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February 14, 2026Journal of Applied Physics2 citationsOpen Access

Non-reciprocal magnetoresistances in chiral tellurium

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SLShuchen LiUniversity of California, RiversideCNChang NiuPurdue University West LafayettePYPeide D. YePurdue University West Lafayette

Key Points

  • The study aims to explore the non-reciprocal magnetoresistances in single-crystalline chiral tellurium and understand the underlying mechanisms.
  • Systematic investigation of angular dependencies of magnetoresistance in single-crystalline chiral tellurium.
  • Examination of three orthogonal magnetic field directions: parallel to the chiral axis, perpendicular in the sample plane, and out of the sample plane.
  • Analysis of chirality- and thickness-dependent magnetoresistance signals.
  • Distinct non-reciprocal magnetoresistances observed along three directions: z, y, and x.
  • Edelstein effect explains non-reciprocity along the z axis due to the chiral structure’s radial spin texture.
  • Nernst effect accounts for chirality-independent signal along the y axis.
  • Orbital magnetization may contribute to non-reciprocity along the x axis.

Abstract

Materials with broken fundamental symmetries, such as chiral crystals, provide a rich playground for exploring unconventional spin-dependent transport phenomena. The interplay between a material’s chirality, strong spin–orbit coupling, and charge currents can lead to complex non-reciprocal effects, where electrical resistance depends on the direction of current and magnetic fields. In this study, we systematically investigate the angular dependencies of magnetoresistance in single-crystalline chiral tellurium (Te). We observe distinct non-reciprocal magnetoresistances for magnetic fields applied along three orthogonal directions: parallel to the current along the chiral axis (z), in the sample plane but perpendicular to the current (y), and out of the sample plane (x). Through the detailed analysis of the chirality- and thickness dependence of the signals, we successfully disentangle multiple coexisting mechanisms. We conclude that the Edelstein effect, arising from the chiral structure’s radial spin texture, is responsible for the non-reciprocity along the z axis. In contrast, the chirality-independent signal along the y axis is attributed to the Nernst effect, and the non-reciprocity along the x axis may originate from the orbital magnetization. These findings elucidate the complex interplay of spin, orbital, and thermal effects in Te, providing a complete picture of its non-reciprocal transport properties.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/699011a12ccff479cfe58899https://doi.org/10.1063/5.0313356
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