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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Materials Map under construction

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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in Cooperation with on an Cooperation-Score of 37%

Topics

Publications (16/16 displayed)

  • 2024Enhancing Fire Retardance of Styrenic Polymers Through a Ter-Polymerization Routecitations
  • 2024The Effects of Nitrogen-Containing Monomers on the Thermal Degradation and Combustion Attributes of Polystyrenes Chemically Modified with Phosphonate Groups2citations
  • 2023Gaseous- and Condensed-Phase Activities of Some Reactive P- and N-Containing Fire Retardants in Polystyrenes4citations
  • 2023Separation and Characterization of Plastic Waste Packaging Contaminated with Food Residues3citations
  • 2023A STUDY OF THE INFLUENCE OF THE CHEMICAL ENVIRONMENTS OF P‐ AND N‐CONTAINING GROUPS ON THE FIRE RETARDANCE OF POLYSTYRENEcitations
  • 2022Thermal Decomposition of Styrenic Polymers Modified with Covalently Bound P- and N-containing Groups: Analysis of the Gaseous-Phase Mechanismcitations
  • 2022Gaseous- and Condensed-Phase Activities of Some Reactive P- and N-Containing Fire Retardants in Polystyrenes4citations
  • 2022Thermal and calorimetric investigations of some phosphorus-modified chain growth polymers 2: Polystyrene2citations
  • 2021Phosphorus-Nitrogen Synergism in Fire Retarding Styrenic Polymers: Some Preliminary Studiescitations
  • 2020A Kinetic Analysis of the Thermal Degradation Behaviours of Some Bio-Based Substrates15citations
  • 2019Passive Fire Protection of Wood Substrates using Starch-based Formulationscitations
  • 2019A Study of the Thermal Degradation and Combustion Characteristics of Some Materials Commonly Used in the Construction Sector10citations
  • 2018Thermal and Calorimetric Evaluations of Polyacrylonitrile Containing Covalently-Bound Phosphonate Groups25citations
  • 2018Thermal Degradation and Fire Properties of Fungal Mycelium and Mycelium - Biomass Composite Materials135citations
  • 2017Structural studies of thermally stable, combustion-resistant polymer composites11citations
  • 2014A three-dimensional Mn3O4 network supported on a nitrogenated graphene electrocatalyst for efficient oxygen reduction reaction in alkaline media126citations

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Tretsiakova-Mcnally, Svetlana
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Pospiech, Doris
4 / 14 shared
Lederer, Albena
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Schierz, Eileen
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Arun, Malavika
8 / 8 shared
Baby, Aloshy
7 / 7 shared
Zhang, Jianping
3 / 8 shared
Fontaine, Gaelle
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Lubarsky, Helen
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Nadjai, Ali
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Farrell, Charlie
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Cairns, Paul
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Vennard, Ashlene
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Harrison, John
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Harvey, Ian
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Fontaine, Gaëlle
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Guerrieri, Maurice
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Bigger, Stephen
1 / 1 shared
Moinuddin, Khalid Abu Mohammad
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Thomas, Ananya
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Douarin, Adeline Le
1 / 1 shared
Ukleja, Sebastian
1 / 2 shared
Solorzano, Javier Arturo Piedrahita
1 / 1 shared
Wang, Chun-Hui
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Dekiwadia, Chaitali
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Ma, Jun
1 / 11 shared
John, Sabu
1 / 5 shared
Bhat, Tanmay
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Kandare, Everson
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Jones, Mitchell
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Hallett, James E.
1 / 4 shared
Zhang, Tan
1 / 2 shared
Eastoe, Julian
1 / 23 shared
Smith, Gregory N.
1 / 10 shared
Blum, Frank D.
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Bikkarolla, Santosh Kumar
1 / 1 shared
Papakonstantinou, Pagona
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Cumpson, Peter
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Zhou, Wuzong
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Yu, Fengjiao
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Co-Authors (by relevance)

  • Tretsiakova-Mcnally, Svetlana
  • Pospiech, Doris
  • Lederer, Albena
  • Schierz, Eileen
  • Arun, Malavika
  • Baby, Aloshy
  • Zhang, Jianping
  • Fontaine, Gaelle
  • Lubarsky, Helen
  • Nadjai, Ali
  • Farrell, Charlie
  • Cairns, Paul
  • Vennard, Ashlene
  • Harrison, John
  • Harvey, Ian
  • Fontaine, Gaëlle
  • Guerrieri, Maurice
  • Bigger, Stephen
  • Moinuddin, Khalid Abu Mohammad
  • Thomas, Ananya
  • Douarin, Adeline Le
  • Ukleja, Sebastian
  • Solorzano, Javier Arturo Piedrahita
  • Wang, Chun-Hui
  • Dekiwadia, Chaitali
  • Ma, Jun
  • John, Sabu
  • Bhat, Tanmay
  • Kandare, Everson
  • Jones, Mitchell
  • Hallett, James E.
  • Zhang, Tan
  • Eastoe, Julian
  • Smith, Gregory N.
  • Blum, Frank D.
  • Bikkarolla, Santosh Kumar
  • Papakonstantinou, Pagona
  • Cumpson, Peter
  • Zhou, Wuzong
  • Yu, Fengjiao
OrganizationsLocationPeople

article

A Kinetic Analysis of the Thermal Degradation Behaviours of Some Bio-Based Substrates

  • Moinuddin, Khalid Abu Mohammad
  • Joseph, Paul
  • Tretsiakova-Mcnally, Svetlana
  • Thomas, Ananya
Abstract

In the present paper, we report on a detailed study regarding the thermal degradation behaviours of some bio-sourced substrates. These were previously identified as the base materials in the formulations for fireproofing wood plaques through our investigations. The substrates included: β-cyclodextrin, dextran, potato starch, agar-agar, tamarind kernel powder and chitosan. For deducing the Arrhenius parameters from thermograms obtained through routine thermogravimetric analyses (TGA), we used the standard Flynn–Wall–Ozawa (FWO) method and employed an in-house developed proprietary software. In the former case, five different heating rates were used, whereas in the latter case, the data from one dynamic heating regime were utilized. Given that the FWO method is essentially based on a model-free approach that also makes use of multiple heating rates, it can be considered in the present context as superior to the one that is dependent on a single heating rate. It is also relevant to note here that the values of energy of activation (Ea) obtained in each case should only be considered as apparent values at best. Furthermore, some useful, but limited, correlations were identified between the Ea values and the relevant parameters obtained earlier by us from pyrolysis combustion flow calorimetry (PCFC).

Topics
  • pyrolysis
  • impedance spectroscopy
  • combustion
  • thermogravimetry
  • activation
  • wood
  • elemental analysis
  • calorimetry