The Experts below are selected from a list of 51504 Experts worldwide ranked by ideXlab platform
Hitoshi Hamanaka - One of the best experts on this subject based on the ideXlab platform.
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mechanical properties of the binary titanium zirconium alloys and their potential for Biomedical Materials
Journal of Biomedical Materials Research, 1995Co-Authors: Equo Kobayashi, Shigeru Matsumoto, Hisashi Doi, Takayuki Yoneyama, Hitoshi HamanakaAbstract:Mechanical properties of titanium-zirconium binary alloys were investigated in order to reveal their possible use for new Biomedical Materials and to collect useful data for alloy design through a hardness test, a tensile test, and optical microscopy. The hardness of the alloy containing 50% zirconium was approximately 2.5 times as large as the hardness of pure titanium and pure zirconium. Tensile tests showed a similar tendency. No changes between hardness of as cast specimens and as homogenized specimens were observed, nor were changes in microstructures noted. Comparisons between the Ti-6Al-4V alloy and the Ti-Zr-6Al-4V alloy indicated that a titanium-zirconium alloy could provide a base material for a new Biomedical alloy. From these results, it was concluded that new alloys for Biomedical Materials should be designed as titanium-zirconium base alloys. © 1995 John Wiley & Sons, Inc.
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Mechanical properties of the binary titanium‐zirconium alloys and their potential for Biomedical Materials
Journal of biomedical materials research, 1995Co-Authors: Equo Kobayashi, Shigeru Matsumoto, Hisashi Doi, Takayuki Yoneyama, Hitoshi HamanakaAbstract:Mechanical properties of titanium-zirconium binary alloys were investigated in order to reveal their possible use for new Biomedical Materials and to collect useful data for alloy design through a hardness test, a tensile test, and optical microscopy. The hardness of the alloy containing 50% zirconium was approximately 2.5 times as large as the hardness of pure titanium and pure zirconium. Tensile tests showed a similar tendency. No changes between hardness of as cast specimens and as homogenized specimens were observed, nor were changes in microstructures noted. Comparisons between the Ti-6Al-4V alloy and the Ti-Zr-6Al-4V alloy indicated that a titanium-zirconium alloy could provide a base material for a new Biomedical alloy. From these results, it was concluded that new alloys for Biomedical Materials should be designed as titanium-zirconium base alloys.
Jason A. Burdick - One of the best experts on this subject based on the ideXlab platform.
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Supramolecular Guest-Host Interactions for the Preparation of Biomedical Materials.
Bioconjugate chemistry, 2015Co-Authors: Christopher B. Rodell, Joshua E. Mealy, Jason A. BurdickAbstract:Supramolecular chemistry has emerged as an important technique for the formation of bioMaterials, including nano- and microparticles and hydrogels. One specific class of supramolecular chemistry is the direct association of guest-host pairs, which involves host macrocycles such as cyclodextrins and cucurbit[n]urils and a wide range of guest molecules, where association is typically driven by molecule size and hydrophobicity. These systems are of particular interest in the Biomedical field due to their dynamic nature, chemical diversity, relative ease of synthesis, and ability to interact with biological or synthetic molecules. In this review, we discuss aspects of polymeric material assembly mediated by guest-host interactions, including the fundamentals of assembly into functional Biomedical Materials. Additionally, applications of bioMaterials that utilize guest-host interactions are discussed with a focus on injectable material formulations, the sequestration and delivery of encapsulated cargo (i.e., drugs, biomolecules), and the investigation of cell-material interactions (i.e., adhesion, differentiation, and delivery). While methodologies for guest-host mediated assembly and biological interaction have rapidly evolved in recent years, they remain far from realizing their full potential in the bioMaterials field.
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supramolecular guest host interactions for the preparation of Biomedical Materials
Bioconjugate Chemistry, 2015Co-Authors: Christopher B. Rodell, Joshua E. Mealy, Jason A. BurdickAbstract:Supramolecular chemistry has emerged as an important technique for the formation of bioMaterials, including nano- and microparticles and hydrogels. One specific class of supramolecular chemistry is the direct association of guest–host pairs, which involves host macrocycles such as cyclodextrins and cucurbit[n]urils and a wide range of guest molecules, where association is typically driven by molecule size and hydrophobicity. These systems are of particular interest in the Biomedical field due to their dynamic nature, chemical diversity, relative ease of synthesis, and ability to interact with biological or synthetic molecules. In this review, we discuss aspects of polymeric material assembly mediated by guest–host interactions, including the fundamentals of assembly into functional Biomedical Materials. Additionally, applications of bioMaterials that utilize guest–host interactions are discussed with a focus on injectable material formulations, the sequestration and delivery of encapsulated cargo (i.e., d...
Equo Kobayashi - One of the best experts on this subject based on the ideXlab platform.
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mechanical properties of the binary titanium zirconium alloys and their potential for Biomedical Materials
Journal of Biomedical Materials Research, 1995Co-Authors: Equo Kobayashi, Shigeru Matsumoto, Hisashi Doi, Takayuki Yoneyama, Hitoshi HamanakaAbstract:Mechanical properties of titanium-zirconium binary alloys were investigated in order to reveal their possible use for new Biomedical Materials and to collect useful data for alloy design through a hardness test, a tensile test, and optical microscopy. The hardness of the alloy containing 50% zirconium was approximately 2.5 times as large as the hardness of pure titanium and pure zirconium. Tensile tests showed a similar tendency. No changes between hardness of as cast specimens and as homogenized specimens were observed, nor were changes in microstructures noted. Comparisons between the Ti-6Al-4V alloy and the Ti-Zr-6Al-4V alloy indicated that a titanium-zirconium alloy could provide a base material for a new Biomedical alloy. From these results, it was concluded that new alloys for Biomedical Materials should be designed as titanium-zirconium base alloys. © 1995 John Wiley & Sons, Inc.
