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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Publications (33/33 displayed)

  • 2024Titanium-doped phosphate glasses containing zinc and strontium applied in bone regenerationcitations
  • 2024A sol-gel templating route for the synthesis of hierarchical porous calcium phosphate glasses containing zinc2citations
  • 20243D Melt-Extrusion Printing of Medium Chain Length Polyhydroxyalkanoates and Their Application as Antibiotic-Free Antibacterial Scaffolds for Bone Regeneration2citations
  • 2023Biodegradable and Sustainable Synthetic Antibodies—A Perspectivecitations
  • 2021Antibacterial Composite Materials Based on the Combination of Polyhydroxyalkanoates With Selenium and Strontium Co-substituted Hydroxyapatite for Bone Regeneration22citations
  • 2020Modulation of neuronal cell affinity of composite scaffolds based on polyhydroxyalkanoates and bioactive glasses20citations
  • 2018Binary polyhydroxyalkanoate systems for soft tissue engineering56citations
  • 2016Composite scaffolds for cartilage tissue engineering based on natural polymers of bacterial origin, thermoplastic poly(3‐hydroxybutyrate) and micro‐fibrillated bacterial cellulose47citations
  • 2016P(3HB) Based Magnetic Nanocomposites: Smart Materials for Bone Tissue Engineering14citations
  • 2015Novel sol–gel preparation of (P2O5)0.4–(CaO)0.25–(Na2O)X–(TiO2)(0.35−X) bioresorbable glasses (X = 0.05, 0.1, and 0.15)30citations
  • 2015Titanium phosphate glass microcarriers induce enhanced osteogenic cell proliferation and human mesenchymal stem cell protein expression26citations
  • 2013Aspirin-loaded P(3HO)/P(3HB) blend films: potential materials for biodegradable drug-eluting stents19citations
  • 2012Novel Biodegradable and Biocompatible Poly(3‐hydroxyoctanoate)/Bacterial Cellulose Composites25citations
  • 2012Structural characterization of titanium-doped Bioglass using isotopic substitution neutron diffraction15citations
  • 2012Structural characterization and physical properties of P2O5-CaO-Na2O-TiO2 glasses by Fourier transform infrared, Raman and solid-state magic angle spinning nuclear magnetic resonance spectroscopies.84citations
  • 2012Titanium phosphate glass microspheres for bone tissue engineering.75citations
  • 2010Tailoring Cell Behavior on Polymers by the Incorporation of Titanium Doped Phosphate Glass Filler11citations
  • 2010Poly(3-hydroxybutyrate) multifunctional composite scaffolds for tissue engineering applications.160citations
  • 2010<i>In vitro</i> studies on the influence of surface modification of Ni–Ti alloy on human bone cells26citations
  • 2010Reactive calcium-phosphate-containing poly(ester-co-ether) methacrylate bone adhesives: chemical, mechanical and biological considerations.32citations
  • 2009A study of the formation of amorphous calcium phosphate and hydroxyapatite on melt quenched Bioglass(A (R)) using surface sensitive shallow angle X-ray diffraction51citations
  • 2009Structure and properties of strontium-doped phosphate-based glasses147citations
  • 2009Incorporation of vitamin E in poly(3hydroxybutyrate)/Bioglass composite films: effect on surface properties and cell attachment.30citations
  • 2009Doping of a high calcium oxide metaphosphate glass with titanium dioxide53citations
  • 2008Structural characteristics of antibacterial bioresorbable phosphate glass20citations
  • 2008A high-energy X-ray diffraction, P-31 and B-11 solid-state NMR study of the structure of aged sodium borophosphate glasses37citations
  • 2008An X-ray absorption spectroscopy study of the local environment of iron in degradable iron-phosphate glasses9citations
  • 2008Comparison of nanoscale and microscale bioactive glass on the properties of P(3HB)/Bioglass composites.313citations
  • 2007The structure and properties of silver-doped phosphate-based glasses57citations
  • 2007The structure of phosphate glass biomaterials from neutron diffraction and 31P nuclear magnetic resonance data30citations
  • 2006Initial responses of human osteoblasts to sol-gel modified titanium with hydroxyapatite and titania composition.64citations
  • 2006X-ray absorption spectroscopy and high-energy XRD study of the local environment of copper in antibacterial copper-releasing degradable phosphate glasses22citations
  • 2006Initial responses of human osteoblasts to sol–gel modified titanium with hydroxyapatite and titania compositioncitations

