Electron number density measurements from the frequency shift of a plasma defect state in a one-dimensional photonic crystal

被引:1
作者
Pai, David Z. [1 ]
Righetti, Fabio [2 ]
Wang, Benjamin C. [2 ]
Biggs, David R. [2 ]
Cappelli, Mark A. [2 ]
机构
[1] Univ Poitiers, Inst Pprime, CNRS UPR 3346, ENSMA, F-86962 Futuroscope, France
[2] Stanford Univ, Stanford Plasma Phys Lab, Dept Mech Engn, Stanford, CA 94305 USA
关键词
Plasma Physics; WAVE;
D O I
10.1140/epjd/e2019-90617-y
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
We describe the use of a plasma-functionalized vacancy defect in a one-dimensional microwave photonic crystal to experimentally measure the electron number density of glow discharges at 5-40 torr. The photonic crystal consists of spaced alumina plates with a built-in void defect that breaks the repeating symmetry of the layers, resulting in narrow defect transmission peaks within relatively deep bandgaps. We exploit the sensitivity of the defect transmission at 28 GHz to varying plasma density to measure electron number densities as low as 2x10(9)cm(-3). Defect energy shifts are proportional to plasma density, in reasonable agreement with theoretical predictions of photonic crystal performance. At higher discharge current densities and discharge pressure, we see a departure from the model predictions, largely attributable to the heating of the alumina structure, causing expansion and changes in the lattice parameter that counteract the effect of the increased plasma density on the defect state frequency.
引用
收藏
页数:12
相关论文
共 22 条
[1]   MILLIMETER-WAVE DIELECTRIC MEASUREMENT OF MATERIALS [J].
AFSAR, MN ;
BUTTON, KJ .
PROCEEDINGS OF THE IEEE, 1985, 73 (01) :131-153
[2]   One-dimensional electromagnetic band gap structures formed by discharge plasmas in a waveguide [J].
Arkhipenko, V. I. ;
Callegari, Th. ;
Simonchik, L. V. ;
Sokoloff, J. ;
Usachonak, M. S. .
JOURNAL OF APPLIED PHYSICS, 2014, 116 (12)
[3]   One-dimensional electromagnetic band gap plasma structure formed by atmospheric pressure plasma inhomogeneities [J].
Babitski, V. S. ;
Callegari, Th. ;
Simonchik, L. V. ;
Sokoloff, J. ;
Usachonak, M. S. .
JOURNAL OF APPLIED PHYSICS, 2017, 122 (08)
[4]   Tunable microwave pulse generation using discharge plasmas [J].
Biggs, David R. ;
Cappelli, Mark A. .
APPLIED PHYSICS LETTERS, 2016, 109 (12)
[5]   Frequency downshifting and trapping of an electromagnetic wave by a rapidly created spatially periodic plasma [J].
Faith, J ;
Kuo, SP ;
Huang, J .
PHYSICAL REVIEW E, 1997, 55 (02) :1843-1851
[6]  
Griem H.R., 1997, PRINCIPLES PLASMA SP
[7]   Solving the Boltzmann equation to obtain electron transport coefficients and rate coefficients for fluid models [J].
Hagelaar, GJM ;
Pitchford, LC .
PLASMA SOURCES SCIENCE & TECHNOLOGY, 2005, 14 (04) :722-733
[8]   Laser Thomson scattering measurements of electron density and temperature profiles of a striated plasma in a plasma display panel (PDP)-like discharge [J].
Hassaballa, S ;
Tomita, K ;
Kim, YK ;
Uchino, K ;
Hatanaka, H ;
Kim, YM ;
Park, CH ;
Muraoka, K .
JAPANESE JOURNAL OF APPLIED PHYSICS PART 2-LETTERS & EXPRESS LETTERS, 2005, 44 (12-15) :L442-L444
[9]   Measurement of electron density in a microdischarge-integrated device operated in nitrogen at atmospheric pressure using a millimetre-wave transmission method [J].
Ito, Yosuke ;
Sakai, Osamu ;
Tachibana, Kunihide .
PLASMA SOURCES SCIENCE & TECHNOLOGY, 2010, 19 (02)
[10]  
Joannopoulos J.D., 2011, Photonic Crystals: Molding the Flow of Light