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The two-step thermochemical growth of ZnS:Mn nanocrystals and a study of luminescence evolution

机译:ZnS:Mn纳米晶体的两步热化学生长及发光演化的研究

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In this work we report a new thermochemical method for the synthesis of ZnS:Mn nanocrystals. Zn(NO3)(2) and Na2S2O3 were used as the precursors and Mn(NO3)(2) was the source of impurity. Thioglycerol (TG, C3H8O2S) was also used as the capping agent and the catalyst of the reaction. Na2S2O3 is a heat sensitive material which releases S species upon heating. Consequently, the reaction proceeds in temperatures higher than room temperature. The reaction was done in two steps. In the first step, the precursors were heated at 96 degrees C for an hour without TG. In the second step, TG was injected to the solution and the heating process was continued for longer heating durations. A fast growth occurred in the first 10 min after the addition of TG, resulting in a sample with a band edge located at 4.0 eV. The growth was followed by elimination of the sample's scattering and emergence and increase of the luminescence during the heating process. Transmission electron microscopy and x-ray diffraction analyses demonstrated round shaped cubic phase ZnS: Mn nanocrystals with an average size around 3.0 nm. The luminescence emerged from about 15 min after the addition of TG. The emission was located at around 585 nm, demonstrating the Mn incorporation inside the particles. The luminescence intensity increased with time and saturated during the second step of the heating process. Finally, we propose a model explaining the formation and changes in the scattering and luminescence characteristic of the ZnS: Mn nanoparticles. The model is based on the separation of the nucleation and growth steps of the synthesis in the first and second steps of the reaction. This separation directly affects the achievement of the luminescent ZnS: Mn nanocrystals.
机译:在这项工作中,我们报告了一种新的热化学方法,用于合成ZnS:Mn纳米晶体。 Zn(NO3)(2)和Na2S2O3被用作前体,而Mn(NO3)(2)是杂质的来源。硫代甘油(TG,C3H8O2S)也用作封端剂和反应催化剂。 Na 2 S 2 O 3是一种热敏材料,加热后会释放出S物质。因此,反应在高于室温的温度下进行。反应分两个步骤进行。在第一步中,将前体在无TG的情况下于96摄氏度加热1小时。在第二步中,将TG注入溶液中,并继续加热过程以延长加热时间。加入TG后的最初10分钟内快速生长,结果样品的带边位于4.0 eV。在生长之后,消除了样品在加热过程中的散射和出现以及发光的增加。透射电子显微镜和X射线衍射分析表明,圆形立方相ZnS:Mn纳米晶体的平均粒径约为3.0 nm。在添加TG之后约15分钟发光。发射位于585 nm附近,这表明颗粒内部掺入了Mn。发光强度随时间增加并在加热过程的第二步达到饱和。最后,我们提出了一个解释ZnS:Mn纳米粒子的散射和发光特性的形成和变化的模型。该模型基于反应第一步和第二步中合成的成核步骤和生长步骤的分离。这种分离直接影响发光的ZnS:Mn纳米晶体的实现。

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