Materials Map

Discover the materials research landscape. Find experts, partners, networks.

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The Materials Map is an open tool for improving networking and interdisciplinary exchange within materials research. It enables cross-database search for cooperation and network partners and discovering of the research landscape.

The dashboard provides detailed information about the selected scientist, e.g. publications. The dashboard can be filtered and shows the relationship to co-authors in different diagrams. In addition, a link is provided to find contact information.

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The Materials Map is still under development. In its current state, it is only based on one single data source and, thus, incomplete and contains duplicates. We are working on incorporating new open data sources like ORCID to improve the quality and the timeliness of our data. We will update Materials Map as soon as possible and kindly ask for your patience.

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Université de Lille

in Cooperation with on an Cooperation-Score of 37%

Topics

Publications (7/7 displayed)

  • 2021How Molecular Mobility, Physical State, and Drug Distribution Influence the Naproxen Release Profile from Different Mesoporous Silica Matrices5citations
  • 2021Interactions underpinning the plasticization of a polymer matrix: a dynamic and structural analysis of DMP-plasticized cellulose acetate17citations
  • 2021Impact of chirality in the amorphous state of conglomerate forming systems: case study of N-acetyl-α-methylbenzylamine4citations
  • 2017Interactions underpinning the plasticization of a polymer matrix: a dynamic and structural analysis of DMP-plasticized cellulose acetate17citations
  • 2012Understanding the Ion Jelly Conductivity Mechanism26citations
  • 2011Molecular dynamics of poly(ATRIF) homopolymer and poly(AN-co-ATRIF) copolymer investigated by dielectric relaxation spectroscopy21citations
  • 2011Phase Transformations Undergone by Triton X-100 Probed by Differential Scanning Calorimetry and Dielectric Relaxation Spectroscopy17citations

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Dorey, Piedade
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Lourenço, Mirtha A. O.
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Danède, Florence
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Ferreira, Paula
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Sotomayor, João C.
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Atawa, Bienvenu
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Andrade, Maria Madalena Dionísio
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Cabrita, Eurico J.
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Sotomayor, Joao
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2017
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Co-Authors (by relevance)

  • Dorey, Piedade
  • Lourenço, Mirtha A. O.
  • Danède, Florence
  • Ferreira, Paula
  • Sotomayor, João C.
  • Dionísio, Madalena
  • Cordeiro, Teresa
  • Matos, Inês
  • Fonseca, Isabel M.
  • Aubry, Jean-Marie
  • Molinier, Valérie
  • Descamps, Marc
  • Dudognon, Emeline
  • Benazzouz, Adrien
  • Coquerel, Gérard
  • Affouard, Frederic
  • Couvrat, Nicolas
  • Saiter, Allisson
  • Atawa, Bienvenu
  • Dias, Carlos
  • Barreiros, Susana
  • Andrade, Maria Madalena Dionísio
  • Cabrita, Eurico J.
  • Sotomayor, Joao
OrganizationsLocationPeople

article

Phase Transformations Undergone by Triton X-100 Probed by Differential Scanning Calorimetry and Dielectric Relaxation Spectroscopy

  • Andrade, Maria Madalena Dionísio
  • Natália, T. Correia
  • Sotomayor, Joao
Abstract

The phase transformations of the surfactant Triton X-100 were investigated by differential scanning calorimetry (DSC), polarized optical microscopy (POM), and dielectric relaxation spectroscopy (DRS). In particular, crystallization was induced at different cooling rates comprised between 13 and 0.5 K min(-1). Vitrification was detected by both DSC and DRS techniques with a glass transition temperature of similar to 212 K (measured on heating by DSC) allowing classifying Triton X-100 as a glass former. A fully amorphous material was obtained by cooling at a rate >= 10 K min(-1), while crystallization was observed for lower cooling rates. The temperature of the onset of melt-crystallisation was found to be dependent on the cooling scan rate, being higher the lower was the scan rate. In subsequent heating scans, the material undergoes cold-crystallization except if cooled previously at a rate <= 1 K min(-1). None of the different thermal histories led to a 100% crystalline material because always the jump typical of the glass transformation in both heat flux (DSC) and real permittivity (DRS) is observed. It was also observed that the extent/morphology of the crystalline phase depends on the degree of undercooling, with higher spherulites developing for lower undercooling degree (24 K <= T(m), T(cr) <= 44K) in melt-crystallization and a grain-like morphology emerging for T(m) - T(cr) approximate to 57 K either in melt- or cold-crystallization. The isothermal cold- and meltcrystallizations were monitored near above the calorimetric glass transition temperature by POM (221 K) and real-time DRS (T(cr) = 219, 220, and 221 K) to evaluate the phase transformation from an amorphous to a semicrystalline material. By DRS, the a-relaxation associated with the dynamic glass transition was followed, with the observation that it depletes upon both type of crystallizations with no significant changes either in shape or in location. Kinetic parameters were obtained from the time evolution of the normalized permittivity according to a modified Avrami model taking in account the induction time. The reason the isothermal crystallization occurs to a great extent in the vicinity of the glass transition was rationalized as the simultaneous effect of (i) a high dynamic fragile behavior and (ii) the occurrence of catastrophic nucleation/crystal growth probably enabled by a preordering tendency of the surfactant molecules. This is compatible with the estimated low Avrami exponent (1.12 <= n <= 1.6), suggesting that relative short length scale motions govern the crystal growth in Triton X-100 coherent with the observation of a grainy crystallization by POM.

Topics
  • impedance spectroscopy
  • amorphous
  • grain
  • melt
  • crystalline phase
  • glass
  • glass
  • glass transition temperature
  • differential scanning calorimetry
  • optical microscopy
  • crystallization
  • surfactant
  • semicrystalline