This article presents the derivation of semianalytic solutions to a new 1-D photoelectron sheath model near the lunar surface. The plasma species include the cold solar wind protons, drifting Maxwellian solar wind electrons, and Maxwellian photoelectrons emitted from the surface. The semianalytic model is then numerically solved to obtain profiles of quantities of interest as functions of the vertical distance from the surface. A fully-kinetic 3-D finite-difference (FD) particle-in-cell (PIC) code is then utilized to simulate the 1-D photoelectron sheath and the results agree well with the numerical solution to the semianalytic model. A κ -distribution for solar wind electrons is also implemented to the FD-PIC code to compare with the Maxwe...
We have developed a new fully kinetic electrostatic simulation, HYBes, to study how the lunar landsc...
International audienceWe present three-dimensional fully kinetic and electromagnetic simulations of ...
This paper presents a fully-kinetic numerical investigation of plasma charging at lunar craters usin...
This paper presents a modeling and simulation study of the photoelectron sheath near uneven lunar su...
This paper considers plasma charging on the lunar surface with a focus on photoelectron sheath. The ...
This paper presents a modeling and uncertainty quantification (UQ) study of the photoelectron sheath...
This paper presents a fully-kinetic numerical investigation of photoelectron sheaths and plasma char...
[1] On the lunar dayside, photoelectrons are quasi-constantly emitted from the Moon’s surface and th...
The surface of the Moon is electrically charged by exposure to solar radiation on its dayside, as we...
This paper presents fully kinetic particle simulations of plasma charging at lunar craters with the ...
We present the first three-dimensional fully kinetic and electromagnetic simulations of the solar wi...
A fully kinetic particle-in-cell model combined with a nonhomogeneous interface immersed finite elem...
We present the first three-dimensional fully kinetic and electromagnetic simulations of the solar wi...
International audienceWe present three-dimensional fully kinetic and electromagnetic simulations of ...
The electrostatic charging of the lunar surface is caused by its interaction with the local plasma e...
We have developed a new fully kinetic electrostatic simulation, HYBes, to study how the lunar landsc...
International audienceWe present three-dimensional fully kinetic and electromagnetic simulations of ...
This paper presents a fully-kinetic numerical investigation of plasma charging at lunar craters usin...
This paper presents a modeling and simulation study of the photoelectron sheath near uneven lunar su...
This paper considers plasma charging on the lunar surface with a focus on photoelectron sheath. The ...
This paper presents a modeling and uncertainty quantification (UQ) study of the photoelectron sheath...
This paper presents a fully-kinetic numerical investigation of photoelectron sheaths and plasma char...
[1] On the lunar dayside, photoelectrons are quasi-constantly emitted from the Moon’s surface and th...
The surface of the Moon is electrically charged by exposure to solar radiation on its dayside, as we...
This paper presents fully kinetic particle simulations of plasma charging at lunar craters with the ...
We present the first three-dimensional fully kinetic and electromagnetic simulations of the solar wi...
A fully kinetic particle-in-cell model combined with a nonhomogeneous interface immersed finite elem...
We present the first three-dimensional fully kinetic and electromagnetic simulations of the solar wi...
International audienceWe present three-dimensional fully kinetic and electromagnetic simulations of ...
The electrostatic charging of the lunar surface is caused by its interaction with the local plasma e...
We have developed a new fully kinetic electrostatic simulation, HYBes, to study how the lunar landsc...
International audienceWe present three-dimensional fully kinetic and electromagnetic simulations of ...
This paper presents a fully-kinetic numerical investigation of plasma charging at lunar craters usin...