晶体孪晶
材料科学
成形性
剪切(地质)
临界切应力
变形机理
六方晶系
变形(气象学)
复合材料
剪应力
凝聚态物理
延展性(地球科学)
结晶学
格子(音乐)
冶金
打滑(空气动力学)
绝热剪切带
作者
Yang He,Dengke Chen,Chongmin Wang,Ting Zhu,Yuyang Wang,Bin Li,Scott X. Mao
标识
DOI:10.1073/pnas.2607072123
摘要
Twinning is a critical deformation mechanism that can significantly enhance the mechanical performance of materials. Predicting active twinning modes has long been a fundamental challenge. It is generally believed that active twinning modes should exhibit low to moderate shear strains to minimize the associated strain energy. Here, using in situ atomic-scale straining experiments, we identify an unconventional twinning mode in hexagonal close-packed (HCP) rhenium nanocrystals, characterized by an extraordinarily large shear strain of ~1.2, the highest reported for HCP crystals to date. Remarkably, this twinning process proceeds via pure lattice shear without the atomic shuffling typically required for conventional HCP twinning. Our results indicate that high stress states attainable in nanocrystals, together with favorable energetics, enable activation of this mode. This ultra-high-shear twinning mechanism holds significant potential for enhancing the formability and ductility of HCP metals.
科研通智能强力驱动
Strongly Powered by AbleSci AI