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All-Optical Steering of Competing Topological Pathways in ZrTe5
Yamei Zhou1, Yanjie Huang1, Jingyi Duan1
1Centre for Quantum Physics, Key Laboratory of Advanced Optoelectronic Quantum Architecture and Measurement (Ministry of Education), School of Physics, Beijing Institute of Technology, Beijing 100081, China.
None:
All-optical topological control offers a pathway toward ultrafast manipulation of quantum phases with minimal dissipation. Here we demonstrate that mode-selective coherent-phonon excitation in ZrTe5 enables deterministic steering of the lattice across symmetry-distinct topological phases. Displacive driving of the Raman-active A1g mode reshapes the potential energy surface and induces a femtosecond transition sequence from a strong topological insulator to a Dirac semimetal and subsequently to a weak topological insulator. Beyond a critical atomic displacement, nonlinear phonon coupling activates the infrared B1u mode, breaks inversion symmetry, and opens an alternative route to a Weyl semimetal. At higher excitation strengths, bandgap renormalization and modified electron-phonon coupling induce a nonmonotonic B1u response, revealing competing symmetry-preserving and symmetry-breaking pathways. Building on these insights, we propose a dual-color control scheme that enables directional phase selection. These results establish a mode-resolved framework for ultrafast navigation of topological phase space, verifiable via ultrafast transport or diffraction techniques.
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