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Tran Nguyen, NH, Nguyen TH, Liu Y-ren, Aminzare M, Pham ATT, Cho S, Wong DP, Chen K-H, Seetawan T, Pham NK, Ta HKT, Tran VC, Phan TB.  2016.  Thermoelectric Properties of Indium and Gallium Dually Doped ZnO Thin Films, 2016. ACS Applied Materials & InterfacesACS Applied Materials & Interfaces. 8(49):33916-33923.: American Chemical Society AbstractWebsite
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Tu, WH, Hsu YK, Yen CH, Wu CI, Hwang JS, Chen LC, Chen KH.  2011.  Au nanoparticle modified GaN photoelectrode for photoelectrochemical hydrogen generation. Electrochem. Comm.. 13:530-533.
Tunuguntla, V, Chen WC, Newman TD, Hsieh MC, Lu SH, Su C, Chen LC, Chen KH.  2016.  Enhancement of charge collection at shorter wave lengths from alternative CdS deposition conditions for high efficiency CZTSSe solar cells. Solar Energy Materials & Solar Cells . 149:49-54.
Twu, J, Yu YY, Tang CW, Wang GJ, Chen KH.  1999.  Raman Spectroscopic Studies of the Thermal Decomposition of Molybdenum Oxide/2,2'-Bipyridine Compounds. Applied Spectroscopy. 9:1083.
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Valiyaveettil, SM, Nguyen D-L, Wong DP, Hsing C-R, Paradis-Fortin L, Qorbani M, Sabbah A, Chou T-L, Wu K-K, Rathinam V, Wei C-M, Chen L-C, Chen K-H.  2022.  Enhanced Thermoelectric Performance in Ternary Skutterudite Co(Ge0.5Te0.5)3 via Band Engineering, 2022. Inorganic Chemistry. : American Chemical Society AbstractWebsite

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Valiyaveettil, SM, Qorbani M, Hsing C-R, Chou T-L, Paradis-Fortin L, Sabbah A, Srivastava D, Nguyen D-L, Ho T-T, Billo T, Ganesan P, Wei C-M, Chen L-C, Chen K-H.  2022.  Enhanced thermoelectric performance of skutterudite Co1−yNiySn1.5Te1.5−x with switchable conduction behavior, 2022. Materials Today Physics. 28:100889. AbstractWebsite

A fine control of carriers in solids is the most essential thing while exploring any functionality. For a ternary skutterudite like CoSn1·5Te1.5−x, which has been recently recognized as a potential material for thermoelectric conversion, the dominant carrier could be either electrons or holes via chemically tuning the quaternary Sn2Te2 rings in the structure. Both theoretical calculation and different spectroscopic probes, such as X-ray photoelectron spectroscopy (XPS) and X-ray absorption spectroscopy (XAS) were employed to unveil the conduction type switching details. On the other hand, a Ni-for-Co substitution was applied to enhance electronic transport, and thereby the thermoelectric power factor. Thanks to the substantial cut-off of lattice thermal conductivity by the characteristic Sn2Te2 rings in the skutterudite structure, ultimately a 70-fold increase in the dimensionless figure-of-merit (zT) is achieved at 723 K with the nominal composition Co0·95Ni0·05Sn1·5Te1.5.

Venugopal, B, Shown I, Samireddi S, Syum Z, Krishnamoorthy V, Wu H-L, Chu C-W, Lee C-H, Chen L-C, Chen K-H.  2021.  Microstructural intra-granular cracking in Cu2ZnSnS4@C thin-film anode enhanced the electrochemical performance in lithium-ion battery applications, 2021. Materials Advances. 2(17):5672-5685.: RSC AbstractWebsite

Cu2ZnSnS4 (CZTS) has demonstrated excellent performance as an anode material for lithium-ion batteries. However, the repeated lithiation and delithiation create a cracking pattern and lead to island formation in the thin-film electrode, resulting in a capacity fading over cycling in lithium-ion batteries (LIB's). In order to control this crack behaviour, we introduce carbon into CZTS thin-films by a hydrothermal method to form CZTS@C composite. CZTS@C significantly reduced the crack pattern formation on the electrode surface as well as improved the conductivity of the CZTS@C electrode. At the early stages of lithiation and delithiation, the volume expansion and contraction of Li–CZTS@C create intra-granular cracking only at the surface level, and it offers a high capacity of about 785 mA h g−1 after 150 cycles at 1000 mA g−1 charging rate, excellent rate capability (942 mA h g−1, 678 mA h g−1 and 435 mA h g−1 at 500 mA g−1, 2000 mA g−1 and 5000 mA g−1), and superior cyclability (925 mA h g−1 even after 200 cycles at 500 mA g−1). The excellent electrochemical performance at high-current rates can be attributed to intra-granular cracking together with carbon coating that provides a short transportation length for both lithium ions and electrons. Moreover, the controlled cracking pattern formation in CZTS@C facilitates faster reaction kinetics, which open up a new solution for the development of high-power thin-film anodes for next-generation LIBs applications.

