Publications

Research Performance

61Journal Articles
5,437Total Citations
38H-index
52i10-index

Publication Flows by Year and Area (2017-2026)

Annual Publications by Area (2017-2026)

Source: Google Scholar.

20263 articles
  • Pd Intercalation in BiOCl Nanosheets Promotes Ambient Electrosynthesis of Urea: Operando Study by Synchrotron X-ray Spectroscopies

    1. Pd Intercalation in BiOCl Nanosheets Promotes Ambient Electrosynthesis of Urea: Operando Study by Synchrotron X-ray Spectroscopies

    Chang, Y.-C.; Yu, S.-H.; Juang, R.-H.; Chen, H.-Y.; Taladua, A. W.; Li, C.-S.; Capangpangan, R. Y.; Kuo, C.-H.* † Co-first authors

    ACS Applied Materials & Interfaces 2026, 18 (19), 28310-28321. DOI: 10.1021/acsami.6c03918. Article

    (SCIE Impact Factor: 7.8 Rank: 106/472 Category: MATERIALS SCIENCE, MULTIDISCIPLINARY JCR: 2025)

  • Electrocatalytic C(sp3)-H bond functionalization using biomass-derived electrodes

    2. Electrocatalytic C(sp3)-H bond functionalization using biomass-derived electrodes

    Lu, L.; Li, Y.; Li, H.; Jiang, X.; Pei, X.; Yang, D.; Chang, Y.-C.; Chen, J.-L.; Liao, F.; Lei, A.*

    Nature Communications 2026, 17 (1), 2919. DOI: 10.1038/s41467-026-69274-7. Article

    (SCIE Impact Factor: 18.1 Rank: 8/140 Category: MULTIDISCIPLINARY SCIENCES JCR: 2025)

  • Harnessing Transformation of Metal-Ligand Coordination in Dinuclear Ni(II)-Schiff Base Coordination Polymer for Promoting Electrochemical Oxygen Evolution

    3. Harnessing Transformation of Metal-Ligand Coordination in Dinuclear Ni(II)-Schiff Base Coordination Polymer for Promoting Electrochemical Oxygen Evolution

    Juang, R.-H.; Li, H.-J.; Chang, Y.-C.; Chang, C.-W.; Fan, R. Y.-S.; Kong, K. V.; Chen, J.-L.; Hsu, C.-S.*; Lin, P.-H.*; Kuo, C.-H.*

    Advanced Science 2026, e24014. DOI: 10.1002/advs.202524014. Article

    (SCIE Impact Factor: 14.1 Rank: 24/250 Category: CHEMISTRY, MULTIDISCIPLINARY JCR: 2025)

20254 articles
  • Nitrogen doped Graphene Quantum Dots modified a Crystalline Zinc Phosphite based Non-Enzymatic Electrochemical Sensor for the Ultra-low Detection of Tyramine.

    1. Nitrogen doped Graphene Quantum Dots modified a Crystalline Zinc Phosphite based Non-Enzymatic Electrochemical Sensor for the Ultra-low Detection of Tyramine.

    Wei, P.-C.; Panda, A. K.; Chang, Y.-C.; Li, Y.-R.; Hsu, T.; Wang, C.-M.* † Co-first authors

    Food Control 2025, 111841. DOI: 10.1016/j.foodcont.2025.111841. Article

    (SCIE Impact Factor: 7.0 Rank: 26/187 Category: FOOD SCIENCE & TECHNOLOGY JCR: 2025)

  • Boosting H2 Evolution from Thermal NH3 Decomposition by the Catalyst of Ru Quantum Dots on Mesoporous MgO Dendrite Networks

    2. Boosting H2 Evolution from Thermal NH3 Decomposition by the Catalyst of Ru Quantum Dots on Mesoporous MgO Dendrite Networks

