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Sheng-Chin Ho

Researcher at National Cheng Kung University

Publications -  5
Citations -  320

Sheng-Chin Ho is an academic researcher from National Cheng Kung University. The author has contributed to research in topics: Spintronics & Medicine. The author has an hindex of 2, co-authored 2 publications receiving 251 citations.

Papers
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Journal ArticleDOI

All-electric all-semiconductor spin field-effect transistors

TL;DR: An all-electric and all-semiconductor spin field-effect transistor in which distinct engineering architectures of spin-orbit coupling are exploited for the quantum point contacts and the central semiconductor channel to achieve complete control of the electron spins in a purely electrical manner.
Journal Article

Imaging the zig-zag Wigner crystals in confinement-tunable quantum wires

TL;DR: The observation of such zigzag Wigner crystals by use of on-chip charge and spin detectors employing electron focusing to image the charge density distribution and probe their spin properties is reported.
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Axion optical induction of antiferromagnetic order

TL;DR: In this paper , the authors showed that the optical control and circular dichroism both arise from the optical axion electrodynamics, which can be used to control a family of symmetric antiferromagnets such as Cr2O3, CrI3 and possibly the pseudo-gap state in cuprates.
Posted ContentDOI

Quantum metric nonlinear Hall effect in a topological antiferromagnetic heterostructure.

TL;DR: In this article, a nonlinear Hall effect induced by quantum metric dipole by interfacing even-layered MnBi2Te4 with black phosphorus was reported, which switches direction upon reversing the AFM spins and exhibits distinct scaling that is independent of the scattering time.
Journal ArticleDOI

Engineering the Strain and Interlayer Excitons of 2D Materials via Lithographically Engraved Hexagonal Boron Nitride.

TL;DR: In this article , an arbitrary on-chip control of both the strain distribution and magnitude on high-quality molybdenum disulfide was achieved by creating atomically flat surface nanostructures in hexagonal boron nitride.