Publikationen
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] Titel Typ Jahr

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Atmosphärendruckplasmen – auch für PlasmaNano Science? Galvanotechnik 103(2012)11. 103, 2510-2513 (2012).
Plasma and ion beam characterization by non-conventional methods. Surface and Coatings Technology. 200, 809-813 (2005).
The energy balance at substrate surfaces during plasma processing. Vacuum. 63, 385-431 (2001).
Reinigung und Oberflächenbehandlung von Daguerreotypien mittels physikalischer Plasmaverfahren. Restauratorenblätter. 37 (2020).
Staubige Plasmen: Mikropartikel als Sonden im Plasma. PlasmaNews des TechPortal VDI/Bmbf (2007).
Plasma–powder interaction: trends in applications and diagnostics. International Journal of Mass Spectrometry. 223-224, 313-325 (2003).
Die Bestimmung von Energieflüssen bei Plasma-Oberflächen-Prozessen. Galvanotechnik. 96, 2996-3007 (2005).
On the determination of energy fluxes at plasma–surface processes. Applied Physics A Materials Science & Processing. 72, 531-540 (2001).
Examples for application and diagnostics in plasma–powder interaction. New Journal of Physics. 5, 93 (2003).
Investigations on the energy influx at plasma surface processes. Acta Phys. Slovaca. 50, 439-459 (2000).
Complex (dusty) plasmas: Examples for applications and observation of magnetron-induced phenomena. Pure and Applied Chemistry. 77 (2005).
Micro-Disperse Particles in Plasmas: From Disturbing Side Effects to New Applications. Contributions to Plasma Physics. 41, 598-609 (2001).
Characterization of a broad ion beam source by determination of the energy flux. Surface and Coatings Technology. 174-175, 918-921 (2003).
Investigations on the energy influx at plasma processes by means of a simple thermal probe. Thin Solid Films. 377-378, 585-591 (2000).
Interaction of ion beams with dusty plasmas. Plasma Physics and Controlled Fusion. 48, B105-B113 (2006).
Micro-disperse particles as probes for plasma surface interaction. Thin Solid Films. 377-378, 530-536 (2000).
Charging of micro-particles in plasma–dust interaction. International Journal of Mass Spectrometry. 233, 51-60 (2004).
Energy influx from an rf plasma to a substrate during plasma processing. Journal of Applied Physics. 87, 3637 (2000).
Staubige Plasmen: Von störenden Nebeneffekten zu neuen Anwendungen. PlasmaNews des TechPortal VDI/Bmbf (2007).
SYPO Special Issue. Vacuum. 71, 347 (2003).
Investigation of a Commercial Atmospheric Pressure Plasma Jet by a Newly Designed Calorimetric Probe. IEEE Transactions on Plasma Science. 43, 1769-1773 (2015).
Phänomene in Gasentladungen: Stehende Schichten. Galvanotechnik. 101, 866-871 (2010).
Phänomene in Gasentladungen. Galvanotechnik. 103, 1080-1088 (2012).
Influence of the nozzle head geometry on the energy flux of an atmospheric pressure plasma jet. EPJ Techniques and Instrumentation. 8 (2021).
Analysis of passive calorimetric probe measurements at high energy influxes. EPJ Techniques and Instrumentation. 4 (2017).
Directionally resolved measurements of momentum transport in sputter plumes as a critical test for simulations. Journal of Vacuum Science & Technology A. 38, 033013 (2020).
Fabrication of ZnO Nanobrushes by H2–C2H2 Plasma Etching for H2 Sensing Applications. ACS Applied Materials & Interfaces. 13, 61758 (2021).
Acoustic emission by self-organising effects of micro-hollow cathode discharges. Applied Physics Letters. 112, 154102 (2018).
Deposition of SiOx thin films using hexamethyldisiloxane in atmospheric pressure plasma enhanced chemical vapour deposition. Journal of Physics: Conference Series. 1492, 012023 (2020).
Copper-Capped Carbon Nanocones on Silicon: Plasma-Enabled Growth Control. ACS Applied Materials & Interfaces. 4, 6021-6029 (2012).