Center for Advancing Materials Performance from the Nanoscale (CAMP-Nano) and Hysitron Applied Research Center in China (HARCC), State Key Laboratory for Mechanical Behavior of Materials, Xi'an Jiaotong University, Xi'an 710049, People's Republic of China.
College of Science, Xi'an University of Science and Technology, Xi'an 710054, People's Republic of China.
Science. 2019 Jul 5;365(6448):73-75. doi: 10.1126/science.aaw2843.
Lightweight magnesium alloys are attractive as structural materials for improving energy efficiency in applications such as weight reduction of transportation vehicles. One major obstacle for widespread applications is the limited ductility of magnesium, which has been attributed to [Formula: see text] dislocations failing to accommodate plastic strain. We demonstrate, using in situ transmission electron microscope mechanical testing, that [Formula: see text] dislocations of various characters can accommodate considerable plasticity through gliding on pyramidal planes. We found that submicrometer-size magnesium samples exhibit high plasticity that is far greater than for their bulk counterparts. Small crystal size usually brings high stress, which in turn activates more [Formula: see text] dislocations in magnesium to accommodate plasticity, leading to both high strength and good plasticity.
轻量镁合金作为结构材料,在减轻运输工具重量以提高能源效率等应用中具有吸引力。广泛应用的一个主要障碍是镁的延展性有限,这归因于[公式:见文本]位错无法适应塑性应变。我们通过原位透射电子显微镜力学测试证明,各种位错可以通过在金字塔面上滑移来适应相当大的塑性。我们发现,亚微米级的镁样品表现出很高的延展性,远远超过其块状对应物。小晶体尺寸通常会带来高应力,这反过来又会激活更多的[公式:见文本]位错来适应塑性,从而实现高强度和良好的延展性。