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Origin of giant magnetoresistance in layered nodal-line semimetal TaNiTe5 nanoflakes
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Layered transition metal chalcogenides have stimulated a wide research interest due to their many exotic physical properties. In this paper, we studied the magnetotransport properties of the exfoliated TaNiTe5, a recently discovered Dirac nodal-line semimetal. A giant positive magnetoresistance (MR) is observed when the current is parallel to the crystallographic c axis, while it is strongly diminished when the current flows along the a axis. The observed giant MR is gradually suppressed either on reducing the thickness of nanoflake or on increasing temperature. By performing MR measurement in tilted magnetic fields, the interlayer coupling is found to be weakened both by reducing the thickness and by increasing temperature. We propose a mechanism of electron-electron interaction-assisted interlayer transport as a origin of the giant MR. The mechanism is likely to provide a explanation for the giant MR in other layered materials.
Forward citations
Cited by 2 Pith papers
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Mechanical enhancement of quantum oscillations
The enhanced quantum oscillations in TaNiTe5 are explained as a mechanical artifact: the AC current makes the sample vibrate in the magnetic field, and the de Haas-van Alphen torque modulates the resulting motional voltage.
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De Haas - van Alphen study of the Dirac nodal-line semimetal candidate TaPtTe$_5$
A rotation-resolved de Haas-van Alphen study maps the Fermi surface of TaPtTe5 and finds agreement with DFT calculations that predict a nodal line encircled by a small cylindrical pocket.
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