Department of Chemistry and Biochemistry, University of California, Santa Cruz, CA 95064, USA.
Nanoscale. 2010 Jul;2(7):1213-21. doi: 10.1039/c0nr00056f. Epub 2010 May 26.
ZnS : Cu,Cl/ZnS core-shell nanocrystals (NCs) have been synthesized via a facile aqueous synthesis method. The shell growth of the NCs was observed via a red-shift in the UV-Vis absorption spectra with increasing NC size. The Cu photoluminescence (PL) emission was enhanced by capping with a thin ZnS shell. The ZnS : Cu (0.2%) and ZnS : Cu (0.5%) show a more pronounced red-shift in the apparent PL peak position as well as a 37% and 67% increase in emission intensity, respectively, in comparison to the undoped NCs. The observed red-shift is mainly due to an increase in intensity of the Cu PL emission. The 1% Cu-doped NCs exhibit very little red-shift because the observed emission is dominated by the Cu-dopant and thus nearly independent of the size of the NCs. The increase in Cu emission is evidence that Cu atoms occupying non-emissive surface sites in doped ZnS NCs were encapsulated by the ZnS shell. Extended X-Ray Absorption Fine Structure (EXAFS) data also suggests that the Cu had slightly more neighbors upon growth of a ZnS shell, indicating its encapsulation into the core of the NCs. The EXAFS Zn edge data also indicate greater disorder in the ZnS structure when the shell is grown, which may be attributed to the ZnS shell being more amorphous than the core NCs. This study demonstrates that core-shell structures can be used as a simple and yet powerful strategy to enhance PL properties of doped semiconductor NCs.
ZnS:Cu,Cl/ZnS 核壳纳米晶体(NCs)通过简便的水相合成方法合成。随着 NC 尺寸的增大,通过紫外-可见吸收光谱的红移观察到了壳层的生长。通过薄的 ZnS 壳的覆盖,Cu 光致发光(PL)发射得到了增强。与未掺杂的 NCs 相比,ZnS:Cu(0.2%)和 ZnS:Cu(0.5%)在明显的 PL 峰位置显示出更大的红移,发射强度分别增加了 37%和 67%。观察到的红移主要归因于 Cu PL 发射强度的增加。由于观察到的发射主要由 Cu 掺杂剂主导,因此几乎与 NCs 的尺寸无关,因此 1% Cu 掺杂的 NCs 几乎没有红移。Cu 发射的增加证明了 ZnS NCs 中占据非发射表面位置的 Cu 原子被 ZnS 壳包裹。扩展 X 射线吸收精细结构(EXAFS)数据还表明,在 ZnS 壳生长时,Cu 原子的近邻略有增加,表明其被包裹在 NCs 的核心中。EXAFS Zn 边数据还表明,当壳生长时,ZnS 结构的无序性更大,这可能归因于 ZnS 壳比核心 NCs 更非晶态。这项研究表明,核壳结构可以用作增强掺杂半导体 NCs 的 PL 性质的简单而强大的策略。