4.8 Article

Manipulating Weyl quasiparticles by orbital-selective photoexcitation in WTe2

期刊

NATURE COMMUNICATIONS
卷 12, 期 1, 页码 -

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NATURE RESEARCH
DOI: 10.1038/s41467-021-22056-9

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资金

  1. National Natural Science Foundation of China [12025407, 91850120, 11774396, 11934003, 11974045]
  2. National Key Research and Development Program of China [2016YFA0300902, 2015CB921001, 2016YFA0202300, 2020YFA0308800]
  3. Chinese Academy of Sciences [XDB330301, XDB30000000]

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Optical control of Weyl semimetals allows for the development of switchable and dissipationless topological devices at ultrafast scales. Unexpected orbital-selective photoexcitations have been reported in type-II Weyl material WTe2 under linearly polarized light, inducing transitions among different topologically distinct phases. This new perspective provides insight into manipulating the Weyl node singularity and coherent control of electron and lattice quantum dynamics.
Optical control of structural and electronic properties of Weyl semimetals allows development of switchable and dissipationless topological devices at the ultrafast scale. An unexpected orbital-selective photoexcitation in type-II Weyl material WTe2 is reported under linearly polarized light (LPL), inducing striking transitions among several topologically-distinct phases mediated by effective electron-phonon couplings. The symmetry features of atomic orbitals comprising the Weyl bands result in asymmetric electronic transitions near the Weyl points, and in turn a switchable interlayer shear motion with respect to linear light polarization, when a near-infrared laser pulse is applied. Consequently, not only annihilation of Weyl quasiparticle pairs, but also increasing separation of Weyl points can be achieved, complementing existing experimental observations. In this work, we provide a new perspective on manipulating the Weyl node singularity and coherent control of electron and lattice quantum dynamics simultaneously. Photoexcitation in Weyl semimetals is recently reported to induce topological phase transitions useful for ultrafast switching devices. Here, the authors predict that the symmetry of the atomic orbitals comprising the Weyl bands in response to linear light polarization allows for not only annihilation but also separation of Weyl quasiparticles.

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