By Michael Thomas, K. L. Mittal
The Atmospheric strain Plasma (APP) remedy for polymer floor amendment has attracted a lot awareness lately, because of its merits over different suggestions and its skill to enhance adhesion with out tampering with polymer's bulk homes. concentrating on the application of APP remedy for boosting polymer adhesion, this booklet covers the newest improvement during this very important and allowing expertise, offering profound insights from many most sensible researchers at the layout and features of varied different types of reactors, in addition to present and power purposes of APP treatment.Content:
Chapter 1 Combinatorial Plasma?Based floor amendment of Polymers through Plasma Printing with Gas?Carrying Plasma Stamps at Ambient strain (pages 1–25): Alena Hinze, Andrew Marchesseault, Stephanus Buttgenbach, Michael Thomas and Claus?Peter Klages
Chapter 2 remedy of Polymer Surfaces with floor Dielectric Barrier Discharge Plasmas (pages 27–81): Marcel Simor and Yves Creyghton
Chapter three Selective floor amendment of Polymeric fabrics through Atmospheric?Pressure Plasmas: Selective Substitution Reactions on Polymer Surfaces via various Plasmas (pages 83–130): Norihiro Inagaki
Chapter four Permanence of useful teams at Polyolefin Surfaces brought via Dielectric Barrier Discharge Pretreatment in Presence of Aerosols (pages 131–156): R. combine, J. F. Friedrich and N. Inagaki
Chapter five attaining Nano?Scale floor constitution on Wool cloth via Atmospheric strain Plasma therapy (pages 157–173): C.W. Kan, W.Y.I. Tsoi, C.W.M. Yuen, T.M. Choi and T.B. Tang
Chapter 6 Deposition of Nanosilica Coatings on Plasma Activated Polyethylene motion pictures (pages 175–197): D. D. Pappas, A. A. Bujanda, J. A. Orlicki, J. D. Demaree, J. okay. Hirvonen, R. E. Jensen and S. H. McKnight
Chapter 7 Atmospheric Plasma therapy of Polymers for Biomedical functions (pages 199–215): N. Gomathi, A. ok. Chanda and S. Neogi
Chapter eight Atmospheric strain Plasma Polymerization floor remedies by way of Dielectric Barrier Discharge for better Polymer?Polymer and Metal?Polymer Adhesion (pages 217–249): Maryline Moreno?Couranjou, Nicolas D. Boscher, David Duday, Remy Maurau, Elodie Lecoq and Patrick Choquet
Chapter nine Adhesion development through Nitrogen Functionalization of Polymers utilizing DBD?Based Plasma resources at Ambient strain (pages 251–273): Michael Thomas, Marko Eichler, Kristina Lachmann, Jochen Borris, Alena Hinze and Claus?Peter Klages
Chapter 10 Adhesion development of Polypropylene via Aerosol Assisted Plasma Deposition at Atmospheric strain (pages 275–298): Marjorie Dubreuil, Erik Bongaers and Dirk Vangeneugden
Chapter eleven The impression of Helium?Air, Helium?Water Vapor, Helium?Oxygen, and Helium?Nitrogen Atmospheric strain Plasmas at the Adhesion energy of Polyethylene (pages 299–313): Victor Rodriguez?Santiago, Andres A. Bujanda, Kenneth E. Strawhecker and Daphne D. Pappas
Chapter 12 Atmospheric Plasma floor remedy of Styrene?Butadiene Rubber: examine of Adhesion and getting older results (pages 315–328): Catia A. Carreira, Ricardo M. Silva, Vera V. Pinto, Maria Jose Ferreira, Fernando Sousa, Fernando Silva and Carlos M. Pereira
Chapter thirteen Atmospheric Plasma remedy in Extrusion Coating: half 1 floor Wetting and LDPE Adhesion to Paper (pages 329–354): Mikko Tuominen, J. Lavonen, H. Teisala, M. Stepien and J. Kuusipalo
Chapter 14 Atmospheric Plasma therapy in Extrusion Coating: half 2 floor amendment of LDPE and PP covered Papers (pages 355–381): Mikko Tuominen, J. Lavonen, J. Lahti and J. Kuusipalo
Chapter 15 attaining improved Fracture longevity of Adhesively Bonded Cured Composite Joint platforms utilizing Atmospheric strain Plasma remedies (pages 383–395): Amsarani Ramamoorthy, Joseph Mohan, Greg Byrne, Neal Murphy, Alojz Ivankovic and Denis P. Dowling
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Additional resources for Atmospheric Pressure Plasma Treatment of Polymers: Relevance to Adhesion
P. Klages, Surface modification for biomedical purposes utilizing dielectric barrier dis charges at atmospheric pressure. Thin Solid Films 459,118-121 (2004). 4. A. Möbius, D. -R. Weidlich, K. Feldmann, F. Schüßler, J. Borris, M. Thomas, A. -P. Klages, Plasma-printing and galvanic metal lization hand in hand - A new technology for the cost-efficient manufacture of flexible printed circuits. Electrochimica Acta 54, 2473-2477 (2009). 5. -P. Klages, Z. Khosravi and A. Hinze, Some remarks on chemical derivatization of polymer surfaces after exposure to nitrogen-containing plasmas.
A longer treat ment resulted in a smaller contact angle, shorter wicking time, and higher maximal height. The plasma polymerization study indi cated that a further distinct reduction of the contact angle and of the wicking time might be achieved by adding an AA monomer into the nitrogen plasma. In comparison to the changes of the con tact angle and wicking time, the maximal height did not change as significantly. In examining the plasma polymerization study sepa rately, no correlation between the decrease of the contact angle and shortening of the wicking time or increasing of the maximal height was found (in contrast to the nitrogen plasma activation).
Plasma-treated Nomex fibres had a rougher surface than the untreated fibres. No such changes were observed on the surface of Kevlar samples. XPS stud ies revealed that while carbon content decreased, oxygen content significantly increased in both fibres after plasma treatment. The concentration of nitrogen remained constant at all times. 1 Post-Activation Processing Colour and Ink Adhesion Improvement Adhesion of a Gebrüder-Schmidt colour dashed onto a biaxially oriented 20~pm-thick polypropylene foil treated by the volume DBD and SBD in air, nitrogen and C 0 2 for various exposure times was studied in .
Atmospheric Pressure Plasma Treatment of Polymers: Relevance to Adhesion by Michael Thomas, K. L. Mittal