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Zesheng Zhang

Publications and source records attributed to Zesheng Zhang.

2 recordsLinked to original sources

Breaking the mutual exclusivity between metallicity and ferroelectricity in a non-polar covalent semiconductor via orbital selective doping

The mutual exclusion of ferroelectricity and metallic conductivity is a long-standing tenet because itinerant electrons screen long-range Coulomb forces that stabilize the bulk polar order. Here, we break this paradigm by heavily doping a non-polar covalent semiconductor of cubic silicon carbide (3C-SiC) with nitrogen. This introduces heavy electron doping, inducing metallicity and driving a structural transition from the non-polar F-43m to the polar R3m symmetry via the pseudo-Jahn-Teller effect. Remarkably, we provide direct, atomic-scale visualization of about 180° polarization reversal under an external voltage bias in a ferroelectric metal. The strongly directional character of antibonding orbitals occupied by conduction electrons prevents them from screening the local Si-C polarization, resulting in the coexistence of metallicity and ferroelectricity. Ferroelectric tunnel junctions demonstrate nonvolatile memory properties with a well-defined high-resistance state (HRS) and low-resistance state (LRS), an ultrahigh response speed (~50 ns), an ultralow operating voltage (1 V), an endurance exceeding 85927 cycles, and a projected retention time of 100 years. Our results provide a novel strategy for pioneering ferroelectricity in a metal, a new ferroelectric metal platform for exploring exotic properties, and a ferroelectric device with high performance that meets the requirements for low consumption and high-speed non-volatile devices.

cond-mat.mtrl-sci

Orbital magnetization as the origin of the nonlinear Hall effect

The nonlinear Hall effect is a new type of Hall effect that has recently attracted significant attention. For the physical origin of the nonlinear Hall effect, while orbital magnetization has long been hypothesized to underpin the nonlinear Hall effect, a general relation between the two quantities remains elusive. Here, we resolve the problem by deriving the first explicit formula connecting the electric field induced orbital magnetization to the second order Hall conductivity. Our theory reveals that the applied electric field plays dual roles in generating the nonlinear Hall effect: it first generates nonequlibrium orbital magnetization associated with an edge current, and subsequently perturbs the circulating edge states to produce transverse Hall voltage. For the experimental verification, we propose to apply a combination of direct and alternative currents to identify the circulating edge current in the nonlinear Hall effect. Based on the orbital magnetization origin, we point out that in isotropic chiral metals of T and O point groups, the crystalline symmetry suppresses the nonlinear Hall response for a monochromatic linear polarized electric field, but a non-collinear bichromatic electric field can generate a finite nonlinear Hall current that manifests the chiral correlation of the field. This discovery finally enables us to incorporate both the nonlinear Hall effect and circular photo-galvanic effect into the framework of orbital magnetization.

cond-mat.mes-hall