Publications

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2022
Hsu, W-T, Quan J, Pan C-R, Chen P-J, Chou M-Y, Chang W-H, MacDonald AH, Li X, Lin J-F, Shih C-K*.  2022.  Quantitative determination of interlayer electronic coupling at various critical points in bilayer MoS2. Phys. Rev. B. 106:125302. AbstractWebsite

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2021
Lin, M-K, He T, Hlevyack JA, Chen P, Mo S-K, Chou M-Y, Chiang T-C.  2021.  Coherent Electronic Band Structure of TiTe2/TiSe2 Moiré Bilayer. ACS Nano. 15:3359-3364., Number 2 AbstractWebsite
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2019
Wong, DP, Aminzare M, Chou T-L, Pang C-S, Liu Y-ren, Shen T-H, Chang BK, Lien H-T, Chang S-T, Chien C-H, Chen Y-Y, Chu M-W, Yang Y-W, Hsieh W-P, Rogl G, Rogl P, Kakefuda Y, Mori T, Chou M-Y, Chen L-C, Chen K-H.  2019.  Origin of Band Modulation in GeTe-Rich Ge–Sb–Te Thin Film. ACS Applied Electronic Materials. 1:2619-2625., Number 12 AbstractWebsite
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2018
Chen, P, Pai WW, Chan Y-H, Madhavan V, Chou MY, Mo S-K, Fedorov A-V, Chiang T-C.  2018.  Unique Gap Structure and Symmetry of the Charge Density Wave in Single-Layer VSe2, Nov. Phys. Rev. Lett.. 121:196402.: American Physical Society AbstractWebsite

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Xu, C-Z, Chan Y-H, Chen P, Wang X, Flötotto D, Hlevyack JA, Bian G, Mo S-K, Chou M-Y, Chiang T-C.  2018.  Gapped electronic structure of epitaxial stanene on InSb(111), Jan. Phys. Rev. B. 97:035122.: American Physical Society AbstractWebsite
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Flötotto, D, Bai Y, Chan Y-H, Chen P, Wang X, Rossi P, Xu C-Z, Zhang C, Hlevyack JA, Denlinger JD, Hong H, Chou M-Y, Mittemeijer EJ, Eckstein JN, Chiang T-C.  2018.  In Situ Strain Tuning of the Dirac Surface States in Bi2Se3 Films, 2018. Nano LettersNano Letters. 18(9):5628-5632.: American Chemical Society AbstractWebsite
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2017
Zhang, D, Ha J, Baek H, Chan Y-H, Natterer FD, Myers AF, Schumacher JD, Cullen WG, Davydov AV, Kuk Y, Chou MY, Zhitenev NB, Stroscio JA.  2017.  Strain Engineering a 4a×√3a Charge Density Wave Phase in Transition Metal Dichalcogenide 1T-VSe2, Jul. Phys. Rev. Materials. 1:024005.: American Physical Society AbstractWebsite
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Chen, P, Pai WW, Chan Y-H, Takayama A, Xu C-Z, Karn A, Hasegawa S, Chou MY, Mo S-K, Fedorov A-V, Chiang T-C.  2017.  Emergence of charge density waves and a pseudogap in single-layer TiTe2, 2017. 8(1):516. AbstractWebsite

Two-dimensional materials constitute a promising platform for developing nanoscale devices and systems. Their physical properties can be very different from those of the corresponding three-dimensional materials because of extreme quantum confinement and dimensional reduction. Here we report a study of TiTe2 from the single-layer to the bulk limit. Using angle-resolved photoemission spectroscopy and scanning tunneling microscopy and spectroscopy, we observed the emergence of a (2 × 2) charge density wave order in single-layer TiTe2 with a transition temperature of 92 ± 3 K. Also observed was a pseudogap of about 28 meV at the Fermi level at 4.2 K. Surprisingly, no charge density wave transitions were observed in two-layer and multi-layer TiTe2, despite the quasi-two-dimensional nature of the material in the bulk. The unique charge density wave phenomenon in the single layer raises intriguing questions that challenge the prevailing thinking about the mechanisms of charge density wave formation.

Xu, C-Z, Cha Y-H, Chen Y, Chen P, Wang X, Dejoie C, Wong M-H, Hlevyack JA, Ryu H, Kee H-Y, Tamura N, Chou M-Y, Hussain Z, Mo S-K, Chiang T-C.  2017.  Elemental Topological Dirac Semimetal: α-Sn on InSb(111). Physical Review Letters. 118(146402)
Tsai, Y, Chu Z, Han Y, Chuu C-P, Wu D, Johnson A, Cheng F, Chou M-Y, Muller DA, Li X, Lai K, Shih C-K.  2017.  Tailoring Semiconductor Lateral Multijunctions for Giant Photoconductivity Enhancement. Advanced Materials. :1703680–n/a. AbstractWebsite

