Shenyang National Laboratory for Materials Science, Institute of Metal Research, Chinese Academy of Sciences, 110016 Shenyang, P.R. China.
Science. 2011 Jun 3;332(6034):1179-82. doi: 10.1126/science.1202190.
The selection of a structural material requires a compromise between strength and ductility. The material properties will then be set by the choice of alloy composition and microstructure during synthesis and processing, although the requirements may change during service life. Materials design strategies that allow for a recoverable tuning of the mechanical properties would thus be desirable, either in response to external control signals or in the form of a spontaneous adaptation, for instance in self-healing. We have designed a material that has a hybrid nanostructure consisting of a strong metal backbone that is interpenetrated by an electrolyte as the second component. By polarizing the internal interface via an applied electric potential, we accomplish fast and repeatable tuning of yield strength, flow stress, and ductility. The concept allows the user to select, for instance, a soft and ductile state for processing and a high-strength state for service as a structural material.
结构材料的选择需要在强度和延展性之间进行权衡。材料性能将取决于合成和加工过程中合金成分和微观结构的选择,尽管在使用寿命期间要求可能会发生变化。因此,需要设计一种材料,该材料具有混合纳米结构,由作为第二组分的强金属骨架和电解质交织而成。通过施加电场来极化内部界面,我们实现了屈服强度、流动应力和延展性的快速和可重复调节。该概念允许用户例如选择用于加工的柔软和延展性状态以及用作结构材料的高强度状态。