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Chart of shared publication
Wandless, Rachel
1 / 2 shared
Keskin-Erdogan, Zalike
1 / 4 shared
Abramchuk, Morgana
1 / 2 shared
Park, Jeong-Hui
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Mandakhbayar, Nandin-Erdene
1 / 2 shared
Kim, Hae-Won
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Daltoe, Felipe P.
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Tang, Tianyi
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Kanwal, Nasima
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Carta, Daniela
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Di Pasquale, Roberto
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Abrahams, Isaac
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Foroutan, Farzad
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Smith, Andrew J.
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Smales, Glen Jacob
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Prieto, M. Auxiliadora
1 / 2 shared
Nigmatullin, Rinat
4 / 10 shared
Marcello, Elena
2 / 4 shared
Boccaccini, Ar
2 / 302 shared
Basnett, Pooja
5 / 7 shared
Maqbool, Muhammad
2 / 13 shared
Roy, Ipsita
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Poma, Alessandro
1 / 1 shared
Ma, Xiaohan
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Jackson, Philip R.
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Boccaccini, Aldo R.
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Cresswell, Mark
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Haycock, John W.
1 / 1 shared
Ladino, Bryan
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Taylor, Caroline S.
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Lizarraga-Valderrama, Lorena R.
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Claeyssens, Frederik
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Lukasiewicz, Barbara
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Salih, Vehid
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Safarikova, Mirka
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Martin, Richard A.
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Owens, Gareth J.
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Leeuw, Nora H. De
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Ludka, Katarzyna
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Kim, Hae Won
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M., Day R.
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Mordan, Nicola J.
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Lakhkar, Nilay J.
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Stolz, Martin
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Ching, Kuan Yong
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Locke, Ian C.
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Pishbin, Fatemah
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Smith, Mark E.
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Newport, Robert J.
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Cuello, Gabriel J.
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Hanna, John V.
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Moss, Robert M.
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King, Sp
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Smith, Me
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Kiani, Azadeh
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Roohpour, Nima
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Hanna, Jv
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Rees, Gregory J.
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Mosselmans, J. Fred W.
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Addison, Owen
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King, Scott P.
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Park, Jeong Hui
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Wall, Ivan B.
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Lee, Koon-Y
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Hart, Andrew D.
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Young, Anne M.
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Chrzanowski, Wojciech
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Bismarck, Alexander
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Dalby, Matthew J.
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Neel, Ensanya A. Abou
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Stark, Wendelin J.
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Ansari, Tahera I.
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Mohn, Dirk
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Misra, Superb K.
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Valappil, Sabeel P.
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Philip, Sheryl E.
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Armitage, David Andrew
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Odell, Luke A.
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Ahmed, Ifty
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Wetherall, Karen
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Co-Authors (by relevance)

