获得的Fe:ZnSe纳米晶体几乎单分散且均匀。所制备的Fe:ZnSe纳米晶体的光致发光量子产率经计算为约。 35%的含量使得Fe:ZnSe纳米晶体成为生物标记,生物成像和发光器件中应用的有前途的候选者。与相应的体积值相比,所制造的Fe:ZnSe纳米晶体的蓝移带隙能来自纳米颗粒形式的最终产物的尺寸量化特征。在有效质量近似模型的框架内探究了所显示的量子限制效应。此外,还阐明了潜在的机制。这项工作提供了一种更有前途的合成策略,具有制备简单,成本低,对环境友好的优点,并适合大规模生产功能性掺杂和合金化的纳米晶体,具有优异的合成再现性。 (C)2014 Elsevier B.V.保留所有权利。

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