Key Laboratory for Special Functional Materials, Henan University, Kaifeng, 475004, PR China.
Dalton Trans. 2009 Dec 21(47):10534-40. doi: 10.1039/b917674h. Epub 2009 Oct 30.
High quality zinc blende ZnSe and ZnSe/ZnS core/shell nanocrystals have been synthesized by two converse injection methods (i.e. zinc precursor injection or selenium precursor injection) when Se-ODE complex was chosen as the phosphine-free selenium precursor. Absorption spectroscopy, fluorescence spectroscopy, X-ray diffraction (XRD), and transmission electron microscopy (TEM) were used to characterize the as-synthesized ZnSe and ZnSe/ZnS nanocrystals. The quality of the as-prepared ZnSe nanocrystals reached the same high level compared with the method using phosphine selenium precursors since the quantum yields were between 40 and 60% and photoluminescence (PL) full width at half-maximum (FWHM) was well controlled between 14 and 17 nm. The parameter window for the growth of high quality ZnSe nanocrystals was found to be much broader and monodisperse ZnSe nanocrystals were synthesized successfully even when the reaction temperature was set as low as 240 degrees C. As cores, such zinc blende ZnSe nanocrystals were also used to synthesize ZnSe/ZnS core/shell nanocrystals with high fluorescence quantum yields of 70%. Cu(2+) or Mn(2+) doped ZnSe nanocrystals were also synthesized by simply modifying this phosphine-free method. The emission range has been extended to 500 and 600 nm with the use of Cu(2+) and Mn(2+) dopants compared with the emission coverage of ZnSe at around 400 nm. This is the first totally "green approach" (i.e. phosphine-free synthesis) for the synthesis of high quality ZnSe, ZnSe/ZnS, and Cu(2+) or Mn(2+) doped ZnSe nanocrystals.
高质量的闪锌矿型 ZnSe 和 ZnSe/ZnS 核壳纳米晶体已通过两种逆注入方法(即锌前体注入或硒前体注入)合成,当选择 Se-ODE 配合物作为无膦硒前体时。采用吸收光谱、荧光光谱、X 射线衍射(XRD)和透射电子显微镜(TEM)对合成的 ZnSe 和 ZnSe/ZnS 纳米晶体进行了表征。与使用膦硒前体的方法相比,所制备的 ZnSe 纳米晶体的质量达到了相同的高水平,因为量子产率在 40%至 60%之间,光致发光(PL)半峰全宽(FWHM)得到了很好的控制,在 14 至 17nm 之间。发现高质量 ZnSe 纳米晶体生长的参数窗口要宽得多,即使反应温度低至 240°C,也能成功合成单分散性 ZnSe 纳米晶体。作为核,这种闪锌矿型 ZnSe 纳米晶体也被用于合成荧光量子产率高达 70%的 ZnSe/ZnS 核壳纳米晶体。通过简单地修改这种无膦方法,也合成了 Cu(2+)或 Mn(2+)掺杂的 ZnSe 纳米晶体。与 ZnSe 约 400nm 的发射覆盖范围相比,使用 Cu(2+)和 Mn(2+)掺杂剂可以将发射范围扩展到 500nm 和 600nm。这是首次完全采用“绿色方法”(即无膦合成)合成高质量的 ZnSe、ZnSe/ZnS 和 Cu(2+)或 Mn(2+)掺杂的 ZnSe 纳米晶体。