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A General Strategy for Nanohybrids Synthesis via Coupled Competitive Reactions Controlled in a Hybrid Process

机译:通过混合过程控制的竞争竞争反应合成纳米杂化物的一般策略

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A new methodology based on core alloying and shell gradient-doping are developed for the synthesis of nanohybrids, realized by coupled competitive reactions, or sequenced reducing-nucleation and co-precipitation reaction of mixed metal salts in a microfluidic and batch-cooling process. The latent time of nucleation and the growth of nanohybrids can be well controlled due to the formation of controllable intermediates in the coupled competitive reactions. Thus, spatiotemporal-resolved synthesis can be realized by the hybrid process, which enables us to investigate nanohybrid formation at each stage through their solution color changes and TEM images. By adjusting the bi-channel solvents and kinetic parameters of each stage, the primary components of alloyed cores and the second components of transition metal doping ZnO or Al2O3 as surface coatings can be successively formed. The core alloying and shell gradient-doping strategy can efficiently eliminate the crystal lattice mismatch in different components. Consequently, varieties of gradient core-shell nanohybrids can be synthesized using CoM, FeM, AuM, AgM (M = Zn or Al) alloys as cores and transition metal gradient-doping ZnO or Al2O3 as shells, endowing these nanohybrids with unique magnetic and optical properties (e.g., high temperature ferromagnetic property and enhanced blue emission).
机译:开发了一种基于核合金化和壳梯度掺杂的新方法来合成纳米杂化物,该方法通过偶联竞争反应,或在微流控和分批冷却过程中按顺序进行混合金属盐的还原成核和共沉淀反应来实现。由于偶联竞争反应中可控中间体的形成,可以很好地控制成核的潜伏时间和纳米杂化物的生长。因此,通过混合过程可以实现时空分辨的合成,这使我们能够通过溶液颜色变化和TEM图像研究纳米杂化在每个阶段的形成。通过调节各阶段的双通道溶剂和动力学参数,可将合金芯的主要成分和掺杂ZnO或Al 2 O 3 的过渡金属的第二成分作为表面涂层可以依次形成。核合金化和壳层梯度掺杂策略可以有效消除不同组分中的晶格失配。因此,可以使用CoM,FeM,AuM,AgM(M = Zn或Al)合金作为核芯和过渡金属梯度掺杂ZnO或Al 2 O 3 作为壳,赋予这些纳米杂化物独特的磁性和光学特性(例如高温铁磁特性和增强的蓝色发射)。

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