What is it about?

With the rapid development of modern human civilization, the demand for high performance materials is dramatically increasing. Single-type of materials cannot satisfy this rapid growth in demand for advanced properties. Therefore, the advancement of human civilization has to be driven by the invention of novel materials combining dissimilar materials to achieve the goal of greatly enhanced overall properties for a wide range of applications in aerospace, automotive, robotics, energy.

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Why is it important?

The advantage of hybrid materials lies in the combination of the dissimilar properties of their individual components into a single material. They can also possess new properties coming from the interaction of their individual constituents to make them a technologically innovative material system. Hybrid materials can be fabricated by combining a wide range of material types including metals, ceramics, polymers, elastomers and glasses. Some examples include metal matrix composite, carbon nanotube polymer/ceramic/metal composite and cermet (ceramic and metal). However, the technology to achieve the “joining” of dissimilar materials has always been a critical and challenging problem for advanced manufacturing of novel dissimilar materials. Metals have always been a particularly interesting material and playing a dominating role in our modern society since the Bronze age. Although several technologies have been developed to join metal based hybrid materials, it is still challenging to join these dissimilar metallic materials with improved properties in a consistent, cost-effective, energy-efficient, environmental benign manner. Therefore, novel techniques to join materials is a cornerstone for many advanced manufacturing techniques and is critical to fabricate advanced hybrid materials with unprecedented properties. The key of a successful joining of dissimilar materials with desired properties lies in the “bonding strength” of a joint. The bonding strength is affected by a range of parameters that can be better understood, controlled and optimized by both experimental and analytical approaches. For example, the bonding strength can be greatly improved by maintaining clean atomic contact between dissimilar materials and clean interfaces/surfaces free of contaminants.

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This page is a summary of: Latest Developments in Modeling and Characterization of Joining Metal Based Hybrid Materials, Advanced Engineering Materials, May 2018, Wiley,
DOI: 10.1002/adem.201800048.
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