4.6 Article

Characterization of an atmospheric helium plasma jet by relative and absolute optical emission spectroscopy

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IOP PUBLISHING LTD
DOI: 10.1088/0963-0252/22/1/015011

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资金

  1. China Scholarship Council (CSC)
  2. Belgian Government through the IAP program [P06/08]
  3. Spanish Ministerio de Ciencia e Innovacion [ENE2010-19542]
  4. National Natural Science Foundation of China [10875048, 51077063]
  5. Research Fund for the Doctoral Program of Higher Education of China [20100142110005]
  6. Chang Jiang Scholars Program, Ministry of Education, People's Republic of China

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The characteristics of plasma temperatures (gas temperature and electron excitation temperature) and electron density in a pulsed-dc excited atmospheric helium plasma jet are studied by relative and absolute optical emission spectroscopy (OES). High-resolution OES is performed for the helium and hydrogen lines for the determination of electron density through the Stark broadening mechanism. A superposition fitting method composed of two component profiles corresponding to two different electron densities is developed to fit the investigated lines. Electron densities of the orders of magnitude of 10(21) and 10(20) m(-3) are characterized for the center and edge regions in the jet discharge when the applied voltage is higher than 13.0 kV. The atomic state distribution function (ASDF) of helium demonstrates that the discharge deviates from the Boltzmann-Saha equilibrium state, especially for the helium lower levels, which are significantly overpopulated. Local electron excitation temperatures T-13 and T-spec corresponding to the lower and upper parts of the helium ASDF are defined and found to range from 1.2 eV to 1.4 eV and 0.2 eV to 0.3 eV, respectively. A comparative analysis shows that the Saha balance is valid in the discharge for helium atoms at high excited states.

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