Superelastic materials capable of recovering large nonlinear strains are ideal for a variety of applications in morphing structures, reconfigurable systems, and robots. However, making oxide materials superelastic has been a long-standing challenge due to their intrinsic brittleness. Here, we fabricate ferroelectric BaTiO(3) (BTO) micropillars that not only are superelastic but also possess excellent fatigue resistance, lasting over 1 million cycles without accumulating residual strains or noticeable variation in stress-strain curves. Phase field simulations reveal that the large recoverable strains of BTO micropillars arise from surface tension-modulated 90° domain switching and thus are size dependent, while the small energy barrier and ultralow energy dissipation are responsible for their unprecedented cyclic stability among superelastic materials. This work demonstrates a general strategy to realize superelastic and fatigue-resistant domain switching in ferroelectric oxides for many potential applications.
Superelastic oxide micropillars enabled by surface tension-modulated 90° domain switching with excellent fatigue resistance.
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作者:Li Yingwei, Chu Kangjie, Liu Chang, Jiang Peng, Qu Ke, Gao Peng, Wang Jie, Ren Fuzeng, Sun Qingping, Chen Longqing, Li Jiangyu
| 期刊: | Proceedings of the National Academy of Sciences of the United States of America | 影响因子: | 9.100 |
| 时间: | 2021 | 起止号: | 2021 Jun 15; 118(24):e2025255118 |
| doi: | 10.1073/pnas.2025255118 | ||
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