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Chirality manipulation of ultrafast phase switches in a correlated CDW-Weyl semimetal.


ABSTRACT: Light engineering of correlated states in topological materials provides a new avenue of achieving exotic topological phases inaccessible by conventional tuning methods. Here we demonstrate a light control of correlation gaps in a model charge-density-wave (CDW) and polaron insulator (TaSe4)2I recently predicted to be an axion insulator. Our ultrafast terahertz photocurrent spectroscopy reveals a two-step, non-thermal melting of polarons and electronic CDW gap via the fluence dependence of a longitudinal circular photogalvanic current. This helicity-dependent photocurrent reveals continuous ultrafast phase switches from the polaronic state to the CDW (axion) phase, and finally to a hidden Weyl phase as the pump fluence increases. Additional distinctive attributes aligning with the light-induced switches include: the mode-selective coupling of coherent phonons to the polaron and CDW modulation, and the emergence of a non-thermal chiral photocurrent above the pump threshold of CDW-related phonons. The demonstrated ultrafast chirality control of correlated topological states here holds large potentials for realizing axion electrodynamics and advancing quantum-computing applications.

SUBMITTER: Cheng B 

PROVIDER: S-EPMC10817907 | biostudies-literature | 2024 Jan

REPOSITORIES: biostudies-literature

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Chirality manipulation of ultrafast phase switches in a correlated CDW-Weyl semimetal.

Cheng Bing B   Cheng Di D   Jiang Tao T   Xia Wei W   Song Boqun B   Mootz Martin M   Luo Liang L   Perakis Ilias E IE   Yao Yongxin Y   Guo Yanfeng Y   Wang Jigang J  

Nature communications 20240126 1


Light engineering of correlated states in topological materials provides a new avenue of achieving exotic topological phases inaccessible by conventional tuning methods. Here we demonstrate a light control of correlation gaps in a model charge-density-wave (CDW) and polaron insulator (TaSe<sub>4</sub>)<sub>2</sub>I recently predicted to be an axion insulator. Our ultrafast terahertz photocurrent spectroscopy reveals a two-step, non-thermal melting of polarons and electronic CDW gap via the fluen  ...[more]

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