Baojuan Dong, Kai Zhao, Ze Wang, Chuanying Xi, Changhao Zhao, Kenji Watanabe, Takashi Taniguchi, Jianming Lu, Jianting Zhao, Fengcheng Wu, Jing Zhang, Zheng Han
Abstract When charge transport occurs under conditions such as topological protection or ballistic motion, the conductance of low-dimensional systems often exhibits quantized values in units of e 2 / h , underpinning advances in quantum metrology and computing. Here we report a quantized quantity: the ratio of displacement field to magnetic field, D / B , in large-twist-angle bilayer graphene. In high magnetic fields, Landau-level crossings between the top and bottom layers produce equal-sized checkerboard patterns across the D / B – ν space. These arise from electric-field-driven interlayer charge transfer of one elementary charge per flux quantum, yielding quantized critical displacement intervals, δ D = $$\frac{e}{2{{\uppi }}{l}_{B}^{2}}$$ e 2 π l B 2 , where l B is the magnetic length. This mechanism offers a route to magnetic sensing, as the displacement-to-magnetic-field ratio is defined solely by fundamental constants. We propose a prototype magnetometer based on this principle, potentially enabling planar mapping of magnetic fields with micrometre resolution via large-twist-angle bilayer graphene sensor arrays. Our results demonstrate that interlayer charge transfer in the quantum Hall regime gives rise to novel phenomena with potential applications in cryogenic magnetometry.