Publications

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Lin, YG, Hsu YK, Wang SB, Chen YC, Chen LC, Chen KH.  2012.  Plasmonic Ag@Ag3PO4 Nanoparticle Photosensitized ZnO Nanorod-Array Photoanodes for Water Oxidation. Energy & Environ. Sci.. 5:8917-8922.
Lin, YR, Chou TC, Liu LK, Chen LC, Chen KH.  2016.  A facile and green synthesis of copper zinc tin sulfide materials for thin film photovoltaics. Thin Solid Films.
Lin, YG, Hsu YK, Chen SY, Chen LC, Chen* KH.  2010.  O2 plasma-activated CuO-ZnO inverse opals as high-performance methanol microreformer. J. Mater. Chem.. 20:10611-10614.
Lin*, YG, Lin* CK, Miller JT, Hsu YK, Chen YC, Chen LC, Chen KH.  2012.  Photochemically active reduced graphene oxide with controllable oxidation level. RSC Advances. 2:11258-11562.
Liu, YL, Yu CC, Fang CY, Chen HL, Chen CW, Kuo CC, Chang CK, Chen LC, Chen KH.  2013.  Using optical anisotropy as a quality factor to rapidly characterize structural qualities of large-area graphene films. Analytical Chemistry.
Liu, YL, Yu CC, Lin KT, Yang TC, Wang EY, Chen HL, Chen LC, Chen KH.  2015.  Transparent, broadband, flexible, and bifacial-operable photodetectors containing a large-area graphene-gold oxide heterojunction. ACS Nano . 9:5093-5103.
Liu, YL, Hsu CW, Dhara S, Chang CW, Tsai HM, Chen LC, Chen KH, Pong* WF, Chi GC.  2013.  Atomistic nucleation sites of Pt nanoparticles on N-doped carbon nanotubes. Nanoscale. 5:6812-6818.
Lo, HC, Hsiung HI, Chattopadhyay S, Han HC, Chen CF, Leu JP, Chen KH, Chen LC.  2011.  Label free sub-picomole level DNA detection with Ag nanoparticle decorated Au nanotip arrays as surface enhanced Raman spectroscopy platform. Biosensors and Bioelectronics. 26:2413-2418.
Lo, HC, Das D, Hwang JS, Chen KH, Hsu CH, Chen CF, Chen LC.  2003.  SiC-capped nanotip arrays for field emission with ultralow turn-on field. Appl. Phys. Lett.. 83:1420-1422.
Lo, HC, Huang YF, Chattopadhyay S, Hsu CH, Chen CF, Chen KH, Chen* LC.  2006.  Geometrically tuned and chemically switched wetting properties of silicon nanotips. Nanotechnology. 17:2542-2545.
Lo, HC, Wu JJ, Wen CY, Wong TS, Lin ST, Chen* KH, Chen LC.  2001.  Bonding characterization and nano-indentation study of the amorphous SiCxNy films with and without hydrogen incorporation. Diamond Relat. Mater.. 10:1916-1920.
Lu, CZ, Goldman J, Deliwala S, Chen KH, Mazur E.  1991.  Durect Evidence for1-mode Excitation in the Infrared Multiphoton Excited SO2. Chem. Phys. Lett.. 176:355.
Lu, TR, Chen LC, Chen KH, Bhusari DM, Chen TM, Kuo CT.  1998.  Sputtering Process of Carbon Nitride Films by Using a Novel Bio-Molecular C-N Containing Target. Thin Solid Films. 332:74.
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M.C. Kan, Huang* JL, Sung JC, Chen KH, Yau BS.  2003.  Thermionic emission of amorphous diamond and field emission of carbon nanotube. Carbon. 41:2839-2845.
Mazur, E, Chen KH, Wang J.  1986.  The Interaction of Infrared Radiation with Isolated Molecules: intramolecular nonequilibrium. Int. Conf. on Lasers 6. :359., Orlando
Mendoza-Galván*, A, Järrendahl K, Arwin H, Huang Y-F, Chen LC, Chen KH.  2009.  Spectroscopic ellipsometry analysis of silicon nanotips obtained by electron cyclotron resonance plasma etching. Applied Optics. 48:4996-5004.
Muthusamy, S, Sabbah A, Sabhapathy P, Chang Y-C, Billo T, Syum Z, Chen L-C, Chen K-H.  2023.  Modification of Conductive Carbon with N-Coordinated Fe−Co Dual-Metal Sites for Oxygen Reduction Reaction, 2023. ChemElectroChem. n/a(n/a):e202300272.: John Wiley & Sons, Ltd AbstractWebsite

