| Literature DB >> 20596290 |
Z Zheng, L Liao, B Yan, J X Zhang, Hao Gong, Z X Shen, T Yu.
Abstract
Hematite nanoflakes have been synthesized by a simple heat oxide method and further treated by Argon plasmas. The effects of Argon plasma on the morphology and crystal structures of nanoflakes were investigated. Significant enhancement of field-induced electron emission from the plasma-treated nanoflakes was observed. The transmission electron microscopy investigation shows that the plasma treatment effectively removes amorphous coating and creates plenty of sub-tips at the surface of the nanoflakes, which are believed to contribute the enhancement of emission. This work suggests that plasma treatment technique could be a direct means to improve field-emission properties of nanostructures.Entities:
Year: 2009 PMID: 20596290 PMCID: PMC2894362 DOI: 10.1007/s11671-009-9363-1
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Figure 1SEM images of the top surfaces of Fe foils heated for 15 h at 260 °C.Insetshows the high-magnification SEM images of the nanoflake tip and thecircleshows the radius of curvature at the nanoflake tip
Figure 2aXRD patterns andbRaman spectra of the as-prepared sample and Ar plasma-treated samples
Figure 3aTEM image of the α-Fe2O3nanoflake before plasma treatment,bHigh-resolution TEM image ofa,cTEM image of the α-Fe2O3nanoflake after plasma treatment.Insetofcshows the high-resolution TEM image thehighlightedpart
Figure 4aDark-field andbbright-field TEM images of the tip of the α-Fe2O3nanoflake after plasma treatment
Figure 5aTypical field-emission current density–applied field (J–E) curves of the α-Fe2O3nanoflakes films before and after 100 W Ar plasma treatment.Insetshows theF–Nplots (ln(J/E2) vs. 1/E) accordingly, which exhibits a good linear dependence (solid line is the fitting result).bLong-term stability measurement of field-emission property of nanoflake films after Ar plasma treatment