    Ho, T.-E.; Chang, Y.-C.; Wang, P.-E.; Yuan, S.-Y.; Lyu, L.-M.; Li, C.-S.; Chen, J.-L.; Kuo, C.-H.* † Co-first authors

    ACS Sustainable Chemistry & Engineering 2025, 13 (27), 10563-10572. DOI: 10.1021/acssuschemeng.5c03115. Article

    (SCIE Impact Factor: 7.6 Rank: 33/183 Category: ENGINEERING, CHEMICAL JCR: 2025)

  • Turning gas/liquid product selectivity in electrochemical CO2 reduction reaction by modulating CuPd nanocages

    3. Turning gas/liquid product selectivity in electrochemical CO2 reduction reaction by modulating CuPd nanocages

    Talukdar, B.; Chang, C.-C.; Chen, H.-Y.; Juang, R.-H.; Chang, Y.-C.; Li, C.-S.; Kuo, C.-H.*

    Materials Chemistry and Physics 2025, 344, 131191. DOI: 10.1016/j.matchemphys.2025.131191. Article

    (SCIE Impact Factor: 5.2 Rank: 165/472 Category: MATERIALS SCIENCE, MULTIDISCIPLINARY JCR: 2025)

  • Methanol-enhanced low-cell-voltage hydrogen generation at industrial-grade current density by triadic active sites of Pt1-Pdn-(Ni, Co)(OH)x

    4. Methanol-enhanced low-cell-voltage hydrogen generation at industrial-grade current density by triadic active sites of Pt1-Pdn-(Ni, Co)(OH)x

    Pei, A.; Xie, R.; Zhu, L.*; Wu, F.; Huang, Z.; Pang, Y.; Chang, Y.-C.; Chai, G.*; Pao, C.-W.; Gao, Q.*; Shang, C.; Li, G.; Ye, J.; Zhu, H.; Yang, Z.; Guo, Z.*

    Journal of the American Chemical Society 2025, 147 (4), 3185-3194. DOI: 10.1021/jacs.4c12665. Article

    (SCIE Impact Factor: 16.6 Rank: 19/250 Category: CHEMISTRY, MULTIDISCIPLINARY JCR: 2025)

20245 articles
  • Operando elucidation of hydrogen production mechanisms on sub-nanometric high-entropy metallenes

    1. Operando elucidation of hydrogen production mechanisms on sub-nanometric high-entropy metallenes

    Li, Y.; Peng, C.-K.; Sun, Y.*; Sui, L. D. N.; Chang, Y.-C.; Chen, S.-Y.; Zhou, Y.*; Lin, Y.-G.*; Lee, J.-M.*

    Nature Communications 2024, 15 (1), 10222. DOI: 10.1038/s41467-024-54589-0. Article

    (SCIE Impact Factor: 18.1 Rank: 8/140 Category: MULTIDISCIPLINARY SCIENCES JCR: 2025)

  • Turning the Surface Electronic Effect Over Core-Shell CoS2-FexCo1-xS2 Nanooctahedra Toward Electrochemical Water Splitting in the Alkaline Medium

    2. Turning the Surface Electronic Effect Over Core-Shell CoS2-FexCo1-xS2 Nanooctahedra Toward Electrochemical Water Splitting in the Alkaline Medium

    Lyu, L.-M.; Chang, Y.-C.; Li, H.-J.; Wang, P.-E.; Juang, R.-H.; Lu, M.-Y.; Li, C.-S.; Kuo, C.-H.* † Co-first authors

    Advanced Science 2024. DOI: 10.1002/advs.202411622. Article

    (SCIE Impact Factor: 14.1 Rank: 24/250 Category: CHEMISTRY, MULTIDISCIPLINARY JCR: 2025)

  • In Operando X-ray Spectroscopic and DFT Studies Revealing Improved H2 Evolution by the Synergistic Ni-Co Electron Effect in the Alkaline Condition

    3. In Operando X-ray Spectroscopic and DFT Studies Revealing Improved H2 Evolution by the Synergistic Ni-Co Electron Effect in the Alkaline Condition

