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Speaker-Ding-Bang Xiong

Ding-Bang Xiong
Shanghai Jiao Tong University, China
Xiong Ding-Bang obtained his PhD degree at 2007 from Shanghai Institute of Ceramics, Chinese Academy of Science. From 2007 to 2012, he did Postdoc in Marburg University (Germany) as Humboldt Research Fellow and in Kyoto University (Japan) as JSPS Research Fellow. From 2012, he joined the state key lab of metal matrix composites, Shanghai Jiao Tong University.
His research is focusing on the preparation and application of bioinspired metal matrix composites. Inspired from the relationship between structure and properties in natural biological material, using carbon nanotube and graphene as reinforcement, metal matrix composites with high strength and toughness are fabricated. Their functional properties such as electrical and thermal conductivity are also investigated. His research aims to develop advanced materials with integrated structural and functional properties. He has published more than 40 papers on the journals such as ACS Nano, Chem. Euro. J., Inorg. Chem., Script Mater., which has been cited by others more than 300 times.
Title:Bioinspired Graphene-Copper Matrix Nanocomposites
SymposiumB12 Metallic Composite
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Abstract

Metals can be strengthened by adding hard reinforcements, but such strategy usually compromises ductility and toughness. Natural nacre consists of hard and soft phases organized in a regular ‘brick-and-mortar’ structure and exhibits a superior combination of mechanical strength and toughness, which is an attractive model for strengthening and toughening artificial composites, but such bioinspired metal matrix composite has yet to be made. Here we prepared nacre-like reduced graphene oxide (RGrO) reinforced Cu matrix composite based on a preform impregnation process, by which two-dimensional RGrO was used as ‘brick’ and inserted into ‘□-and-mortar’ ordered porous Cu preform (the symbol ‘□’ means the absence of ‘brick’), followed by compacting. This process realized uniform dispersion and alignment of RGrO in Cu matrix simultaneously. The RGrO-and-Cu artificial nacres exhibited simultaneous enhancement on yield strength and ductility as well as increased modulus, attributed to RGrO strengthening, effective crack deflection and a possible combined failure mode of RGrO. The artificial nacres also showed significantly higher strengthening efficiency than other conventional Cu matrix composites, which might be related to the alignment of RGrO.

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Abstract: Minyang Lu

Sponsor: Wenyang Yang

Media: Liping Wang

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