Venugopal, B, Syum Z, Yu S-Y, Sabbah A, Shown I, Chu C-W, Chen L-C, Lee C-H, Wu H-L, Chen K-H.  2022.  Enhancing the Areal Capacity and Stability of Cu2ZnSnS4 Anode Materials by Carbon Coating: Mechanistic and Structural Studies During Lithiation and Delithiation, 2022. ACS Omega. 7(11):9152-9163.: American Chemical Society AbstractWebsite

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and W.C. Liu, Wen CY, Chen KH, Lin WC, Tsai* DP.  2001.  Near-field images of the AgOx super-resolution near-field structure. Appl. Phys. Lett.. 78:685-687.
W.Chiou, J, Tsai HM, Pao CW, Dong* CL, Chang CL, Chien FZ, Pong WF, Tsai M-H, Shi SC, Chen CF, Chen LC, Chen KH, Hong I-H, Chen C-H, Lin H-J, Guo JH.  2005.  Comparison of the electronic structures of AlN nanotips grown on p- and n-type Si substrates. J. Phys.: Condens. Matter. 17:7523-7530.
Wang, SB, Huang YF, Chattopadhyay S, Chang SJ, Chen RS, Chong CW, Hu MS, Chen LC, Chen KH.  2013.  Surface plasmon-enhanced gas sensing in single gold peapodded-silica nanowire. Asia Materials.
Wang, CH, Shih HC, Tsai YT, Du HY, Chen LC, Chen* KH.  2006.  High methanol oxidation activity of electrocatalysts supported by directly grown nitrogen containing carbon nanotubes on carbon cloth. Electrochimica Acta. 52:1612-1617.
Wang, CT, Ma* KJ, Chen KH, Chen LC, Kichambare PD.  2001.  Ion beam sputtered growth and mechanical properties of SiCN films. J. of Mater. Sci. and Engineering. 33:38.
Wang, J, Chen KH, Mazur E.  1986.  Time-resolved Spontaneous Raman Spectroscopy of Infrared-multiphoton-excited SF6. Phys. Rev.A. 34:3892.
Wang, DY, Teng TS, Wu YC, Lee YC, Chen KH, Chen CH, Chang* YC, Chen* CC.  2009.  Silver-Nanoparticle-Conjugated Polypeptide Brushes for Surface-Enhanced Raman Scattering. J. Phys. Chem.. C13:13498-13504.
Wang, CH, Hsu HC, Chang ST, Du HY, Wu CH, Shih HC, Chen LC, Chen* KH.  2010.  Platinum nanoparticles embedded in nitrogen-containing complexes for high methanol-tolerant oxygen reduction activity. J. Mater. Chem.. 20:7551-7557.
Wang, SB, Chang SJ, Hu MS, Chong CW, Huang BR, Chen KH, Chen LC.  2012.  Gold nanoparticles-modulated conductivity in gold peapodded silica nanowire. Nanoscale. 4:3660-3664.
Wang, CH, Chen CC, Hsu HC, Du HY, Chen CP, Hwang JY, Chen LC, C.Shih H, Stejskal J, Chen* KH.  2009.  Low methanol-permeable polyaniline/nafion composite membrane for direct methanol fuel cell. J. Power. Sources. 190:279-284.
Wang, J, Chen KH, Mazur E.  1988.  Raman Spectroscopy of Infrared Multiphoton Excited Molecules. Laser Chem.. 8:97.
Wang, CH, Du H-Y, Tsai YT, Chen CP, Huang CJ, Chen LC, Chen* KH, Shih HC.  2007.  High performance of low electrocatalysts loading on CNT directly grown on carbon for DMFC. J. Power Sources. 171:55-62.
Wang, B-Y, Wang HT, Chen L-Y, Hsueh HC, Chiou JW, Wang W-H, Wang PH, Chen K-H, Chen Y-C, Chen L-C, Chen C-H, Pong WF, Wang J, Guo J-H.  2016.  Nonlinear opening of the band gap of BN-co-doped graphene. Carbon.
Wang, C-H, Chang S-T, Hsu H-C, Du H-Y, Wu JC-S, Chen L-C, Chen* K-H.  2011.  Oxygen reducing activity of methanol-tolerant catalysts by high-temperature pyrolysis. Diamond & Relat. Mater.. 20:322.
Wei, PC, Chattopadhyay S, Lu CY, Hsiao CL, Shih HC, Chen LC, Chen KH.  2010.  Room-temperature negative photoconductivity in degenerate InN thin films with a supergap excitation. Phys. Rev.. B 81:045306.
Wei, PC, Chattopadhyay S, Lin FS, Hsu CM, Jou S, Chen JT, Huang PJ, Chen LC, Chen KH, Shih HC.  2009.  Origin of the anomalous temperature evolution of photoluminescence peak energy in degenerate InN nanocolumns. Opt. Express. 17:11690-11697.
Wei, PC, Shih HC, Hsu CM, Lin FS, Chen KH, Chattopadhyay* S, Ganguly A, Hsu CW, Chen LC.  2008.  Thermal diffusivity study in supported epitaxial InN thin films by the Traveling-Wave technique. J. Appl. Phys.. 104:064920.