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Single-Walled Carbon Nanotubes, Carbon Nanofibers and Laser-Induced Incandescence

机译:单壁碳纳米管,碳纳米纤维和激光诱导白炽灯

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Laser induced incandescence applied to a heterogeneous, multi-element reacting flows is characterized by a temporally resolved emission spectra, time-resolved emission at selected detection wavelengths and fluence dependence. Laser fluences above 0.6 Joules per square centimeter at 1064 nm initiate laser-induced vaporization, yielding a lower incandescence intensity, as found through fluence dependence measurements. Spectrally derived temperatures show that values of excitation laser fluence beyond this value lead to a super-heated plasma, well above the vaporization of temperature of carbon. The temporal evolution of the emission signal at these fluences is consistent with plasma dissipation processes, not incandescence from solid-like structures.

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