2,246 research outputs found

    Exploiting Auxetics to Design Composite Materials with Enhanced Mechanical Performance

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    Topological Crystalline Insulators with C2C_2 Rotation Anomaly

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    Based on first-principles calculations and symmetry-based indicator analysis, we find a class of topological crystalline insulators (TCIs) with C2C_2 rotation anomaly in a family of Zintl compounds, including Ba3Cd2As4\mathrm{Ba}_{3}\mathrm{Cd}_{2}\mathrm{As}_{4}, Ba3Zn2As4\mathrm{Ba}_{3}\mathrm{Zn}_{2}\mathrm{As}_{4} and Ba3Cd2Sb4\mathrm{Ba}_{3}\mathrm{Cd}_{2}\mathrm{Sb}_{4}. The nontrivial band topology protected by coexistence of C2C_2 rotation symmetry and time-reversal symmetry TT leads to two surface Dirac cones at generic momenta on both top and bottom surfaces perpendicular to the rotation axis. In addition, (d−2d-2)-dimensional helical hinge states are also protected along the hinge formed by two side surfaces parallel with the rotation axis. We develop a method based on Wilson loop technique to prove the existence of these surface Dirac cones due to C2C_2 anomaly and precisely locate them as demonstrated in studying these TCIs. The helical hinge states are also calculated. Finally, we show that external strain can be used to tune topological phase transitions among TCIs, strong Z2_2 topological insulators and trivial insulators.Comment: 10 pages, 10 figure
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