Xu Shuhong, Xu Xiaojing, Wang Chunlei, Zhao Zengxia, Wang Zhuyuan, Cui Yiping
Advanced Photonics Center, School of Electronic Science and Engineering, Southeast University, Nanjing, 210096, China.
Luminescence. 2016 Mar;31(2):312-316. doi: 10.1002/bio.3056. Epub 2015 Nov 10.
The optical and bonding characteristics of doping ZnSe quantum dots (QDs) were investigated. Cd-, Mn-, Ag- and Cu-doped ZnSe were synthesized in aqueous solution. Theoretically, the intensity of the Cd-Se bond was similar to that of the Zn-Se bond, which illustrates that Cd can be doped into ZnSe materials at any ratio. We found that Mn-Se bonding was stronger than Zn-Se bonding. Ag-doped ZnSe nanoclusters show the same bonding and configuration as Cu-doped ZnSe. Moreover, Cd can be doped into ZnSe using both the substitution- and vacancy-doping method. For Mn-doped ZnSe clusters, small amounts of Mn impurity lead to stronger bonding with Se, but larger amounts of Mn impurity led to the formation of a Mn-Mn metal bond. The theoretical results show that it is difficult to form a vacancy-doping cluster for Mn-doped ZnSe materials. In experiments, the absorption and photoluminescence (PL) spectral wavelengths of Mn-doped ZnSe nanocrystals were the same as those of pure ZnSe nanocrystals, showing that the Mn impurity is not doped into ZnSe nanocrystals. Ag- and Cu-doped ZnSe nanocrystals have the same PL characteristics. The doping of an impurity is related to the solubility product, and not the bonding intensity.
研究了掺杂ZnSe量子点(QDs)的光学和键合特性。在水溶液中合成了Cd、Mn、Ag和Cu掺杂的ZnSe。理论上,Cd-Se键的强度与Zn-Se键的强度相似,这表明Cd可以以任何比例掺杂到ZnSe材料中。我们发现Mn-Se键比Zn-Se键更强。Ag掺杂的ZnSe纳米团簇与Cu掺杂的ZnSe具有相同的键合和构型。此外,Cd可以通过取代掺杂和空位掺杂方法掺杂到ZnSe中。对于Mn掺杂的ZnSe团簇,少量的Mn杂质导致与Se的键合更强,但大量的Mn杂质导致形成Mn-Mn金属键。理论结果表明,对于Mn掺杂的ZnSe材料,很难形成空位掺杂团簇。在实验中,Mn掺杂的ZnSe纳米晶体的吸收和光致发光(PL)光谱波长与纯ZnSe纳米晶体相同,表明Mn杂质没有掺杂到ZnSe纳米晶体中。Ag和Cu掺杂的ZnSe纳米晶体具有相同的PL特性。杂质的掺杂与溶度积有关,而不是与键合强度有关。