Magnetotransport measurements are crucial for understanding the Fermi surface properties, magnetism, and topology in quantum materials. Here, we report the discovery of giant room temperature odd-parity magnetoresistance (OMR) in a bilayer graphene (BLG) heterostructure interfaced with Cr$_2$Te$_2$Ge$_6$ (CGT). Using magnetotransport measurements, we demonstrate that the BLG/CGT heterostructure exhibits a significant antisymmetric longitudinal magnetoresistance, indicative of intrinsic time-reversal symmetry (TRS) breaking in the system. We show that the OMR is tunable via electrostatic gating. Additionally, the OMR is pronounced near the band edges and diminishes with increasing charge carrier density in graphene. Our theoretical analysis reveals that this phenomenon arises from the coupling of the out-of-plane components of Berry curvature and orbital magnetic moment to the applied magnetic field in a TRS-broken system. Our findings establish OMR as a significant probe for TRS breaking in quantum materials in which the crystal symmetries preclude the appearance of anomalous Hall effect.
H. Dulisch, Daniel J. Emmerich, Eike Icking, K. Hecker, S. Möller, Leonard Müller, Kenji Watanabe, Takashi Taniguchi, Christian Volk, Christoph Stampfer
Alexander Rothstein, Christoph Schattauer, Robin J. Dolleman, Stefan Trellenkamp, Florian Lentz, Kenji Watanabe, Takashi Taniguchi, Dante M. Kennes, Bernd Beschoten, Christoph Stampfer, Florian Libisch
А. Л. Шилов, M. A. Kashchenko, Pierre A. Pantaleón, M. Kravtsov, Andrei Kudriashov, Zhen Zhan, T. Taniguchi, Kenji Watanabe, Sergey Slizovskiy, Konstantin ‘kostya’ Novoselov, Vladimir I. Fal’ko, F. Guinea, D. A. Bandurin
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