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Hwang Euyheon

Sungkyunkwan University · 材料科学

研究室紹介

Professor Hwang Euyheon's research lab specializes in the theoretical investigation of electronic and transport properties in two-dimensional materials, with a primary focus on graphene and related 2D systems. The lab explores carrier transport mechanisms influenced by disorder, electron-phonon interactions, and many-body effects such as screening and plasmon excitations. Key research directions include the impact of charged impurities and substrate effects on mobility, temperature-dependent conductivity, and the emergence of collective excitations in bilayer and doped graphene structures. The work combines many-body theory with realistic material parameters to explain and predict experimental observations in nanoscale electronic systems.

2D materialselectron transportdisorder effectsplasmonsgraphene

Research Overview

Papers
278
Total Citations
21,507
Papers (5y)
32
Primary Field
材料科学

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
32total
2022
2023
2024
2025
2026
Citations per year (5y)
575total
20222023202420252026

Selected Papers

15
1
Article|1,254 citations·2007
Carrier Transport in Two-Dimensional Graphene Layers
E. H. Hwang, Shaffique Adam, S. Das Sarma
SJR Q1Physical Review LettersOA

Carrier transport in gated 2D graphene monolayers is considered in the presence of scattering by random charged impurity centers with density n(i). Excellent quantitative agreement is obtained (for carrier density n>10(12) cm(-2)) with existing experimental data. The conductivity scales linearly with n/n(i) in the theory. We explain the experimentally observed asymmetry between electron and hole conductivities, and the high-density saturation of conductivity for the highest mobility samples. We

Materials ChemistryMaterials Science
2
Article|862 citations·2008
Acoustic phonon scattering limited carrier mobility in two-dimensional extrinsic graphene
E. H. Hwang, S. Das Sarma
SJR Q1Physical Review BOA

We theoretically calculate the phonon scattering limited electron mobility in extrinsic (i.e., gated or doped with a tunable and finite carrier density) two-dimensional graphene layers as a function of temperature $(T)$ and carrier density $(n)$. We find a temperature-dependent phonon-limited resistivity ${\ensuremath{\rho}}_{\mathit{ph}}(T)$ to be linear in temperature for $T\ensuremath{\gtrsim}50\phantom{\rule{0.3em}{0ex}}\mathrm{K}$ with the room-temperature intrinsic mobility reaching the va

Materials ChemistryMaterials Science
3
Article|384 citations·2015
Surface group modification and carrier transport properties of layered transition metal carbides (Ti2CTx, T: –OH, –F and –O)
Shen Lai, Jaeho Jeon, Sung Kyu Jang, Jiao Xu, Young Jin Choi, Jin‐Hong Park, E. H. Hwang, Sungjoo Lee
SJR Q1Nanoscale

Correction for 'Surface group modification and carrier transport properties of layered transition metal carbides (Ti2CTx, T: -OH, -F and -O)' by Shen Lai, et al., Nanoscale, 2015, DOI: 10.1039/c5nr06513e.

Materials ChemistryMaterials Science
4
Article|267 citations·2009
Screening-induced temperature-dependent transport in two-dimensional graphene
E. H. Hwang, S. Das Sarma
SJR Q1Physical Review BOA

We calculate the temperature-dependent conductivity of graphene in the presence of randomly distributed Coulomb impurity charges arising from the temperature-dependent screening of the Coulomb disorder without any phonons. The purely electronic temperature dependence of our theory arises from two independent mechanisms: the explicit temperature dependence of the finite-temperature dielectric function $\ensuremath{\epsilon}(q,T)$ and the finite-temperature energy averaging of the transport scatte

Materials ChemistryMaterials Science
5
Article|232 citations·2009
Plasmon modes of spatially separated double-layer graphene
E. H. Hwang, S. Das Sarma
SJR Q1Physical Review BOA

