Rapid surface modification of polyethylene in microwave and r.f.-plasmas: comparative study

Citation
T. Aumann et al., Rapid surface modification of polyethylene in microwave and r.f.-plasmas: comparative study, SURF COAT, 142, 2001, pp. 169-174
Citations number
13
Categorie Soggetti
Material Science & Engineering
Journal title
SURFACE & COATINGS TECHNOLOGY
ISSN journal
02578972 → ACNP
Volume
142
Year of publication
2001
Pages
169 - 174
Database
ISI
SICI code
0257-8972(200107)142:<169:RSMOPI>2.0.ZU;2-V
Abstract
The surface of polyethylene can be modified by intense oxygen plasmas in le ss than 200 ms. The investigation of such short treatment times is of inter est for industrial applications as well as for fundamental research. The ch ange of surface tension during the first 100 ms of a plasma treatment is a characteristic indicator for the chemical modification of the polymer surfa ce. The correlation between surface tension, plasma parameters and treatmen t time is of practical interest for the layout of a plasma process and the equipment. Two plasma sources have been used: a r.f.-driven hollow cathode discharge (HCD) module and a microwave sustained slot antenna plasma source (SLAN). For each type of plasma the dependence of the surface tension on t he treatment time was determined for various plasma parameters. Contact ang le measurements and calculations using the harmonic mean method, were used to measure the dispersive and polar components of the surface tension of th e treated samples. To trace the results back to basic plasma parameters, th e plasma ion density was measured by a double Langmuir probe. The dispersiv e part of the surface tension is only weakly affected by the plasma treatme nt, in contrast to the polar part. Therefore the focus of this study was pl aced on the polar surface tension. All measurements show a typical exponent ial [similar to (1-c(-a.t))] dependence of the polar surface tension on the treatment time t. The increase can be characterised by a rate constant a, describing the first order kinetic of the process. Furthermore, a saturatio n surface tension can be defined, which is independent on the types of plas ma used and of all plasma parameters, whereas the time constant depends str ongly on the type of plasma. The highest rate constants were achieved with the HCD module and high r.f. power (up to 1000 W). (C) 2001 Elsevier Scienc e B.V. All rights reserved.