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Woon Kang

Ewha Womans University · Physics and Astronomy

About the Lab

Professor Woon Kang's research lab specializes in the experimental investigation of low-dimensional quantum materials, with a primary focus on organic conductors and superconductors—particularly Bechgaard salts such as (TMTSF)2X (X = ClO4, PF6). The lab explores electronic phenomena including spin-density wave transitions, metal-insulator transitions, and unconventional superconductivity, using advanced techniques such as NMR, impedance spectroscopy, and high-field transport measurements. A central theme is understanding the interplay between electron correlations, lattice distortions, and electronic instabilities in quasi-one-dimensional systems.

organic conductorsspin-density wavehigh-field transportNMR spectroscopylow-dimensional systems

Research Overview

Papers
8
Total Citations
31
Papers (5y)
8
Primary Field
Physics and Astronomy

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
8total
2001
2003
2004
2005
2009
Citations per year (5y)
31total
20012003200420052009

Selected Papers

8
1
Article|9 citations·2003
NMR observation of a high temperature phase transition in the organic superconductor (TMTSF)2ClO4
C.H.Lee, K.M.Lee, CheolEuiLee, 강원

A high temperature phase transitional behavior in the organic superconductor (TMTSF)2ClO4 (tetramethyltetrafulvalenium-perchlorate) was manifest in our1H NMR measurements.Our observations are discussed in the light of a dimensional crossover ofthe electronic transport.. 2002 Elsevier Science B.V. All rights reserved.

2
Article|8 citations·2001
Synthesis, Characterization, and Electronic Structure of a New Molybdenum Bronze SnMo4O6
Dongwoon Jung, Bang‐Hee Lee, Sung‐Jin Kim, Won Kang
SJR Q1Chemistry of Materials

SnMo 4 O 6 was synthesized at low temperature from the mixture of MoO 2 and Mo 2 O 3 using Sn flux. The structure of this compound was determined by the single-crystal X-ray diffraction method. It crystallizes in the tetragonal space group P 4/ mbm with a = 9.580(4) and c = 2.843(6). The structure of SnMo 4 O 6 is composed of edge-sharing Mo 6 O 12 chains extending down the c axis, and four chains are connected to form channels filled with Sn cations. The resistivity measurement for SnMo 4 O 6 a

Condensed Matter PhysicsPhysics and Astronomy
3
Article|6 citations·2004
19 F nuclear magnetic resonance study of the anisotropic anionic motions in the (TMTSF)2PF6 organic superconductor
S.H.Kim, 이철의, K.W.Lee, Cheol Eui Lee, 강원, 홍관수

Molecular motions in an organic superconductor, (TMTSF)2PF6, were investigated by means of19F NMR. The temperature dependence of the spinlattice relaxation rate was tted with two distinct molecular motions, indicating two dierent modes ascribedto the distorted octahedral anion sublattice. As a result, anisotropic anionic motions, which may trigger the subtle mesoscopic electronic instability in this quasi-1D conductor, were revealed.

4
Article|3 citations·2005
NMR Study of the Anionic Motion in the (TMTSF)2PF6 Organic Conductor
김세헌, 이철의, 김인묵, 홍관수, 이규원, 강원

The 19F nuclear magnetic resonance spin-lattice relaxation in an organic superconductor, (TMTSF)2PF6, was investigated in view of the molecular motions of the anionic sublattice structure. The temperature dependence of the spin-lattice relaxation was described well by the anionic molecular motions in unequal potential wells with distinct activation energies and correlation times.

5
Article|3 citations·2009
Low-frequency dielectric response in the quasi-one-dimensional organic conductor (TMTSF)2PF6
K.W. Lee, S.H. Kim, J.W. Jang, 이철의, Y.J. Jo, 강원

A unique and rare opportunity of revealing the nature of the spin-density-wave (SDW) fluctuation in the quasi-one-dimensional organic conductor (TMTSF)2PF6 has been provided by our AC impedance measurements above the SDW transition temperature. A close resemblance of the low-frequency dielectric response in the range between 20 K and the temperature of maximum resistivity Tmax 80 K to that in the SDW ground state was revealed, with quite compatible exponents for their power law dependencies. Th

6
Article|1 citations·2004
Magnetoresistance study of low-dimensional electrons in the Bechgaard salts
강원

High magnetic eld in addition to low temperature and high pressure plays an important role in the study of transport propertiesof low-dimensional electron systems found in organic conductors, especially those in the Bechgaard salts. Magnetoresistance as afunction of eld direction as well as magnetic eld strength shows magnetic oscillations, resonant behaviors, and quantum eects.Comparison of these properties among various Bechgaard salts is particularly informative because anions impose many die

7
Article|1 citations·2005
단일 ZnO 나노선 4단자 소자의 전기적 특성
강해용, 김혜영, 김규태, 강원, 김강현, 임찬영, 전대영, 이종수

Four-probe device of single ZnO nanowire was fabricated by electron beam lithography. Electrical characterizations in a two-probe and a four-probe configuration with a back-gate were carried out to clarify the relative contribution of the contact and the intrinsic part in a ZnO nanowire. I-V characteristic in four-probe measurement showed an ohmic behavior with a high conductivity, 100 S/cm, which was better than those of two-probe measurement by 10 times. At the same values of the current betwe

8
Article|0 citations·2001
ChemInform Abstract: Synthesis, Characterization, and Electronic Structure of a New Molybdenum Bronze SnMo4O6.
Dongwoon Jung, Bang‐Hee Lee, Sungjin Kim, Won Kang
ChemInform

Abstract ChemInform is a weekly Abstracting Service, delivering concise information at a glance that was extracted from about 100 leading journals. To access a ChemInform Abstract of an article which was published elsewhere, please select a “Full Text” option. The original article is trackable via the “References” option.

CatalysisChemical Engineering

Research Areas

Condensed Matter PhysicsCatalysis

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