We derive the plasmon dispersion in doped double-layer graphene (DLG), made of two parallel graphene monolayers with carrier densities ${n}_{1}$ and ${n}_{2}$, respectively, and an interlayer separation of $d$. The linear chiral gapless single-particle energy dispersion of graphene leads to DLG plasmon properties with several unexpected experimentally observable characteristic features such as a nontrivial influence of an undoped $({n}_{2}=0)$ layer on the DLG plasmon dispersion and a strange in

Materials ChemistryMaterials Science
6
Article|205 citations·2008
Single-particle relaxation time versus transport scattering time in a two-dimensional graphene layer
E. H. Hwang, S. Das Sarma
SJR Q1Physical Review BOA

We theoretically calculate and compare the single particle relaxation time $({\ensuremath{\tau}}_{s})$ defining the quantum level broadening and the transport scattering time $({\ensuremath{\tau}}_{t})$ defining the Drude conductivity in two-dimensional (2D) graphene layers in the presence of screened charged impurity scattering and short-range defect scattering. We find that the ratio ${\ensuremath{\tau}}_{t}∕{\ensuremath{\tau}}_{s}$ strongly increases with increasing ${k}_{F}{z}_{i}$ and $\ens

Materials ChemistryMaterials Science
7
Article|193 citations·2009
Theory of thermopower in two-dimensional graphene
E. H. Hwang, Enrico Rossi, S. Das Sarma
SJR Q1Physical Review BOA

Motivated by recent experiments by Yuri M. Zuev et al. [Phys. Rev. Lett. 102, 096807 (2009)], Peng Wei et al. [Phys. Rev. Lett. 102, 166808 (2009)], and Joseph G. Checkelsky et al. [Phys. Rev. B 80, 081413(R) (2009)], we calculate the thermopower of graphene incorporating the energy dependence of various transport scattering times. We find that scattering by screened charged impurities gives a reasonable explanation for the measured thermopower. The calculated thermopower behaves as $1/\sqrt{n}$

Materials ChemistryMaterials Science
8
Article|190 citations·2007
Transport in chemically doped graphene in the presence of adsorbed molecules
E. H. Hwang, Shaffique Adam, S. Das Sarma
SJR Q1Physical Review BOA

Motivated by a recent experiment reporting on the possible application of graphene as sensors, we calculate transport properties of two-dimensional graphene monolayers in the presence of adsorbed molecules. We find that the adsorbed molecules, acting as compensators that partially neutralize the random charged impurity centers in the substrate, enhance the graphene mobility without much change in the carrier density. We predict that subsequent field-effect measurements should preserve this highe

Materials ChemistryMaterials Science
9
Article|173 citations·2008
Screening, Kohn Anomaly, Friedel Oscillation, and RKKY Interaction in Bilayer Graphene
E. H. Hwang, S. Das Sarma
SJR Q1Physical Review LettersOA

We calculate the screening function in bilayer graphene (BLG) in both the intrinsic (undoped) and the extrinsic (doped) regimes within the random phase approximation, comparing our results with the corresponding single layer graphene and the regular two-dimensional electron gas. We find that the Kohn anomaly is strongly enhanced in BLG. We also discuss the Friedel oscillation and the RKKY interaction, which are associated with the nonanalytic behavior of the screening function at q=2k(F). We fin

Materials ChemistryMaterials Science
10
Article|172 citations·2010
Plasmon-phonon coupling in graphene
E. H. Hwang, Rajdeep Sensarma, S. Das Sarma
SJR Q1Physical Review BOA

Collective excitations of coupled electron-phonon systems are calculated for both monolayer and bilayer graphenes, taking into account the nonperturbative Coulomb coupling between electronic excitations in graphene and the substrate longitudinal-optical phonon modes. We find that the plasmon-phonon coupling in monolayer graphene is strong at all densities but in bilayer graphene the coupling is significant only at high densities satisfying the resonant condition ${\ensuremath{\omega}}_{pl}\ensur

