TY - JOUR
T1 - A kinetic–moment framework for electron energy dynamics in capacitively coupled plasmas
T2 - absorption, conversion, transport, and dissipation
AU - Yao, Jianxiong
AU - Zhang, Zeduan
AU - He, Feng
AU - Miao, Jinsong
AU - Ouyang, Jiting
AU - Zheng, Bocong
N1 - Publisher Copyright:
© 2026 IOP Publishing Ltd. All rights, including for text and data mining, AI training, and similar technologies, are reserved. This article is available under the terms of the IOP-Standard License.
PY - 2026/7
Y1 - 2026/7
N2 - Understanding electron energy dynamics in low-temperature plasmas such as capacitively coupled plasmas (CCPs), including energy absorption, conversion, transport, and dissipation, is essential for interpreting discharge physics and process applications. We propose a kinetic-moment framework based on particle-in-cell/Monte Carlo collision (PIC/MCC) simulations. The framework reconstructs the first three velocity moments of the Boltzmann equation directly from PIC/MCC data and enables a quantitative, self-consistent description of electron energy dynamics in low-pressure CCPs. Importantly, to clarify energy conversion among electromagnetic energy, electron fluid kinetic (mechanical) energy, and electron thermal (internal) energy, we further separate the total energy transport equation into kinetic- and thermal-energy equations. This decomposition identifies, in addition to direct collisional processes, an important kinetic-to-thermal conversion channel through pressure–strain interaction. We find that, under the present low pressure condition, electrons gain directed kinetic energy in the sheath and convert it locally into thermal energy through pressure–strain interaction and collisions, after which the thermal energy is transported into the bulk and dissipated mainly through inelastic electron–neutral collisions. The pressure–strain interaction can be further decomposed into isotropic and anisotropic contributions, where the former corresponds to reversible energy conversion associated with volumetric compression and expansion, whereas the latter, associated with incompressible deformation, dominates the net dissipation of kinetic energy into thermal energy. More broadly, the results show coexistence of localized energy conversion near the sheath and nonlocal energy transport from the sheath to the bulk dominated by microscopic heat flux. The heat flux deviates strongly from Fourier-type closure based solely on local temperature gradients. Overall, this framework combines kinetic fidelity with fluid-level interpretability and extends power-absorption analysis to a comprehensive description of energy evolution in nonequilibrium plasmas.
AB - Understanding electron energy dynamics in low-temperature plasmas such as capacitively coupled plasmas (CCPs), including energy absorption, conversion, transport, and dissipation, is essential for interpreting discharge physics and process applications. We propose a kinetic-moment framework based on particle-in-cell/Monte Carlo collision (PIC/MCC) simulations. The framework reconstructs the first three velocity moments of the Boltzmann equation directly from PIC/MCC data and enables a quantitative, self-consistent description of electron energy dynamics in low-pressure CCPs. Importantly, to clarify energy conversion among electromagnetic energy, electron fluid kinetic (mechanical) energy, and electron thermal (internal) energy, we further separate the total energy transport equation into kinetic- and thermal-energy equations. This decomposition identifies, in addition to direct collisional processes, an important kinetic-to-thermal conversion channel through pressure–strain interaction. We find that, under the present low pressure condition, electrons gain directed kinetic energy in the sheath and convert it locally into thermal energy through pressure–strain interaction and collisions, after which the thermal energy is transported into the bulk and dissipated mainly through inelastic electron–neutral collisions. The pressure–strain interaction can be further decomposed into isotropic and anisotropic contributions, where the former corresponds to reversible energy conversion associated with volumetric compression and expansion, whereas the latter, associated with incompressible deformation, dominates the net dissipation of kinetic energy into thermal energy. More broadly, the results show coexistence of localized energy conversion near the sheath and nonlocal energy transport from the sheath to the bulk dominated by microscopic heat flux. The heat flux deviates strongly from Fourier-type closure based solely on local temperature gradients. Overall, this framework combines kinetic fidelity with fluid-level interpretability and extends power-absorption analysis to a comprehensive description of energy evolution in nonequilibrium plasmas.
KW - capacitively coupled plasmas
KW - electron heating
KW - electron power absorption
KW - energy transport
KW - moments of Boltzmann equation
KW - particle in cell simulations
UR - https://www.scopus.com/pages/publications/105044281644
U2 - 10.1088/1361-6595/ae832e
DO - 10.1088/1361-6595/ae832e
M3 - Article
AN - SCOPUS:105044281644
SN - 0963-0252
VL - 35
JO - Plasma Sources Science and Technology
JF - Plasma Sources Science and Technology
IS - 7
M1 - 075004
ER -