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2016
Chen, P, Chan Y-H, Wong M-H, Fang X-Y, Chou MY, Mo S-K, Hussain Z, Fedorov A-V, Chiang T-C.  2016.  Dimensional Effects on the Charge Density Waves in Ultrathin Films of TiSe2. NANO LETTERS. 16(10):6331-6336.
Chen, P, Chan Y-H, Fang X-Y, Mo S-K, Hussain Z, Fedorov A-V, Chou MY, Chiang T-C.  2016.  Hidden Order and Dimensional Crossover of the Charge Density Waves in TiSe2. SCIENTIFIC REPORTS. 6:37910.
Feng, B, Chan Y-H, Feng Y, Liu R-Y, Chou MY, Kuroda K, Yaji K, Harasawa A, Moras P, Barinov A, Malaeb WG, Bareille C, Kondo T, Shin S, Komori F, Chiang T-C, Shi Y, Matsuda I.  2016.  Spin Texture in Type II Weyl Semimetal WTe2. PHYSICAL REVIEW B. 94(19):195134.
2015
Chen, P, Chan Y-H, Fang X-Y, Zhang Y, Chou MY, Mo S-K, Hussain Z, Fedorov A-V, Chiang T-C.  2015.  Charge density wave transition in single-layer titanium diselenide. Nature Communications. 6 Abstract
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2009
Ma, Z, Chou MY.  2009.  First-principles investigation of sodium and lithium alloyed alanates, Jun. Journal of Alloys and Compounds. 479:678-683., Number 1-2 AbstractWebsite

We present a first-principles investigation to study the possible alloy phases of sodium and lithium alanates. Structural and energetics properties of alloy systems Na(1-x)Li(x)AlH(4) and Na(3(1-x))Li(3x)AlH(6) are studied via phase interpolation. Alloy system Na(1-x)Li(x)AlH(4) is found to have a small mixing energy (<5 kj/mol). The equilibrium structure undergoes a transition from a tetragonal structure to a monoclinic structure between x = 0.25 and 0.5. Within each structure the cell volume decreases with increasing x, which can be explained by Li having a smaller ion size than Na. Alloy system Na(3(1-x))Li(3x)AlH(6) is also studied, and one intermediate composition Na(2)LiAlH(6) is found to be stable in agreement with experimental findings. (C) 2009 Elsevier B.V. All rights reserved.

Miller, T, Chou MY, Chiang TC.  2009.  Phase Relations Associated with One-Dimensional Shell Effects in Thin Metal Films, Jun. Physical Review Letters. 102:4., Number 23 AbstractWebsite

The physical and chemical properties of thin metal films show damped oscillations as a function of film thickness (one-dimensional shell effects). While the oscillation period, determined by subband crossings of the Fermi level, is the same for all properties, the phases can be different. Specifically, oscillations in the work function and surface energy are offset by 1/4 of a period. For Pb(111) films, this offset is similar to 0.18 monolayers, a seemingly very small effect. However, aliasing caused by the discrete atomic layer structure leads to striking out-of-phase beating patterns displayed by these two quantities.

2008
Ma, Z, Chou MY.  2008.  Low-energy ordered structures of Li(2)Mg(NH)(2), Oct. Journal of Applied Physics. 104:6., Number 8 AbstractWebsite

The Li-Mg-N-H system has been identified as a promising hydrogen storage material due to its moderate operation conditions as well as the high capacity and reversibility. Recently Rijssenbeek et al. [J. Alloys Compd. 454, 233 (2008)] reported that Li(2)Mg(NH)(2) has disordered cation and vacancy arrangements at room temperature and above. We present our first-principles calculations to investigate a series of ordered low-energy configurations for this compound. Specific local orderings are found in the cation-vacancy arrangement, shedding light on the experimental disordered structure models. A possible ordered phase at low temperature is proposed based on these local orderings. Reaction energetics and phase stability are further discussed. (c) 2008 American Institute of Physics. [DOI: 10.1063/1.3003067]

Yang, L, Musin RN, Wang XQ, Chou MY.  2008.  Quantum confinement effect in Si/Ge core-shell nanowires: First-principles calculations, May. Physical Review B. 77:5., Number 19 AbstractWebsite

The electronic structure of Si/Ge core-shell nanowires along the [110] and [111] directions are studied with first-principles calculations. We identify the near-gap electronic states that are spatially separated within the core or the shell region, making it possible for a dopant to generate carriers in a different region. The confinement energies of these core and shell states provide an operational definition of the "band offset," which is not only size dependent but also component dependent. The optimal doping strategy in Si/Ge core-shell nanowires is proposed based on these energy results.

2007
Yvon, K, Rapin JP, Penin N, Ma Z, Chou MY.  2007.  LaMg2PdH7, a new complex metal hydride containing tetrahedral PdH4 (4-) anions, Oct. Journal of Alloys and Compounds. 446:34-38. AbstractWebsite

Hydrogenation of the inten-netallic compound LaMg2Pd at 200 degrees C and 10 bar leads to a complex metal hydride of composition LaMg2PdH7. Its structure has orthorhombic symmetry and displays tetrahedral [PdH4](4-) anions. The Pd-H bond distances as measured on the deuteride range from 1.71 to 1.78 angstrom and the H-Pd-H bond angles from 95 degrees to 122 degrees. Three additional hydride anions H- occupy La2Mg2-type interstices having tetrahedral metal configurations. Band structure calculations suggest the hydride to be non-metallic and to have a band gap of similar to 1.0ev. The compound desorbs hydrogen at 125 degrees C yielding a pressure of more than I bar absolute. (C) 2006 Elsevier B.V. All rights reserved.

