Materials Map

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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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Richter Gomes Da Silva, Marco Diogo

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in Cooperation with on an Cooperation-Score of 37%

Topics

Publications (4/4 displayed)

  • 2022Purification of ferulic acid from corn fibre alkaline extracts for bio-vanillin production using an adsorption process13citations
  • 2022Antioxidant and Antibacterial Activities of a Purified Polysaccharide Extracted from Ceratonia siliqua L. and Its Involvement in the Enhancement Performance of Whipped Cream7citations
  • 2017Stabilizing Unstable Amorphous Menthol through Inclusion in Mesoporous Silica Hosts35citations
  • 2010Electrokinetic removal of creosote from treated timber waste: a comprehensive gas chromatographic view13citations

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Valério, Rita
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Brazinha, Carla
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Crespo, João Goulão
1 / 14 shared
Coelhoso, Isabel M.
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Torres, Cristiana A. V.
1 / 2 shared
Barreiros, Susana
1 / 15 shared
Andrade, Maria Madalena Dionísio
1 / 31 shared
Paiva, Alexandre
1 / 45 shared
Mendes, Davide
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Cardoso, M. Margarida
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Danède, Florence
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Correia, Natália T.
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Fonseca, I. M.
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Cordeiro, Teresa
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Viciosa, Maria T.
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Castineira, Carmem
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Sotomayor, Joao
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Marriott, Philip
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Ribeiro, Alexandra B.
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Zrostlíková, Jytka
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Mateus, Eduardo
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Co-Authors (by relevance)

  • Valério, Rita
  • Brazinha, Carla
  • Crespo, João Goulão
  • Coelhoso, Isabel M.
  • Torres, Cristiana A. V.
  • Barreiros, Susana
  • Andrade, Maria Madalena Dionísio
  • Paiva, Alexandre
  • Mendes, Davide
  • Cardoso, M. Margarida
  • Danède, Florence
  • Correia, Natália T.
  • Fonseca, I. M.
  • Cordeiro, Teresa
  • Viciosa, Maria T.
  • Castineira, Carmem
  • Sotomayor, Joao
  • Marriott, Philip
  • Ribeiro, Alexandra B.
  • Zrostlíková, Jytka
  • Mateus, Eduardo
OrganizationsLocationPeople

article

Stabilizing Unstable Amorphous Menthol through Inclusion in Mesoporous Silica Hosts

  • Barreiros, Susana
  • Andrade, Maria Madalena Dionísio
  • Richter Gomes Da Silva, Marco Diogo
  • Paiva, Alexandre
  • Mendes, Davide
  • Cardoso, M. Margarida
  • Danède, Florence
  • Correia, Natália T.
  • Fonseca, I. M.
  • Cordeiro, Teresa
  • Viciosa, Maria T.
  • Castineira, Carmem
  • Sotomayor, Joao
Abstract

<p>The amorphization of the readily crystallizable therapeutic ingredient and food additive, menthol, was successfully achieved by inclusion of neat menthol in mesoporous silica matrixes of 3.2 and 5.9 nm size pores. Menthol amorphization was confirmed by the calorimetric detection of a glass transition. The respective glass transition temperature, T<sub>g</sub> = -54.3 °C, is in good agreement with the one predicted by the composition dependence of the T<sub>g</sub> values determined for menthol:flurbiprofen therapeutic deep eutectic solvents (THEDESs). Nonisothermal crystallization was never observed for neat menthol loaded into silica hosts, which can indicate that menthol rests as a full amorphous/supercooled material inside the pores of the silica matrixes. Menthol mobility was probed by dielectric relaxation spectroscopy, which allowed to identify two relaxation processes in both pore sizes: a faster one associated with mobility of neat-like menthol molecules (α-process), and a slower, dominant one due to the hindered mobility of menthol molecules adsorbed at the inner pore walls (S-process). The fraction of molecular population governing the α-process is greater in the higher (5.9 nm) pore size matrix, although in both cases the S-process is more intense than the α-process. A dielectric glass transition temperature was estimated for each α (T<sub>g,dielc(α)</sub>) and S (T<sub>g,dielc(S)</sub>) molecular population from the temperature dependence of the relaxation times to 100 s. While T<sub>g,dielc(α)</sub> agrees better with the value obtained from the linearization of the Fox equation assuming ideal behavior of the menthol:flurbiprofen THEDES, T<sub>g,dielc(S)</sub> is close to the value determined by calorimetry for the silica composites due to a dominance of the adsorbed population inside the pores. Nevertheless, the greater fraction of more mobile bulk-like molecules in the 5.9 nm pore size matrix seems to determine the faster drug release at initial times relative to the 3.2 nm composite. However, the latter inhibits crystallization inside pores since its dimensions are inferior to menthol critical size for nucleation. This points to a suitability of these composites as drug delivery systems in which the drug release profile can be controlled by tuning the host pore size.</p>

Topics
  • impedance spectroscopy
  • pore
  • amorphous
  • inclusion
  • mobility
  • glass
  • glass
  • composite
  • glass transition temperature
  • crystallization
  • calorimetry