The Experts below are selected from a list of 281181 Experts worldwide ranked by ideXlab platform
Liquan Ruan - One of the best experts on this subject based on the ideXlab platform.
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in vitro investigation of fe30mn6si shape memory alloy as potential biodegradable Metallic Material
Materials Letters, 2011Co-Authors: Yufeng Zheng, Liquan RuanAbstract:Fe30Mn6Si alloy was investigated as a potential degradable bioMaterial, with the recently well-developed biodegradable metals, pure iron and Fe30Mn alloy, as comparison. The microstructure, mechanical properties, shape memory effect, corrosion behavior and in vitro biocompatibilities were evaluated by X-ray diffraction, scanning electron microscopy, tensile tests, electrochemical tests, immersion tests in Hank's solution till 6 months, cytotoxicity and hemolysis tests. It's found that Fe30Mn6Si alloy consists of e-martensite and γ-austenite at room temperature, the mechanical property of Fe30Mn6Si alloy is higher than that of the pure iron, and the corrosion rate of Fe30Mn6Si alloy is higher than that of Fe30Mn alloy. Additionally, Fe30Mn6Si alloy shows good performance for blood vessel related cellular application and the hemolysis percentage is less than 2%. In conclusion, Fe30Mn6Si alloy is a promising biodegradable Metallic Material with a shape memory function.
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In vitro investigation of Fe30Mn6Si shape memory alloy as potential biodegradable Metallic Material
Materials Letters, 2011Co-Authors: B. Liu, Y. F. Zheng, Liquan RuanAbstract:Fe30Mn6Si alloy was investigated as a potential degradable bioMaterial, with the recently well-developed biodegradable metals, pure iron and Fe30Mn alloy, as comparison. The microstructure, mechanical properties, shape memory effect, corrosion behavior and in vitro biocompatibilities were evaluated by X-ray diffraction, scanning electron microscopy, tensiletests,electrochemical tests, immersion tests in Hank's solution till6 months, cytotoxicity and hemolysis tests. It's found that Fe30Mn6Si alloy consists of ε-martensite and γ-austenite at room temperature, the mechanical property of Fe30Mn6Si alloy is higher than that of the pure iron, and the corrosion rate of Fe30Mn6Si alloy is higher than that of Fe30Mn alloy. Additionally, Fe30Mn6Si alloy shows good performance for blood vessel related cellular application and the hemolysis percentage is less than 2%. In conclusion, Fe30Mn6Si alloy is a promising biodegradable Metallic Material with a shape memory function. © 2010 Elsevier B.V.
Wendy C. Crone - One of the best experts on this subject based on the ideXlab platform.
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Thermomechanical high-density data storage in a Metallic Material via the shape-memory effect
Advanced Materials, 2005Co-Authors: Gordon A. Shaw, Jeremy S. Trethewey, A. David Johnson, Walter J. Drugan, Wendy C. CroneAbstract:By exploiting the shape-memory effect in NiTi, it is demonstrated for the first time that a Metallic Material can be used for rewriteable, thermomechanical data storage. Data are written as surface indentations by a nanoscale mechanical probe, read by a transducer, and erased by heating. A data array with a storage density of 10 Gbit in.(-2) (∼ 6500 nm(2) bit(-1)) is demonstrated (see Figure) but much higher storage densities are attainable with improved film planarity.
B. Liu - One of the best experts on this subject based on the ideXlab platform.
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In vitro investigation of Fe30Mn6Si shape memory alloy as potential biodegradable Metallic Material
Materials Letters, 2011Co-Authors: B. Liu, Y. F. Zheng, Liquan RuanAbstract:Fe30Mn6Si alloy was investigated as a potential degradable bioMaterial, with the recently well-developed biodegradable metals, pure iron and Fe30Mn alloy, as comparison. The microstructure, mechanical properties, shape memory effect, corrosion behavior and in vitro biocompatibilities were evaluated by X-ray diffraction, scanning electron microscopy, tensiletests,electrochemical tests, immersion tests in Hank's solution till6 months, cytotoxicity and hemolysis tests. It's found that Fe30Mn6Si alloy consists of ε-martensite and γ-austenite at room temperature, the mechanical property of Fe30Mn6Si alloy is higher than that of the pure iron, and the corrosion rate of Fe30Mn6Si alloy is higher than that of Fe30Mn alloy. Additionally, Fe30Mn6Si alloy shows good performance for blood vessel related cellular application and the hemolysis percentage is less than 2%. In conclusion, Fe30Mn6Si alloy is a promising biodegradable Metallic Material with a shape memory function. © 2010 Elsevier B.V.
Yufeng Zheng - One of the best experts on this subject based on the ideXlab platform.
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in vitro investigation of fe30mn6si shape memory alloy as potential biodegradable Metallic Material
Materials Letters, 2011Co-Authors: Yufeng Zheng, Liquan RuanAbstract:Fe30Mn6Si alloy was investigated as a potential degradable bioMaterial, with the recently well-developed biodegradable metals, pure iron and Fe30Mn alloy, as comparison. The microstructure, mechanical properties, shape memory effect, corrosion behavior and in vitro biocompatibilities were evaluated by X-ray diffraction, scanning electron microscopy, tensile tests, electrochemical tests, immersion tests in Hank's solution till 6 months, cytotoxicity and hemolysis tests. It's found that Fe30Mn6Si alloy consists of e-martensite and γ-austenite at room temperature, the mechanical property of Fe30Mn6Si alloy is higher than that of the pure iron, and the corrosion rate of Fe30Mn6Si alloy is higher than that of Fe30Mn alloy. Additionally, Fe30Mn6Si alloy shows good performance for blood vessel related cellular application and the hemolysis percentage is less than 2%. In conclusion, Fe30Mn6Si alloy is a promising biodegradable Metallic Material with a shape memory function.
Gordon A. Shaw - One of the best experts on this subject based on the ideXlab platform.
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Thermomechanical high-density data storage in a Metallic Material via the shape-memory effect
Advanced Materials, 2005Co-Authors: Gordon A. Shaw, Jeremy S. Trethewey, A. David Johnson, Walter J. Drugan, Wendy C. CroneAbstract:By exploiting the shape-memory effect in NiTi, it is demonstrated for the first time that a Metallic Material can be used for rewriteable, thermomechanical data storage. Data are written as surface indentations by a nanoscale mechanical probe, read by a transducer, and erased by heating. A data array with a storage density of 10 Gbit in.(-2) (∼ 6500 nm(2) bit(-1)) is demonstrated (see Figure) but much higher storage densities are attainable with improved film planarity.