TY - CONF A1 - Madkour, Sherif A1 - Szymoniak, Paulina A1 - Schönhals, Andreas T1 - Unveiling the heterogeneous structure of miscible polymer blend confined in ultrathin films via nanosized relaxation spectroscopy N2 - Advances in functional coatings, batteries, innovative organic electronics, and hybrid materials depend strongly on polymeric materials confined in thin films or adsorbed at surfaces. Subsequently, understanding the materials behavior under confinement and the deviations, from the bulk, that might arise is necessary for optimized technological applications. In the nanometer vicinity, solid interfaces and free surfaces could alter for instance entanglements, glassy dynamics (α-relaxation), and the thermal glass transition temperature (Tg), compared to the bulk behavior. Consequently, this could change macroscopic quantities of thin films like adhesion, wettability, friction, reactivity, and biocompatibility, which are topical problems for hybrid materials. In fact, despite the intense investigations on thin homopolymers films, little is known about polymer blend thin films and how blending affect glass dynamics and glass transition, under confinement. This work discusses the glassy dynamics of thin films of Poly (vinyl methyl ether) (PVME) with special focus to the dynamics near the interfaces. Further, PVME is then blended with the well-studied polystyrene (PS) in two concentrations; 50:50 and 25:75 wt-%, which are miscible in bulk. The glass dynamics of thin films of both blend concentration are then investigated. Here, a combination of nanosized relaxation spectroscopies; broadband dielectric spectroscopy (BDS) and specific heat spectroscopy (SHS); employing AC nanochip calorimetry, was utilized to probe the glassy dynamics of the thin films, thickness: 7nm – 200 nm. It should be noted that both methods are sensitive to different probes; where SHS senses entropy fluctuations while BDS measures dipole fluctuations. For BDS measurements, a recently developed nano-structured electrode sample arrangement was employed; where ultra-thin films are spin-coated on an ultra-flat highly conductive silicon wafer, sandwiched between a wafer with nanostructured SiO2 nano-spacers with heights between 35 nm and 70 nm. Furthermore, these measurements are then combined with surface analytical techniques; ellipsometry and AFM, for controlled film thickness and topography. Probing of PVME thin films revealed the existence of an adsorbed layer with a restricted mobility at the polymer/substrate interface, which is independent from the bulk-like behavior and thickness independent. As for PVME/PS thin films, it was shown that the overall segmental dynamics of both blends are strongly affected by a fine counter-balance between a free surface layer at the polymer/air interface, which is PVME-rich layer, and an adsorbed layer at the polymer/substrate interface, which is PS-rich. This is the first example where confinement induced changes were observed by BDS for ultra-thin films. All results were analyzed in details and will be comprehensively discussed. T2 - Seminar at University of Pennsylvania CY - Philadelphia, USA DA - 21.03.2017 KW - Ultra-thin polymer films PY - 2017 AN - OPUS4-39621 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Schönhals, Andreas T1 - Behavior of Ultra-Thin POLYMER Films investigated by Nanosized Relaxation Spectroscopy N2 - The glass transition behavior of ultra-thin polymer films is discussed in detail. Further nanosized relxation spectroscopy is introduced in the form of AC chip calorimetry and dielectric spectroscopy employing nanostructured electrodes. These methods arre applied to ultra-thin films. T2 - Soft Matter Seminar Jülich CY - Jülich, Germany DA - 15.12.2016 KW - Ultra-thin polymer films PY - 2016 AN - OPUS4-38714 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER -