Low-pressure acetylene plasmas are able to spontaneously form dust particles. This will result in a dense cloud of solid particles that is levitated in the plasma. The formed particles can grow up to micrometers. We observed a spontaneous interruption in the expansion of the so-called dust void. A dust void is a macroscopic region in the plasma that is free of nanoparticles. The phenomenon is periodical and reproducible. We refer to the expansion interruption as 'hiccup'. The expanding void is an environment in which a new cycle of dust particle formation can start. At a certain moment in time, this cycle reaches the (sudden) coagulation phase and as a result the void will temporarily shrink. To substantiate this reasoning, the electron den...
Low-pressure acetylene plasmas are able to spontaneously form (under certain conditions) dust partic...
Plasma afterglows interacting with dust grains present a dynamic environment in which negatively cha...
One of the key parameters in low-pressure nanodusty plasmas is the dust particle size. In this work,...
Low-pressure acetylene plasmas are able to spontaneously form dust particles. This will result in a ...
In this letter, we present scanning electron microscopy (SEM) results that confirm in a direct way o...
We studied a capacitively coupled RF plasma with constant flow of argon and acetylene. These plasmas...
The onset and growth of a dust void are investigated in a radio-frequency (rf) sheath of a capacitiv...
In a dusty plasma, nanometer-sized solid dust particles can be grown by the polymerization of plasma...
Abstract—Formation of dust particles in a plasma can strongly change its properties due to electron ...
In extreme ultraviolet (EUV) lithography, ionic and particulate debris coming from the plasma source...
Voids in dusty plasma are a new phenomenon, which is still not understood. In this work we have stud...
To estimate the dust formation time scale in a silane–hydrogen plasma, optical and electrical plasma...
Low-pressure acetylene plasmas are able to spontaneously form (under certain conditions) dust partic...
Plasma afterglows interacting with dust grains present a dynamic environment in which negatively cha...
One of the key parameters in low-pressure nanodusty plasmas is the dust particle size. In this work,...
Low-pressure acetylene plasmas are able to spontaneously form dust particles. This will result in a ...
In this letter, we present scanning electron microscopy (SEM) results that confirm in a direct way o...
We studied a capacitively coupled RF plasma with constant flow of argon and acetylene. These plasmas...
The onset and growth of a dust void are investigated in a radio-frequency (rf) sheath of a capacitiv...
In a dusty plasma, nanometer-sized solid dust particles can be grown by the polymerization of plasma...
Abstract—Formation of dust particles in a plasma can strongly change its properties due to electron ...
In extreme ultraviolet (EUV) lithography, ionic and particulate debris coming from the plasma source...
Voids in dusty plasma are a new phenomenon, which is still not understood. In this work we have stud...
To estimate the dust formation time scale in a silane–hydrogen plasma, optical and electrical plasma...
Low-pressure acetylene plasmas are able to spontaneously form (under certain conditions) dust partic...
Plasma afterglows interacting with dust grains present a dynamic environment in which negatively cha...
One of the key parameters in low-pressure nanodusty plasmas is the dust particle size. In this work,...