2004
Peles, A, Alford JA, Ma Z, Yang L, Chou MY.  2004.  First-principles study of NaAlH(4) and Na(3)AlH(6) complex hydrides, Oct. Physical Review B. 70:7., Number 16 AbstractWebsite

We present a first-principles investigation of the structural properties, electronic structure, and the chemical stability of the complex hydrides NaAlH(4) and Na(3)AlH(6). The calculations are performed within the density functional framework employing norm conserving pseudopotentials. The structural properties of both hydrides compare well with experimental data. A detailed study of the electronic structure and the charge-density redistribution reveal the features of an ionic covalent bonding between Al and H in the (AlH(4))(-) and (AlH(6))(-3) anionic complexes embedded in the matrix of Na(+) cations. The orbital hybridization and the characteristics of bonding orbitals within the complexes are identified. The calculated reaction energies of these complex hydrides are in good agreement with the experimentally determined values.

Upton, MH, Wei CM, Chou MY, Miller T, Chiang TC.  2004.  Thermal stability and electronic structure of atomically uniform Pb films on Si(111), Jul. Physical Review Letters. 93:4., Number 2 AbstractWebsite

Atomically uniform Pb films are successfully prepared on Si(111), despite a large lattice mismatch. Angle-resolved photoemission measurements of the electronic structure show layer-resolved quantum well states which can be correlated with dramatic variations in thermal stability. The odd film thicknesses N=5, 7, and 9 monolayers show sharp quantum well states. The even film thicknesses N=6 and 8 do not, but are much more stable than the odd film thicknesses. This correlation is discussed in terms of a total energy calculation and Friedel-like oscillations in properties.

2002
Kidd, TE, Miller T, Chou MY, Chiang TC.  2002.  Comment on "Sn/Ge(111) surface charge-density-wave phase transition" - Reply, May. Physical Review Letters. 88:1., Number 18 AbstractWebsite
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Kidd, TE, Miller T, Chou MY, Chiang TC.  2002.  Electron-hole coupling and the charge density wave transition in TiSe2, Jun. Physical Review Letters. 88:4., Number 22 AbstractWebsite

Angle-resolved photoemission is employed to measure the band structure of TiSe2 in order to clarify the nature of the (2x2x2 ) charge density wave transition. The results show a very small indirect gap in the normal phase transforming into a larger indirect gap at a different location in the Brillouin zone. Fermi surface topology is irrelevant in this case. Instead, electron-hole coupling together with a novel indirect Jahn-Teller effect drives the transition.

Chiang, TC, Chou MY, Kidd T, Miller T.  2002.  Fermi surfaces and energy gaps in Sn/Ge(111), Jan. Journal of Physics-Condensed Matter. 14:R1-R20., Number 1 AbstractWebsite

One third of a monolayer of Sn adsorbed on Ge(111) undergoes a broad phase transition upon cooling from a (root3 x root3)R30degrees normal phase at room temperature to a (3 x 3) phase at low temperatures. Since band-structure calculations for the ideal (root3 x root3)R30degrees phase show no Fermi-surface nesting, the underlying mechanism for this transition has been a subject of much debate. Evidently, defects formed by Ge substitution for Sn in the adlayer, at a concentration of just a few percent, play a key role in this complex phase transition. Surface areas near these defects are pinned to form (3 x 3) patches above the transition temperature. Angle-resolved photoemission is employed to examine the temperature-dependent band structure, and the results show an extended gap forming in k-space as a result of band splitting at low temperatures. On account of the fact that the room temperature phase is actually a mixture of (root3 x root3)R30degrees areas and defect-pinned (3 x 3) areas, the band structure for the pure (root3 x root3)R30degrees phase is extracted by a difference-spectrum method. The results are in excellent agreement with band calculations. The mechanism for the (3 x 3) transition is discussed in terms of a response function and a tight-binding cluster calculation. A narrow bandwidth and a small group velocity near the Fermi surface render the system highly sensitive to surface perturbations, and formation of the (3 x 3) phase is shown to involve a Peierls-like lattice distortion mediated by defect doping. Included in the discussion, where appropriate, are dynamic effects and many-body effects that have been previously proposed as possible mechanisms for the phase transition.

Paggel, JJ, Wei CM, Chou MY, Luh DA, Miller T, Chiang TC.  2002.  Atomic-layer-resolved quantum oscillations in the work function: Theory and experiment for Ag/Fe(100), Dec. Physical Review B. 66:4., Number 23 AbstractWebsite

The work function of atomically uniform Ag films grown on Fe(100) is measured as a function of film thickness. It shows layer-resolved variations as a result of quantum confinement of the valence electrons. A first-principles calculation reproduces the observed variations except for very thin films (one and two monolayers), and the differences can be attributed, in part, to strain effects caused by the lattice mismatch between Ag and Fe. These results illustrate the close interaction between interface effects and surface properties.