Byung-Min Son
Sungkyunkwan University · 物理学・天文学
研究室紹介
Professor Byung-Min Son's research lab specializes in the investigation of quantum phenomena in correlated oxide materials, with a focus on electronic, orbital, and spin degrees of freedom at the atomic scale. The lab employs advanced spectroscopic and scattering techniques—such as angle-resolved photoemission spectroscopy (ARPES), resonant inelastic x-ray scattering (RIXS), and resonant soft X-ray scattering (RSXS)—to probe quantum confinement, Mott insulating states, and emergent magnetic order in ultrathin films and heterostructures. A central theme is the control and understanding of orbital occupancy and electron correlation effects without chemical inhomogeneities, enabling precise exploration of novel quantum phases in complex oxides.
Research Overview
Research Output Trend
Figures are computed from collected data and may differ slightly.
Selected Papers
15In spectroscopic experiments, data acquisition in multi-dimensional phase space may require long acquisition time, owing to the large phase space volume to be covered. In such a case, the limited time available for data acquisition can be a serious constraint for experiments in which multidimensional spectral data are acquired. Here, taking angle-resolved photoemission spectroscopy (ARPES) as an example, we demonstrate a denoising method that utilizes deep learning as an intelligent way to overc
The electronic structure of ${\mathrm{SrRuO}}_{3}$ thin film with a thickness from 1 to 50 unit cell (u.c.) is investigated via the resonant inelastic x-ray scattering (RIXS) technique at the O $K$ edge to unravel the intriguing interplay of orbital and charge degrees of freedom. We found that the orbital-selective quantum confinement effect (QCE) induces the splitting of Ru $4d$ orbitals. At the same time, we observed a clear suppression of the electron-hole continuum across the metal-to-insula
SrRuO<sub>3</sub> (SRO) thin films and their heterostructure have attracted much attention because of the recently demonstrated fascinating properties, such as topological Hall effect and skyrmions. Critical to the understanding of those SRO properties is the study of the spin configuration. Here, we conduct resonant soft X-ray scattering (RSXS) at the oxygen K edge to investigate the spin configuration of a four-unit-cell SRO film that was grown epitaxially on a single-crystal SrTiO<sub>3</sub>
We report on a combined measurement of high-resolution x-ray diffraction on powder and Raman scattering on single crystalline ${\mathrm{NiS}}_{2\ensuremath{-}x}{\mathrm{Se}}_{x}$ samples that exhibit the insulator-metal transition with Se doping. Via x rays, an abrupt change in the bond length between Ni and S (Se) ions was observed at the transition temperature, in sharp contrast to the almost constant bond length between chalcogen ions. Raman scattering, a complementary technique with the uniq
Abstract Hund’s rule coupling ( J ) has attracted much attention recently for its role in the description of the novel quantum phases of multi-orbital materials. Depending on the orbital occupancy, J can lead to various intriguing phases. However, experimental confirmation of the orbital occupancy dependency has been difficult as controlling the orbital degrees of freedom normally accompanies chemical inhomogeneities. Here, we demonstrate a method to investigate the role of orbital occupancy in
Interfaces between dissimilar correlated oxides can offer devices with versatile functionalities, and great efforts have been made to manipulate interfacial electronic phases. However, realizing such phases is often hampered by the inability to directly access the electronic structure information; most correlated interfacial phenomena appear within a few atomic layers from the interface. Here, atomic-scale epitaxy and photoemission spectroscopy are utilized to realize the interface control of co
Magnetic skyrmions have fast evolved from a novelty, as a realization of topologically protected structure with particle-like character, into a promising platform for new types of magnetic storage. Significant engineering progress was achieved with the synthesis of compounds hosting room-temperature skyrmions in magnetic heterostructures, with the interfacial Dzyaloshinskii-Moriya interactions (DMI) conducive to the skyrmion formation. Here we report findings of ultrathin skyrmion formation in a
Abstract Divergent density of states (DOS) can induce extraordinary phenomena such as significant enhancement of superconductivity and unexpected phase transitions. Moreover, van Hove singularities (VHSs) lead to divergent DOS in 2D systems. Despite recent interest in VHSs, only a few controllable cases have been reported to date. In this work, by utilizing an atomically ultra‐thin SrRuO 3 film, the electronic structure of a 2D VHS is investigated with angle‐resolved photoemission spectroscopy a
Magnetism and spin-orbit coupling (SOC) are two quintessential ingredients underlying novel topological transport phenomena in itinerant ferromagnets. Especially, when spin-polarized bands support nodal points/lines whose band degeneracy can be lifted by SOC, the nodal structures can become a source of Berry curvature that leads to large anomalous Hall effect (AHE). Here we show that two-dimensional spin-polarized band structures generally support symmetry-protected nodal lines and points, which
Abstract Correlated electrons in transition metal oxides exhibit a variety of emergent phases. When transition metal oxides are confined to a single-atomic-layer thickness, experiments so far have shown that they usually lose diverse properties and become insulators. In an attempt to extend the range of electronic phases of the single-atomic-layer oxide, we search for a metallic phase in a monolayer-thick epitaxial SrRuO 3 film. Combining atomic-scale epitaxy and angle-resolved photoemission mea
Two-dimensional electron gas (2DEG) states at oxide interfaces between two ferroic materials have been fertile ground to realize controllable multiferroicity. Here, we investigate the 2DEG states at the interface of ferroelectric $\mathrm{BaTi}{\mathrm{O}}_{3}$ and a magnetic layer of iron using angle-resolved photoemission spectroscopy. Orbital-selective charge transfer occurs on the surprisingly robust 2DEG. Based on first-principles calculations, we show how the interfacial hybridization can