Effects of reaction parameters on the growth and optical properties of PbSe nanocrystals

被引:1
作者
Ouma, Immaculate L.A. [1 ]
Mushonga, Paul [2 ]
Onani, Martin O. [1 ]
机构
[1] Department of Chemistry, University of the Western Cape, Private Bag X17, Bellville
[2] Department of Chemistry, University of Zimbabwe, PO Box MP167, Mt Pleasant, Harare
关键词
Nanocrystals (NCs); Non-coordinating; Nucleation; PbSe; Photoluminescence (PL);
D O I
10.4028/www.scientific.net/JNanoR.34.79
中图分类号
学科分类号
摘要
Colloidal syntheses of PbSe nanocrystals (NCs) have been widely investigated and the properties of nanocrystals have been shown to vary with reaction conditions, time, concentration and chemistry of reagents as well as the surfactants used. In this work the effects of reaction temperature, solvents, ligand purity, lead and selenium sources on the optical and structural properties of PbSe nanocrystals were investigated. PbSe NCs synthesized at 90 °C were observed to be spherical and had a narrower size distribution as compared to those synthesized at higher temperatures. 1-octadecene, trioctylphosphine and oleylamine were investigated as solvents for NC synthesis with the non-coordinating solvent octadecene showing the fastest growth rate with medium sized NCs. The coordinating solvents trioctylphosphine and oleylamine produced larger and smaller NCs respectively; this could be attributed to solvent interference during NC nucleation and growth phases. Oleate ligands were used during these syntheses and the ligand purity was not observed to have a significant effect on the NC optical and structural properties. The selenium precursor used affected the NC size and their optical properties while the lead source influenced both the NC shape and size. Lead acetate produced cubic NCs which were larger than the spherical NCs obtained when lead oxide was used.
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页码:79 / 89
页数:10
相关论文
共 20 条
  • [1] Xu J., Cui D., Zhu G T., Liang P.Z., Wang Q., Xu S., Wang A.Y., Synthesis and Surface Modification of PbSe/PbS core-shell Nanocrystals for Potential Device Applications, Nanotech., 17, pp. 5428-5434, (2006)
  • [2] Mushonga P., Ouma I.L.A., Madiehe A., Meyer M., Dejene F.B., Onani M.O., Synthesis, Optical and Morphological Characterization of Doped InP/ZnSe NCs, Physica B., 439, pp. 189-192, (2014)
  • [3] Wang D., Qian J., Cai F., He S., Han S., Mu Y., Green'-Synthesized Near-Infrared PbS Quantum Dots with Silica-PEG Dual-Layer Coating: Ultrastable and Biocompatible Optical Probes for in vivo Animal Imaging, Nanotech., 23, (2012)
  • [4] An C., Tang K., Jin Y., Liu J., Lv H., Qian Y., A Simple Method to Synthesize PbE (E=S, SE) Nanocrystals, J. Cryst. Growth, 253, pp. 467-471, (2003)
  • [5] Wise F.W., Lead Salt Quantum Dots: The Limit of Strong Quantum Confinement, Accounts Chem. Res., 33, pp. 773-780, (2000)
  • [6] Ouma I.L.A., Mushonga P., Madiehe A.M., Meyer M., Dejene F.B., Onani M.O., Synthesis, Optical and Morphological Characterization of MPA-capped PbSe Nanocrystals, Physica B., 439, pp. 130-132, (2014)
  • [7] Murray C.B., Sun S., Gaschler W., Doyle H., Betley T., Kagan C.R., IBM J. Res. Dev., 45, pp. 47-56, (2001)
  • [8] Niu J., Shen H., Li X., Xu W., Wang H., Li L.S., Controlled Synthesis of High Quality PbSe and PbTe Nanocrystals with One-pot Method and Their Self-Assemblies, Colloid Surface A., 406, pp. 38-43, (2012)
  • [9] Stouwdam J.W., Shan J., Van Veggel F.C.J.M., Pattantyus-Abraham A.G., Young J.F., Raudsepp M., Photostability of Colloidal PbSe and PbSe/PbS core/shell Nanocrystals in Solution and in the Solid State, J. Phys. Chem. C., 111, pp. 1086-1092, (2007)
  • [10] Viswanatha R., Sarma D.D., Growth of Nanocrystals in Solution, In Nanomaterials Chemistry: Recent Developments and New Directions