    Lyu, L.-M.; Li, H.-J.; Tsai, R.-S.; Chen, C.-F.; Chang, Y.-C.; Chuang, Y.-C.; Li, C.-S.; Chen, J.-L.; Chiu, T.-W.*; Kuo, C.-H.*

    ACS Applied Materials & Interfaces 2024, 16 (21), 27329-27338. DOI: 10.1021/acsami.4c02613. Article

    (SCIE Impact Factor: 7.8 Rank: 106/472 Category: MATERIALS SCIENCE, MULTIDISCIPLINARY JCR: 2025)

  • Pt-1, 1′-Bi(2-Naphthol) Nanostructures for Electrochemical H2 Evolution in Alkaline Media

    4. Pt-1, 1′-Bi(2-Naphthol) Nanostructures for Electrochemical H2 Evolution in Alkaline Media

    Chang, Y.-C.; Lyu, L.-M.; Tsai, R.-S.; Juang, R.-H.; Yu, S.-H.; Li, C.-S.; Chen, J.-L.; Kuo, C.-H.*

    ACS Applied Nano Materials 2024, 7 (10), 11890-11899. DOI: 10.1021/acsanm.4c01445. Article

    (SCIE Impact Factor: 5.8 Rank: 148/472 Category: MATERIALS SCIENCE, MULTIDISCIPLINARY JCR: 2025)

  • Stabilization of layered lithium-rich manganese oxide for anion exchange membrane fuel cells and water electrolysers

    5. Stabilization of layered lithium-rich manganese oxide for anion exchange membrane fuel cells and water electrolysers

    Zhong, X.; Sui, L.; Yang, M.; Koketsu, T.; Klingenhof, M.; Selve, S.; Reeves, K. G.; Ge, C.; Zhuang, L.; Kan, W. H.; Avdeev, M.; Shu, M.; Alonso-Vante, N.; Chen, J.-M.; Haw, S.-C.; Pao, C.-W.; Chang, Y.-C.; Huang, Y.; Hu, Z.; Strasser, P.; Ma, J.*

    Nature Catalysis 2024, 7 (5), 546-559. DOI: 10.1038/s41929-024-01136-1. Article

    (SCIE Impact Factor: 48.3 Rank: 1/191 Category: CHEMISTRY, PHYSICAL JCR: 2025)

202310 articles
  • Mimicking metalloenzyme microenvironments in the transition metal-single atom catalysts for electrochemical hydrogen peroxide synthesis in an acidic medium

    1. Mimicking metalloenzyme microenvironments in the transition metal-single atom catalysts for electrochemical hydrogen peroxide synthesis in an acidic medium

    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.*

    Small Methods 2023, 7 (10), 2300234. DOI: 10.1002/smtd.202300234. Article

    (SCIE Impact Factor: 8.7 Rank: 92/472 Category: MATERIALS SCIENCE, MULTIDISCIPLINARY JCR: 2025)

  • Modification of Conductive Carbon with N-Coordinated Fe-Co Dual-Metal Sites for Oxygen Reduction Reaction

    2. Modification of Conductive Carbon with N-Coordinated Fe-Co Dual-Metal Sites for Oxygen Reduction Reaction

    Muthusamy, S.; Sabbah, A.; Sabhapathy, P.*; Chang, Y.-C.; Billo, T.; Syum, Z.; Chen, L.-C.*; Chen, K.-H.*

    ChemElectroChem 2023, 10 (19), e202300272. DOI: 10.1002/celc.202300272. Article

    (SCIE Impact Factor: 5.2 Rank: 13/44 Category: ELECTROCHEMISTRY JCR: 2025)

  • Face-centered cubic ruthenium nanocrystals with promising thermal stability and electrocatalytic performance