Materials ChemistryMaterials Science
11
Article|151 citations·2020
Sensory Adaptation and Neuromorphic Phototransistors Based on CsPb(Br1–xIx)3 Perovskite and MoS2 Hybrid Structure
Seongin Hong, Seung Hee Choi, Jongsun Park, Hocheon Yoo, Joo Youn Oh, E. H. Hwang, Dae Ho Yoon, Sunkook Kim
SJR Q1ACS Nano

Sensory adaptation is an essential part of biological neural systems for sustaining human life. Using the light-induced halide phase segregation of CsPb(Br<sub>1-<i>x</i></sub>I<sub><i>x</i></sub>)<sub>3</sub> perovskite, we introduce neuromorphic phototransistors that emulate human sensory adaptation. The phototransistor based on a hybrid structure of perovskite and transition-metal dichalcogenide (TMD) emulates the sensory adaptation in response to a continuous light stimulus, similar to the n

Electrical and Electronic EngineeringEngineering
12
Article|145 citations·2007
Inelastic carrier lifetime in graphene
E. H. Hwang, Ben Yu-Kuang Hu, S. Das Sarma
SJR Q1Physical Review BOA

We consider hot-carrier inelastic scattering due to electron-electron interactions in graphene as functions of carrier energy and density. We calculate the imaginary part of the zero-temperature quasiparticle self-energy for doped graphene utilizing the ${G}_{0}W$ and random phases approximations. Using the full dynamically screened Coulomb interaction, we obtain the inelastic quasiparticle lifetimes and associated mean free paths. The linear dispersion of graphene gives lifetime energy dependen

Materials ChemistryMaterials Science
13
Article|116 citations·2008
Quasiparticle spectral function in doped graphene: Electron-electron interaction effects in ARPES
E. H. Hwang, S. Das Sarma
SJR Q1Physical Review BOA

We calculate the electron self-energy as well as the quasiparticle spectral function in doped graphene, taking into account electron-electron interaction in the leading order dynamically screened Coulomb coupling and electron-impurity interaction associated with quenched disorder. Our theory provides the basis for calculating all one-electron properties of extrinsic graphene. Comparison with existing angle-resolved photoemission spectroscopy measurements shows broad qualitative and semiquantitat

Materials ChemistryMaterials Science
14
Article|108 citations·2008
Limit to two-dimensional mobility in modulation-doped GaAs quantum structures: How to achieve a mobility of 100 million
E. H. Hwang, S. Das Sarma
SJR Q1Physical Review BOA

Considering scattering by unintentional background charged impurities and by charged dopants in the modulation doping layer as well as by GaAs acoustic phonons, we theoretically consider the practical intrinsic (phonons) and extrinsic (background and dopants) limits to carrier mobility in modulation-doped AlGaAs-GaAs two-dimensional (2D) semiconductor structures. We find that reducing background impurity density to ${10}^{12}\text{ }{\text{cm}}^{\ensuremath{-}3}$ along with a modulation doping s

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
15
Article|102 citations·2019
Plasmonic Transition Metal Carbide Electrodes for High-Performance InSe Photodetectors
Yajie Yang, Jaeho Jeon, Jin‐Hong Park, Mun Seok Jeong, Byoung Hun Lee, E. H. Hwang, Sungjoo Lee
SJR Q1ACS Nano

We demonstrate the application of MXenes, metallic 2D materials of transition-metal carbides, as excellent electrode materials for photonic devices. In this study, we have fabricated an InSe-based photodetector with a Ti<sub>2</sub>CT<sub><i>x</i></sub> electrode. The photodetector with few-layer, atomically thin, Ti<sub>2</sub>CT<sub><i>x</i></sub> (MXene) electrodes shows the avalanche carrier multiplication effect, which leads to high device performance. To improve the performance of the InSe

Materials ChemistryMaterials Science

Research Areas

Materials ChemistryAtomic and Molecular Physics, and OpticsElectrical and Electronic EngineeringCondensed Matter PhysicsBiomedical EngineeringElectronic, Optical and Magnetic Materials

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