이민철 교수
Lee Minchul
경희대학교 응용물리학과 · 물리·천문학
연구실 소개
Professor Lee Minchul's research lab specializes in quantum transport phenomena in low-dimensional systems, with a focus on strongly correlated electron systems, spintronics, and thermoelectric effects in nanostructured materials. The lab investigates quantum dot-based devices, including Josephson junctions and doped semiconductors, to explore emergent quantum phases such as room-temperature ferromagnetism and 0–π transitions. Using advanced theoretical frameworks like the nonequilibrium Keldysh formalism, the group uncovers non-equilibrium dynamics, including the interplay between Coulomb interactions, temperature modulation, and charge/heat transport. Their work bridges fundamental many-body physics with potential applications in spintronics and quantum energy conversion.
연구 현황
연구 성과 추이
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주요 논문
8ZnO doped with non-magnetic C has been reported to exhibit room-temperature ferromagnetism (RTF). The theoretical explanations of the RTF in ZnO:C are based on the incorporation of C at the O site and on the p-p exchange interaction between the localized C2p spins and valenceband holes. Here, we investigated the incorporation site of C and the electrical properties of Cdoped ZnO films grown by using pulsed laser deposition (PLD) under oxygen-rich and oxygen-poor conditions. Contrary to the theor
The competition between the Kondo correlation and superconductivity in quantum-dot Josephson junctions (QDJJs) has been known to drive a quantum phase transition between 0 and π junctions. Theoretical studies so far have predicted that under strong Coulomb correlations the 0-π transition should go through intermediate states, 0^{'} and π^{'} phases. By combining a nonperturbative numerical method and the resistively shunted junction model, we investigated the magnetic-field-driven phase transiti
We investigate the quantum transport of the heat and the charge through a quantum dot coupled to fermionic contacts under the influence of time modulation of temperatures. We derive, within the nonequilibrium Keldysh Green’s function formalism, generic formulas for the charge and heat currents by extending the concept of gravitational field introduced by Luttinger to the dynamically driven system and by identifying the correct form of dynamical contact energy. In linear response regime our forma
We investigate the quantum transport of the heat and the charge through a quantum dot coupled to fermionic contacts under the influence of time modulation of temperatures.We derive, within the nonequilibrium Keldysh Green's function formalism, generic formulas for the charge and heat currents by extending the concept of gravitational field introduced by Luttinger to the dynamically driven system and by identifying the correct form of dynamical contact energy.In linear response regime our formali
We investigate the quantum transport of the heat and the charge through a quantum dot coupled to fermionic contacts under the influence of time modulation of temperatures.We derive, within the nonequilibrium Keldysh Green's function formalism, generic formulas for the charge and heat currents by extending the concept of gravitational field introduced by Luttinger to the dynamically driven system and by identifying the correct form of dynamical contact energy.In linear response regime our formali
We investigate the quantum transport of the heat and the charge through a quantum dot coupled to fermionic contacts under the influence of time modulation of temperatures. We derive, within the nonequilibrium Keldysh Green's function formalism, generic formulas for the charge and heat currents by extending the concept of gravitational field introduced by Luttinger to the dynamically driven system and by identifying the correct form of dynamical contact energy. In linear response regime our forma
We investigate the effects of Majorana bound states on the ac response of a quantum resistor-capacitor circuit which is composed of a topological superconducting wire whose two ends are tunnel-coupled to a lead and a spinless quantum dot, respectively. The Majorana states formed at the two ends of the wire are found to suppress completely or enhance greatly the dissipation, depending on the strength of the overlap between two Majorana modes and/or the dot level. We compare the relaxation resista
ABSTRACT We review existing classical simulation methods for performing fermionic Gaussian operations and develop new methods to address the gap by adhering to the fundamental theoretical framework established by Bravyi [Quantum Info. Comput. 5, 216 (2005)] for the most general fermionic Gaussian processes. Throughout this attempt, the focus remains on the unified approach that can be applied to generic fermionic Gaussian operations. This is beneficial since the selection of simulation methods h
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