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Mechanical properties of the binary titanium‐zirconium alloys and their potential for Biomedical Materials
Journal of biomedical materials research, 1995Co-Authors: Equo Kobayashi, Shigeru Matsumoto, Hisashi Doi, Takayuki Yoneyama, Hitoshi HamanakaAbstract:Mechanical properties of titanium-zirconium binary alloys were investigated in order to reveal their possible use for new Biomedical Materials and to collect useful data for alloy design through a hardness test, a tensile test, and optical microscopy. The hardness of the alloy containing 50% zirconium was approximately 2.5 times as large as the hardness of pure titanium and pure zirconium. Tensile tests showed a similar tendency. No changes between hardness of as cast specimens and as homogenized specimens were observed, nor were changes in microstructures noted. Comparisons between the Ti-6Al-4V alloy and the Ti-Zr-6Al-4V alloy indicated that a titanium-zirconium alloy could provide a base material for a new Biomedical alloy. From these results, it was concluded that new alloys for Biomedical Materials should be designed as titanium-zirconium base alloys.
Christopher B. Rodell - One of the best experts on this subject based on the ideXlab platform.
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Supramolecular Guest-Host Interactions for the Preparation of Biomedical Materials.
Bioconjugate chemistry, 2015Co-Authors: Christopher B. Rodell, Joshua E. Mealy, Jason A. BurdickAbstract:Supramolecular chemistry has emerged as an important technique for the formation of bioMaterials, including nano- and microparticles and hydrogels. One specific class of supramolecular chemistry is the direct association of guest-host pairs, which involves host macrocycles such as cyclodextrins and cucurbit[n]urils and a wide range of guest molecules, where association is typically driven by molecule size and hydrophobicity. These systems are of particular interest in the Biomedical field due to their dynamic nature, chemical diversity, relative ease of synthesis, and ability to interact with biological or synthetic molecules. In this review, we discuss aspects of polymeric material assembly mediated by guest-host interactions, including the fundamentals of assembly into functional Biomedical Materials. Additionally, applications of bioMaterials that utilize guest-host interactions are discussed with a focus on injectable material formulations, the sequestration and delivery of encapsulated cargo (i.e., drugs, biomolecules), and the investigation of cell-material interactions (i.e., adhesion, differentiation, and delivery). While methodologies for guest-host mediated assembly and biological interaction have rapidly evolved in recent years, they remain far from realizing their full potential in the bioMaterials field.
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supramolecular guest host interactions for the preparation of Biomedical Materials
Bioconjugate Chemistry, 2015Co-Authors: Christopher B. Rodell, Joshua E. Mealy, Jason A. BurdickAbstract:Supramolecular chemistry has emerged as an important technique for the formation of bioMaterials, including nano- and microparticles and hydrogels. One specific class of supramolecular chemistry is the direct association of guest–host pairs, which involves host macrocycles such as cyclodextrins and cucurbit[n]urils and a wide range of guest molecules, where association is typically driven by molecule size and hydrophobicity. These systems are of particular interest in the Biomedical field due to their dynamic nature, chemical diversity, relative ease of synthesis, and ability to interact with biological or synthetic molecules. In this review, we discuss aspects of polymeric material assembly mediated by guest–host interactions, including the fundamentals of assembly into functional Biomedical Materials. Additionally, applications of bioMaterials that utilize guest–host interactions are discussed with a focus on injectable material formulations, the sequestration and delivery of encapsulated cargo (i.e., d...
Shigeru Matsumoto - One of the best experts on this subject based on the ideXlab platform.
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mechanical properties of the binary titanium zirconium alloys and their potential for Biomedical Materials
Journal of Biomedical Materials Research, 1995Co-Authors: Equo Kobayashi, Shigeru Matsumoto, Hisashi Doi, Takayuki Yoneyama, Hitoshi HamanakaAbstract:Mechanical properties of titanium-zirconium binary alloys were investigated in order to reveal their possible use for new Biomedical Materials and to collect useful data for alloy design through a hardness test, a tensile test, and optical microscopy. The hardness of the alloy containing 50% zirconium was approximately 2.5 times as large as the hardness of pure titanium and pure zirconium. Tensile tests showed a similar tendency. No changes between hardness of as cast specimens and as homogenized specimens were observed, nor were changes in microstructures noted. Comparisons between the Ti-6Al-4V alloy and the Ti-Zr-6Al-4V alloy indicated that a titanium-zirconium alloy could provide a base material for a new Biomedical alloy. From these results, it was concluded that new alloys for Biomedical Materials should be designed as titanium-zirconium base alloys. © 1995 John Wiley & Sons, Inc.
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Mechanical properties of the binary titanium‐zirconium alloys and their potential for Biomedical Materials
Journal of biomedical materials research, 1995Co-Authors: Equo Kobayashi, Shigeru Matsumoto, Hisashi Doi, Takayuki Yoneyama, Hitoshi HamanakaAbstract:Mechanical properties of titanium-zirconium binary alloys were investigated in order to reveal their possible use for new Biomedical Materials and to collect useful data for alloy design through a hardness test, a tensile test, and optical microscopy. The hardness of the alloy containing 50% zirconium was approximately 2.5 times as large as the hardness of pure titanium and pure zirconium. Tensile tests showed a similar tendency. No changes between hardness of as cast specimens and as homogenized specimens were observed, nor were changes in microstructures noted. Comparisons between the Ti-6Al-4V alloy and the Ti-Zr-6Al-4V alloy indicated that a titanium-zirconium alloy could provide a base material for a new Biomedical alloy. From these results, it was concluded that new alloys for Biomedical Materials should be designed as titanium-zirconium base alloys.