| Literature DB >> 28793408 |
Yunbo Shi1,2, Hao Guo3,4, Jiangtao Yang5,6, Miaomiao Zhao7,8, Jun Liu9,10, Chenyang Xue11,12, Jun Tang13,14.
Abstract
In this work, the wafer-scale silver nanoparticles fabricated by a self-assembly method was demonstrated based on a magnetron sputtering and plasma treatment process. Silver nanoparticles of different sizes and shapes were prepared, and the effects of the plasma treatment time, plasma gas composition, and power were systematically investigated to develop a method for low-cost and large-scale fabrication of silver nanoparticles. Furthermore, the surface-enhanced Raman scattering experiments: crystal violet, as the probe, was absorbed on the silver nanoparticles film of different size and density, and get the phenomena of surface-enhanced Raman scattering and surface-enhanced fluorescence. The results show that the proposed technique provides a rapid method for the fabrication of silver nanomaterial; the method is adaptable to large-scale production and is compatible with the fabrication of other materials and biosensors.Entities:
Keywords: biochemical sensing; nanoparticles; plasma-induce; self-assembly; wafer-scale
Year: 2015 PMID: 28793408 PMCID: PMC5455624 DOI: 10.3390/ma8073806
Source DB: PubMed Journal: Materials (Basel) ISSN: 1996-1944 Impact factor: 3.623
Figure 1(a) Schematic illustration of the fabrication process of the silver nanomaterials; (b) The wafer-scale silver nanomaterials fabricated by the Argon and/or Oxygen atmosphere plasma technology.
Figure 2Controlled preparation of nanoparticles by argon or oxygen atmosphere plasma technology under different treatment time (2 min, 6 min, and 10 min) in the power of 120 W. (a) By Ar atmosphere; (b,c) By oxygen atmosphere and the corresponding energy spectrum.
Figure 3Scanning electron microscopy images of silver nanomaterials fabricated at different plasma power: (a) 5 W; (b) 10 W; (c) 20 W; under the O2:Ar ratio is 25%:75%.
Figure 4The size of wafer-scale low-dimensional nanomaterilas in the different area. (a) the wafer-scale nanomaterials fabricated by the Oxygen atmosphere; (b) the scanning electron microscope (SEM) image for the nanoparticles; (c) the corresponding energy spectrum.
Figure 5Raman and photoluminescence spectrum of the silver nanomaterials. (a) At the different area of the wafer-scale nanomaterials; (b) Different treatment time by the oxygen atmosphere; (c,d) Raman and PL under different power by the argon atmosphere.