← back to search

Markus H. Thoma

Justus-Liebig-Universität Gießen · DE
Area of research
Atomic and Molecular Physics, and Optics · Astronomy and Astrophysics
Research interest
Research interests include Dust and Plasma Wave Phenomena, Ionosphere and magnetosphere dynamics, High-Energy Particle Collisions Research, and Quantum Chromodynamics and Particle Interactions.
h-index
41
citations
6,601
works
416
NIH funding
primary concept
email

Recent publications

Experiments and modeling of dust particle heating resulting from changes in polarity switching in the PK-4 microgravity laboratory
Physics of Plasmas 2025cited by 4position: middledoi
Experiments and modeling of dust particle heating resulting from changes in polarity switching in the PK-4 microgravity laboratory
Physics of Plasmas 2025cited by 4position: contributordoi
Determination of the Electric Field by Particle Tracking in a Plasma Sheath Region during Free Fall
Microgravity Science and Technology 2025cited by 2position: contributordoi
Wave dispersion in a three-dimensional complex plasma solid under microgravity conditions.
2025cited by 0position: contributordoi
Particle-resolved study of the onset of turbulence
Physical Review Research 2024cited by 10position: contributordoi
Tilted dust-acoustic waves in low-pressure DC complex plasma
Physics of Plasmas 2024cited by 3position: contributordoi
Observation of Le Sage gravity analog in complex plasma
Physical Review E 2024cited by 1position: contributordoi
Complex plasma research under microgravity conditions
npj Microgravity 2023cited by 18position: firstdoi
Dust Cloud Convections in Inhomogeneously Heated Plasmas in Microgravity
Microgravity Science and Technology 2023cited by 6position: contributordoi
Complex plasma research under microgravity conditions.
2023cited by 3position: contributordoi
COMPACT—a new complex plasma facility for the ISS
Plasma Physics and Controlled Fusion 2022cited by 31position: middledoi
Influence of temporal variations in plasma conditions on the electric potential near self-organized dust chains
Physics of Plasmas 2022cited by 20position: middledoi
Influence of temporal variations in plasma conditions on the electric potential near self-organized dust chains
Physics of Plasmas 2022cited by 20position: contributordoi
Cold Atmospheric Plasma Reduces Vessel Density and Increases Vascular Permeability and Apoptotic Cell Death in Solid Tumors
Cancers 2022cited by 11position: middledoi
Cold Atmospheric Plasma Reduces Vessel Density and Increases Vascular Permeability and Apoptotic Cell Death in Solid Tumors.
2022cited by 6position: contributordoi
Publisher's Note: “Influence of temporal variations in plasma conditions on the electric potential near self-organized dust chains” [Phys. Plasmas <b>29</b>, 023701 (2022)]
Physics of Plasmas 2022cited by 0position: middledoi
Publisher's Note: “Influence of temporal variations in plasma conditions on the electric potential near self-organized dust chains” [Phys. Plasmas <b>29</b>, 023701 (2022)]
Physics of Plasmas 2022cited by 0position: contributordoi
Effect of ionization waves on dust chain formation in a DC discharge
Journal of Plasma Physics 2021cited by 19position: middledoi
Excitation of progressing dust ionization waves on PK-4 facility
Physics of Plasmas 2021cited by 11position: contributordoi
Quantitative evaluation of laser-induced fluorescence in magnetized low-pressure argon plasma
Physics of Plasmas 2021cited by 3position: contributordoi
Disalignment rate coefficient of argon 2p <sub>8</sub> due to nitrogen collision
Journal of Physics B: Atomic, Molecular and Optical Physics 2021cited by 0position: contributordoi
Correlation and spectrum of dust acoustic waves in a radio-frequency plasma using PK-4 on the International Space Station
Physics of Plasmas 2020cited by 21position: middledoi
Correlation and spectrum of dust acoustic waves in a radio-frequency plasma using PK-4 on the International Space Station
Physics of Plasmas 2020cited by 21position: contributordoi
Simulation of electrorheological plasmas with superthermal ion drift
Physics of Plasmas 2020cited by 15position: contributordoi
Particle charge in PK-4 dc discharge from ground-based and microgravity experiments
Physics of Plasmas 2019cited by 44position: contributordoi
Guest Editorial Special Issue on the Physics of Dusty Plasmas 2015
IEEE Transactions on Plasma Science 2016cited by 1position: middledoi

Grants

No grants ingested yet.

Frequent collaborators

· 17 papers (2019–2025)Hubertus M. Thomas · Center for Astrophysics Harvard & Smithsonian14 papers (2019–2025)О. Ф. Петров · Joint Institute for High Temperatures7 papers (2020–2025) · 6 papers (2019–2025)Péter Hartmann · HUN-REN Wigner Research Centre for Physics5 papers (2021–2022)Mikhail Pustylnik · Deutsches Zentrum für Luft- und Raumfahrt e. V. (DLR)5 papers (2020–2025)Uwe Konopka · Weatherford College5 papers (2016–2025)Evdokiya Kostadinova · Auburn University4 papers (2021–2025)A. M. Lipaev · Joint Institute for High Temperatures4 papers (2020–2022)Michael Kretschmer · Deutsches Zentrum für Luft und Raumfahrt4 papers (2023–2025) · 4 papers (2022–2025)Edward Thomas · Auburn University3 papers (2016–2025)Lorin Matthews · Baylor University3 papers (2021–2022)A. Melzer · Universitätsmedizin Greifswald3 papers (2022–2023)Truell Hyde · Baylor University3 papers (2021–2022)Evdokiya Kostadinova · Auburn University3 papers (2022–2025)A. S. Schmitz · Justus-Liebig-Universität Gießen3 papers (2023–2025)Katrina Vermillion · Baylor University3 papers (2021–2022)A. V. Zobnin · Joint Institute for High Temperatures3 papers (2021–2022) · 2 papers (2016–2025)