    3. Face-centered cubic ruthenium nanocrystals with promising thermal stability and electrocatalytic performance

    Yao, Q.; Lv, S.-Y.; Yu, Z.; Chang, Y.-C.; Pao, C.-W.; Hu, Z.; Yang, L.-M.*; Huang, X.; Shao, Q.*; Lu, J.*

    ACS catalysis 2023, 13 (16), 11023-11032. DOI: 10.1021/acscatal.3c02836. Article

    (SCIE Impact Factor: 13.6 Rank: 22/191 Category: CHEMISTRY, PHYSICAL JCR: 2025)

  • Identifying a universal activity descriptor and a unifying mechanism concept on perovskite oxides for green hydrogen production

    4. Identifying a universal activity descriptor and a unifying mechanism concept on perovskite oxides for green hydrogen production

    Guan, D.*; Xu, H.; Zhang, Q.; Huang, Y.-C.; Shi, C.; Chang, Y.-C.; Xu, X.; Tang, J.; Gu, Y.; Pao, C.-W.; Haw, S.-C.; Chen, J.-M.; Hu, Z.*; Ni, M.*; Shao, Z.*

    Advanced Materials 2023, 35 (44), 2305074. DOI: 10.1002/adma.202305074. Article

    (SCIE Impact Factor: 29.1 Rank: 5/250 Category: CHEMISTRY, MULTIDISCIPLINARY JCR: 2025)

  • Spin-polarization strategy for enhanced acidic oxygen evolution activity

    5. Spin-polarization strategy for enhanced acidic oxygen evolution activity

    Li, L.; Zhou, J.; Wang, X.; Gracia, J.; Valvidares, M.; Ke, J.; Fang, M.; Shen, C.; Chen, J.-M.; Chang, Y.-C.; Pao, C.-W.; Hsu, S.-Y.; Lee, J.-F.; Ruotolo, A.; Chin, Y.; Hu, Z.*; Huang, X.*; Shao, Q.*

    Advanced Materials 2023, 35 (35), 2302966. DOI: 10.1002/adma.202302966. Article

    (SCIE Impact Factor: 29.1 Rank: 5/250 Category: CHEMISTRY, MULTIDISCIPLINARY JCR: 2025)

  • A derivative of ZnIn2S4 nanosheet supported Pd boosts selective CO2 hydrogenation

    6. A derivative of ZnIn2S4 nanosheet supported Pd boosts selective CO2 hydrogenation

    Wang, K.; Zhu, Y.; Gu, M.; Hu, Z.; Chang, Y.-C.; Pao, C.-W.; Xu, Y.*; Huang, X.*

    Advanced Functional Materials 2023, 33 (30), 2215148. DOI: 10.1002/adfm.202215148. Article

    (SCIE Impact Factor: 19.9 Rank: 11/250 Category: CHEMISTRY, MULTIDISCIPLINARY JCR: 2025)

  • Unusual double ligand holes as catalytic active sites in LiNiO2

    7. Unusual double ligand holes as catalytic active sites in LiNiO2

    Huang, H.; Chang, Y.-C.; Huang, Y.-C.; Li, L.; Komarek, A. C.; Tjeng, L. H.; Orikasa, Y.; Pao, C.-W.; Chan, T.-S.; Chen, J.-M.; Haw, S.-C.; Zhou, J.; Wang, Y.; Lin, H.-J.; Chen, C.-T.; Dong, C.-L.; Kuo, C.-Y.; Wang, J.-Q.; Hu, Z.; Zhang, L.* † Co-first authors

    Nature Communications 2023, 14 (1), 2112. DOI: 10.1038/s41467-023-37775-4. Article

    (SCIE Impact Factor: 18.1 Rank: 8/140 Category: MULTIDISCIPLINARY SCIENCES JCR: 2025)

  • Atomic-thick metastable phase RhMo nanosheets for hydrogen oxidation catalysis

    8. Atomic-thick metastable phase RhMo nanosheets for hydrogen oxidation catalysis

    Zhang, J.; Liu, X.; Ji, Y.; Liu, X.; Su, D.*; Zhuang, Z.; Chang, Y.-C.; Pao, C.-W.; Shao, Q.*; Hu, Z.; Huang, X.*