  • Wandless, Rachel
  • Keskin-Erdogan, Zalike
  • Abramchuk, Morgana
  • Park, Jeong-Hui
  • Mandakhbayar, Nandin-Erdene
  • Kim, Hae-Won
  • Daltoe, Felipe P.
  • Tang, Tianyi
  • Kanwal, Nasima
  • Carta, Daniela
  • Di Pasquale, Roberto
  • Abrahams, Isaac
  • Foroutan, Farzad
  • Smith, Andrew J.
  • Smales, Glen Jacob
  • Prieto, M. Auxiliadora
  • Nigmatullin, Rinat
  • Marcello, Elena
  • Boccaccini, Ar
  • Basnett, Pooja
  • Maqbool, Muhammad
  • Roy, Ipsita
  • Poma, Alessandro
  • Ma, Xiaohan
  • Jackson, Philip R.
  • Boccaccini, Aldo R.
  • Cresswell, Mark
  • Haycock, John W.
  • Ladino, Bryan
  • Taylor, Caroline S.
  • Lizarraga-Valderrama, Lorena R.
  • Claeyssens, Frederik
  • Lukasiewicz, Barbara
  • Matharu, Rupy
  • Šafaříková, M.
  • Filip, Jan
  • Keshavarz, Tajalli
  • Akaraonye, Everest
  • Salih, Vehid
  • Safarikova, Mirka
  • Martin, Richard A.
  • Owens, Gareth J.
  • Leeuw, Nora H. De
  • Palmer, Graham
  • Ludka, Katarzyna
  • Kim, Hae Won
  • M., Day R.
  • Mordan, Nicola J.
  • Lakhkar, Nilay J.
  • Stolz, Martin
  • Ching, Kuan Yong
  • Locke, Ian C.
  • Smith, Caroline
  • Pishbin, Fatemah
  • Smith, Mark E.
  • Newport, Robert J.
  • Cuello, Gabriel J.
  • Hanna, John V.
  • Moss, Robert M.
  • King, Sp
  • Smith, Me
  • Kiani, Azadeh
  • Roohpour, Nima
  • Hanna, Jv
  • Rees, Gregory J.
  • Mosselmans, J. Fred W.
  • Addison, Owen
  • King, Scott P.
  • Park, Jeong Hui
  • Wall, Ivan B.
  • Lee, Koon-Y
  • Hart, Andrew D.
  • Young, Anne M.
  • Chrzanowski, Wojciech
  • Bismarck, Alexander
  • Dalby, Matthew J.
  • Neel, Ensanya A. Abou
  • Stark, Wendelin J.
  • Ansari, Tahera I.
  • Mohn, Dirk
  • Misra, Superb K.
  • Valappil, Sabeel P.
  • Philip, Sheryl E.
  • Armitage, David Andrew
  • Zhao, Xin
  • Li, Haoying
  • Olsen, Irwin
  • Buxton, Paul G.
  • Gellynck, Kris
  • Twyman, Helen L.
  • Qiu, Dong
  • Pickup, David M.
  • Odell, Luke A.
  • Abou Neel, Ensanya A.
  • Morden, Nicola J.
  • Nazhat, Showan N.
  • Ahmed, Ifty
  • Moss, Rob M.
  • Guerry, Paul
  • Brunner, Tobias J.
  • Nazhat, S. N.
  • Carroll, Donna L.
  • Mordan, Nicky
  • Harle, Jamie
  • Fitzgerald, Victoria
  • Wetherall, Karen
OrganizationsLocationPeople

article

Tailoring Cell Behavior on Polymers by the Incorporation of Titanium Doped Phosphate Glass Filler

  • Lee, Koon-Y
  • Hart, Andrew D.
  • Young, Anne M.
  • Chrzanowski, Wojciech
  • Bismarck, Alexander
  • Dalby, Matthew J.
  • Neel, Ensanya A. Abou
  • Knowles, Jonathan C.
Abstract

Understanding tissue response to materials, to enable modulation and guided tissue regeneration is one of the main challenges in biomaterials science. Nowadays polymers, glasses, and metals dominate as biomaterials. Often native properties of those materials are not sufficient and there is a need to combine them, so as to modify and adjust their properties to the application. The primary aim of this study was to improve cell response to polymer (PLDL) using phosphate glass as filler (titanium doped phosphate glass). As a control beta-tricalcium phosphate (TCP) filler was used. Various concentrations of the filler were used (10-40 vol%). Wetting behavior, zeta-potentials, mechanical and thermal properties, and human cells response to the materials were evaluated. Results showed that with increase in glass filler loading wettability improved, zeta-potentials dropped, and increase in stiffness of materials was observed. Importantly cell culture experiments showed more developed and well spread cells on the samples with glass content up to 20 vol%. Cells responded much more positively to the glass filled samples than to TCP filled. However, expression of osteocalcin and osteopontin, proteins that indicate formation of the mineralized structures was positive for all the samples including pure PLDL. It was concluded that due to improved wetting behavior, lower zeta-potentials, and specific chemistry of the glass filler it was possible to alter cells response, improve bioactivity of the polymer, and vary mechanical properties.

Topics
  • impedance spectroscopy
  • polymer
  • experiment
  • glass
  • glass
  • titanium
  • biomaterials
  • bioactivity