| Literature DB >> 20596277 |
Ram Manohar Yadav, Pramod Singh Dobal, T Shripathi, R S Katiyar, O N Srivastava.
Abstract
This investigation deals with the effect of growth temperature on the microstructure, nitrogen content, and crystallinity ofEntities:
Year: 2008 PMID: 20596277 PMCID: PMC2894332 DOI: 10.1007/s11671-008-9225-2
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Figure 1aSEM image of large area of as-grown nanotubes/nanotubes bundles;bthe magnified image of a nanotubes bundle as shown in (a)
Figure 2TEM images of nanotubes grown ata850 °C,b900 °C, andc950 °C temperatures
Figure 3The diameter distribution of C–N nanotubes synthesized at three different temperatures
Figure 4XPS spectra of C–N nanotubes grown at different temperatures;aC 1s spectra,bN 1s spectra, andcvariation of nitrogen content in nanotubes with growth temperature
Figure 5Raman spectra of C–N nanotubes at different growth temperatures;a850 °C,b900 °C, andc950 °C recorded using 514.5 nm line of Ar-ion laser
Figure 6Variation of Raman intensity ratio of D and G bands (ID/IG) at different growth temperatures of nanotubes
Figure 7Variation of FWHM of D and G bands with increasing growth temperature
Peak frequencies of Raman D and G mode of C–N nanotubes at three different growth temperatures
| Growth temperature (°C) | Peak frequency (cm−1) | |
|---|---|---|
| D-mode | G-mode | |
| 850 | 1353.08 | 1578.36 |
| 900 | 1348.37 | 1573.28 |
| 950 | 1344.85 | 1569.32 |