<?xml version="1.0" encoding="UTF-8"?><rss xmlns:dc="http://purl.org/dc/elements/1.1/" version="2.0">
<channel>
<title>SAM</title>
<link>https://sam.ensam.eu:443</link>
<description>The DSpace digital repository system captures, stores, indexes, preserves, and distributes digital research material.</description>
<pubDate xmlns="http://apache.org/cocoon/i18n/2.1">Wed, 16 Sep 2026 19:28:29 GMT</pubDate>
<dc:date>2026-09-16T19:28:29Z</dc:date>
<item>
<title>Design of modiﬁed plastic surfaces for antimicrobial applications: Impact of ionizing radiation on the physical and mechanical properties of polypropylene</title>
<link>http://hdl.handle.net/10985/8198</link>
<description>Design of modiﬁed plastic surfaces for antimicrobial applications: Impact of ionizing radiation on the physical and mechanical properties of polypropylene
RIQUET, Anne-Marie; DELATTRE, Jennifer; VITRAC, Olivier; GUINAULT, Alain
Surface modiﬁcation of polypropylene (PP) sheets was carried out by radiation induced graft polymer- ization of hydrophilic functional molecules such as N,N-dimethylacrylamide (DMA) and [2-methacry- loyloxy)ethyl] trimethylammonium chloride, which is a quaternary ammonium salt (QAS). Polypropylene sheets were activated prior to the grafting reaction by using electron beam radiation. The changes in morphology, crystallinity and tensile parameters like deformation and stress at yield and deformation at break of PP after irradiation were investigated. The results showed that a minor crystalline reorganization takes place during the irradiation of PP at 100 kGy. The grafting has been observed to be strongly dependent on the monomer dilution in the reaction medium. After grafting of QAS (40%) and DMA (20%) it was possible to develop highly hydrophilic surfaces (water contact angle comprised between 30 and 411). The surfaces of virgin, irradiated and grafted PP were studied using polarized optical microscopy (POM) and scanning electron microscopy (SEM). Spherical particles (i.e. polystyrene or silica beads) adhering to the modiﬁed samples were studied according to the surface parameters. Adhesion tests conﬁrmed the strong inﬂuence of substrate type (mainly  hydrophilicity  and  roughness)  and  to  a  lesser  extent  underlined  the  role  of  electrostatic interactions for the design of plastic surfaces for antimicrobial applications.
</description>
<pubDate>Tue, 01 Jan 2013 00:00:00 GMT</pubDate>
<guid isPermaLink="false">http://hdl.handle.net/10985/8198</guid>
<dc:date>2013-01-01T00:00:00Z</dc:date>
<dc:creator>RIQUET, Anne-Marie</dc:creator>
<dc:creator>DELATTRE, Jennifer</dc:creator>
<dc:creator>VITRAC, Olivier</dc:creator>
<dc:creator>GUINAULT, Alain</dc:creator>
<dc:description>Surface modiﬁcation of polypropylene (PP) sheets was carried out by radiation induced graft polymer- ization of hydrophilic functional molecules such as N,N-dimethylacrylamide (DMA) and [2-methacry- loyloxy)ethyl] trimethylammonium chloride, which is a quaternary ammonium salt (QAS). Polypropylene sheets were activated prior to the grafting reaction by using electron beam radiation. The changes in morphology, crystallinity and tensile parameters like deformation and stress at yield and deformation at break of PP after irradiation were investigated. The results showed that a minor crystalline reorganization takes place during the irradiation of PP at 100 kGy. The grafting has been observed to be strongly dependent on the monomer dilution in the reaction medium. After grafting of QAS (40%) and DMA (20%) it was possible to develop highly hydrophilic surfaces (water contact angle comprised between 30 and 411). The surfaces of virgin, irradiated and grafted PP were studied using polarized optical microscopy (POM) and scanning electron microscopy (SEM). Spherical particles (i.e. polystyrene or silica beads) adhering to the modiﬁed samples were studied according to the surface parameters. Adhesion tests conﬁrmed the strong inﬂuence of substrate type (mainly  hydrophilicity  and  roughness)  and  to  a  lesser  extent  underlined  the  role  of  electrostatic interactions for the design of plastic surfaces for antimicrobial applications.</dc:description>
</item>
</channel>
</rss>
