Carbon is a common element in the natural world. It is the fundamental composition of creatures on the earth. Moreover, carbon also plays important roles in human activity[
Chinese Optics Letters, Volume. 18, Issue 8, 083001(2020)
Periphery excitation of laser-induced CN fluorescence in plasma using laser-induced breakdown spectroscopy for carbon detection
Carbon is hard to be sensitively detected in laser-induced breakdown spectroscopy (LIBS). The optical emission can be significantly enhanced by resonantly exciting CN radicals in the plasma center using LIBS assisted with laser-induced fluorescence (LIBS-LIF). However, the nitrogen source for CN formation is provided by ambient gas. Therefore, we propose a new approach of periphery excitation in plasma to improve CN fluorescence. The optical and spatial characteristics of CN radicals in plasma were discussed. A fluorescence map was established by combining focal point location and fluorescent intensity, demonstrating that plasma periphery had 4.2 times stronger fluorescence than the center.
Carbon is a common element in the natural world. It is the fundamental composition of creatures on the earth. Moreover, carbon also plays important roles in human activity[
Laser-induced breakdown spectroscopy (LIBS) is a promising spectrometry based on laser ablation, in which elemental information is deduced by analyzing the spectrum emitting from laser-induced plasma on samples[
LIBS assisted with laser-induced fluorescence (LIBS-LIF) is a powerful modification to enhance the LIBS atomic spectrum by 2–3 orders of magnitude[
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The schematic diagram of the experimental setup in this work is shown in Fig.
Figure 1.Experimental setup in this work.
Regardless of fine-structure energy levels in molecular rotation, the CN radicals in different electronic and vibrational levels can be described by molecular Boltzmann distribution:
is the total population of CN radicals; and are the electronic and vibrational levels, respectively; is the degeneracy; is the partition functions; is level energy; is temperature; is Boltzmann constant. Under the local thermodynamic equilibrium (LTE) condition, the vibrational temperature is equal to the electronic temperature. Equation (
Therefore, the population in different vibrational levels of the ground level is
The relative populations depending on temperature according to Eq. (
Figure 2.Relative population and its first derivative of CN radicals in
The transitions of the violet system () in CN radicals[
Figure 3.Spectra of the
Generally, the excitation laser is focused on the plasma center, where the highest particle density locates. But, the CN radical behaves differently in the plasma, whose forming process needs a nitrogen source provided by the ambient gas (air). The chemical reaction process is shown in Fig.
Figure 4.Process of laser-induced CN fluorescence in LIBS: (a) ablation, (b) atomization, (c) combination, and (d) excitation.
To make a demonstration, an XY coordinate system is defined and shown in Fig.
Figure 5.Self-defined XY coordinate system on the plasma.
Combining the fluorescent intensities and the excitation location information, a map is established in Fig.
Figure 6.Intensity map of CN
At the top of the periphery (point B, , ), the fluorescent intensity reached a peak value. The probable reason is vertical laser ablation, resulting in more atomization at the laser propagation path. Compared with conventional excitation point A in the map, the fluorescent intensity in optimized point B was improved by 4.2 times. The spectral enhancement factor of LIF was optimized to be 1281 in LIBS.
In summary, a new approach of periphery excitation was proposed to further improve carbon sensitivity in LIBS-LIF. Conventionally, the excitation location is at the plasma center. However, carbon and nitrogen combined at the plasma periphery because the nitrogen source was provided by the ambient gas. The spatial characteristic of resonant excitation at the plasma was investigated, demonstrating that the periphery excitation had 4.2 times stronger fluorescence than the center excitation. The LIF enhancement factor was optimized to 1281. This Letter provides an effective method to realize high sensitivity for carbon detection in LIBS. Further investigation on detailed mechanism and simulation of CN spatial characteristics under different experimental conditions will be conducted in the future.
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Nan Zhao, Jiaming Li, Qiongxiong Ma, Liang Guo, Qingmao Zhang, "Periphery excitation of laser-induced CN fluorescence in plasma using laser-induced breakdown spectroscopy for carbon detection," Chin. Opt. Lett. 18, 083001 (2020)
Category: Spectroscopy
Received: May. 9, 2020
Accepted: Jun. 10, 2020
Posted: Jun. 10, 2020
Published Online: Jul. 10, 2020
The Author Email: Jiaming Li (jmli@m.scnu.edu.cn)