Abstract Earth-abundant commercial conductive carbon materials are ideal electrocatalyst supports but cannot be directly utilized for single-atom catalysts owing to the lack of anchoring sites. Therefore, we employed crosslink polymerization to modify the conductive carbon surface with Fe?Co dual-site electrocatalysts for oxygen reduction reaction (ORR). First, metal-coordinated polyurea (PU) aerogels were prepared using via crosslinked polymerization at ambient temperature. Then, carbon-supported, atomically dispersed Fe?Co dual-atom sites (FeCoNC/BP) were formed by high-temperatures pyrolysis with a nitrogen source. FTIR and 13C NMR measurements showed PU linkages, while 15N NMR revealed metal?nitrogen coordination in the PU gels. Asymmetric, N-coordinated, and isolated Fe?Co active structures were found after pyrolysis using XAS and STEM. In alkaline media, FeCoNC/BP exhibited excellent ORR activity, with a E1/2 of 0.93?V vs. RHE, higher than that of Pt/C (20?%) (0.90?V), FeNC/BP (0.88?V), and CoNC/BP (0.85?V). An accelerated durability test (ADT) on FeCoNC/BP indicated good durability over 35000 cycles. FeCoNC/BP also showed moderate ORR and ADT performance in acidic media. The macro/mesoporous N-doped carbon structures enhanced the mass transport properties of the dual Fe?Co active-sites. Therefore, modifying carbon supports with nonprecious metal catalysts may be a cost-effective-strategy for sustained electrochemical energy conversion.

Muthusamy, S, Sabhapathy P, Raghunath P, Sabbah A, Chang Y-C, Krishnamoorthy V, Ho T-T, Chiou J-W, Lin M-C, Chen L-C, Chen K-H.  2023.  Mimicking Metalloenzyme Microenvironments in the Transition Metal-Single Atom Catalysts for Electrochemical Hydrogen Peroxide Synthesis in an Acidic Medium, 2023. Small Methods. :2300234.: John Wiley & Sons, Ltd AbstractWebsite

Abstract Electrochemical reduction of oxygen into hydrogen peroxide in an acidic medium offers an energy-efficient and green H2O2 synthesis as an alternative to the energy-intensive anthraquinone process. Unfortunately, high overpotential, low production rates, and fierce competition from traditional four-electron reduction limit it. In this study, a metalloenzyme-like active structure is mimicked in carbon-based single-atom electrocatalysts for oxygen reduction to H2O2. Using a carbonization strategy, the primary electronic structure of the metal center with nitrogen and oxygen coordination is modulated, followed by epoxy oxygen functionalities close to the metal active sites. In an acidic medium, CoNOC active structures proceed with greater than 98% H2O2 selectivity (2e?/2H+) rather than CoNC active sites that are selective to H2O (4e?/4H+). Among all MNOC (M = Fe, Co, Mn, and Ni) single-atom electrocatalysts, the CoNOC is the most selective (> 98%) for H2O2 production, with a mass activity of 10 A g?1 at 0.60 V vs. RHE. X-ray absorption spectroscopy is used to identify the formation of unsymmetrical MNOC active structures. Experimental results are also compared to density functional theory calculations, which revealed that the structure-activity relationship of the epoxy-surrounded CoNOC active structure reaches optimum (?G*OOH) binding energies for high selectivity.

Muto*, S, Dhara SK, Datta A, Hsu CW, Wu CT, Shen CH, Chen LC, Chen KH, Wang YL, Tanabe T, Maruyama T, Lin HM, Chen CC.  2004.  Characterization of nanodome on GaN nanowires formed with Ga ion irradiation. Mater. Trans.. 45:435-439.
Myers, J, Mou* S, Chen KH, Zhuang Y.  2016.  Scanning microwave microscope imaging of micro-patterned monolayer graphene grown by chemical vapor deposition. Applied Physics Letters . 108:053101.
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Nataraj, SK, Wang CH, Huang HC, Du HY, Chen LC, Chen KH.  2015.  Functionalizing biomaterials to be an efficient proton-exchange membrane and methanol barrier for DMFCs. ACS Sustainable Chemistry & Engineering . 3:302.
Nataraj, SK, Wang CH, Huang HC, Du HY, Wang SF, Chen YC, Chen LC, Chen KH.  2012.  Highly proton-selective biopolymer layer-coated ion-exchange membrane for direct methanol fuel cells. ChemSusChem.. 5:392-395.
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and P.D. Kichambare, Chen* LC, Wang CT, Ma KJ, Wu CT, Chen KH.  2001.  Laser irradiation of carbon nanotubes. Materials Chemistry and Physics. 72:218-222.
Pao, C-W, Wu C-T, Tsai H-M, Liu Y-S, Chang C-L, Pong WF, Chiou J-W, Chen C-W, Hu M-S, Chu M-W, Chen L-C, Chen C-H, Chen K-H, Wang S-B, Chang S-J, Tsai M-H, Lin H-J, Lee J-F, Guo J-H.  2011.  Photoconduction and the electronic structure of silica nanowires embedded with gold nanoparticles. Phys. Rev. B. 84:165412.
Pao, CW, Babu PD, Tsai HM, Chiou JW, Ray SC, Yang SC, Chien FZ, Pong* WF, Tsai M-H, Hsu CW, Chen LC, Chen KH, Lin H-J, Lee JF, Guo JH.  2006.  Electronic structure of group-III-nitride nanorods studied by x-ray absorption, x-ray emission, and Raman spectroscopy. Appl. Phys. Lett.. 88:223113-(1-3).