| Literature DB >> 21686162 |
Xiao-Dong Zhang1, Mei-Li Guo, Di Wu, Pei-Xun Liu, Yuan-Ming Sun, Liang-An Zhang, Yi She, Qing-Fen Liu, Fei-Yue Fan.
Abstract
Gold nanoclusters have the tunable optical absorption property, and are promising for cancer cell imaging, photothermal therapy and radiotherapy. First-principle is a very powerful tool for design of novel materials. In the present work, structural properties, band gap engineering and tunable optical properties of Ag-doped gold clusters have been calculated using density functional theory. The electronic structure of a stable Au(20) cluster can be modulated by incorporating Ag, and the HOMO-LUMO gap of Au(20-) (n)Ag(n) clusters is modulated due to the incorporation of Ag electronic states in the HOMO and LUMO. Furthermore, the results of the imaginary part of the dielectric function indicate that the optical transition of gold clusters is concentration-dependent and the optical transition between HOMO and LUMO shifts to the low energy range as the Ag atom increases. These calculated results are helpful for the design of gold cluster-based biomaterials, and will be of interest in the fields of radiation medicine, biophysics and nanoscience.Entities:
Keywords: electronic structure; first-principles; gold clusters; optical properties
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Year: 2011 PMID: 21686162 PMCID: PMC3116168 DOI: 10.3390/ijms12052972
Source DB: PubMed Journal: Int J Mol Sci ISSN: 1422-0067 Impact factor: 5.923
Figure 1.Calculated ground state geometries of Au20Ag.
Figure 2.The partial DOS of (a) Au20Ag clusters.
Figure 3.The imaginary part of dielectric function ɛ2(ω) of Au20 clusters.
Figure 4.The tunable imaginary part of dielectric function ɛ2(ω) of Au20Ag clusters.
Figure 5.The outline of optical transition of Au20Ag clusters calculated by energy level.
Figure 6.Optical absorption of Au20Ag clusters.