    Nature communications 2023, 14 (1), 1761. DOI: 10.1038/s41467-023-37406-y. Article

    (SCIE Impact Factor: 18.1 Rank: 8/140 Category: MULTIDISCIPLINARY SCIENCES JCR: 2025)

  • Metastable hexagonal phase SnO2 nanoribbons with active edge sites for efficient hydrogen peroxide electrosynthesis in neutral media

    9. Metastable hexagonal phase SnO2 nanoribbons with active edge sites for efficient hydrogen peroxide electrosynthesis in neutral media

    Zhang, Y.; Wang, M.; Zhu, W.; Fang, M.; Ma, M.; Liao, F.*; Yang, H.*; Cheng, T.; Pao, C.-W.; Chang, Y.-C.; Hu, Z.; Shao, Q.*; Shao, M.*; Kang, Z.*

    Angewandte Chemie 2023, 135 (20), e202218924. DOI: 10.1002/ange.202218924. Article

    (SCIE Impact Factor: 17.6 Rank: 16/250 Category: CHEMISTRY, MULTIDISCIPLINARY JCR: 2025)

  • Kinetic-Modulated Crystal Phase of Ru for Hydrogen Oxidation

    10. Kinetic-Modulated Crystal Phase of Ru for Hydrogen Oxidation

    Zhang, J.; Cao, M.; Li, X.; Xu, Y.*; Zhao, W.; Chen, L.*; Chang, Y.-C.; Pao, C.-W.; Hu, Z.; Huang, X.*

    Small 2023, 19 (19), 2207038. DOI: 10.1002/smll.202207038. Article

    (SCIE Impact Factor: 11.8 Rank: 16/191 Category: PHYSICS, APPLIED JCR: 2025)

202210 articles
  • A novel garnet-type high-entropy oxide as air-stable solid electrolyte for Li-ion batteries

    1. A novel garnet-type high-entropy oxide as air-stable solid electrolyte for Li-ion batteries

    Kuo, C.-H.; Wang, A.-Y.; Liu, H.-Y.; Huang, S.-C.; Chen, X.-R.; Chi, C.-C.; Chang, Y.-C.; Lu, M.-Y.; Chen, H.-Y.*

    APL Materials 2022, 10 (12). DOI: 10.1063/5.0123562. Article

    (SCIE Impact Factor: 4.5 Rank: 56/191 Category: PHYSICS, APPLIED JCR: 2025)

  • Nickel hydroxide-supported Ru single atoms and Pd nanoclusters for enhanced electrocatalytic hydrogen evolution and ethanol oxidation

    2. Nickel hydroxide-supported Ru single atoms and Pd nanoclusters for enhanced electrocatalytic hydrogen evolution and ethanol oxidation

    Pei, A.; Li, G.; Zhu, L.*; Huang, Z.; Ye, J.; Chang, Y.-C.; Osman, S. M.; Pao, C.-W.; Gao, Q.; Chen, B. H.; Luque, R.*

    Advanced Functional Materials 2022, 32 (51), 2208587. DOI: 10.1002/adfm.202208587. Article

    (SCIE Impact Factor: 19.9 Rank: 11/250 Category: CHEMISTRY, MULTIDISCIPLINARY JCR: 2025)

  • The facilitated cathodic elementary reactions of solid oxide electrolysis cells for CO2 conversion over a Ce decorated La0.43Ca0.37Ti0.94Ni0.06O3-δ electrocatalyst

    3. The facilitated cathodic elementary reactions of solid oxide electrolysis cells for CO2 conversion over a Ce decorated La0.43Ca0.37Ti0.94Ni0.06O3-δ electrocatalyst

    Li, Z.; Peng, M.; Zhu, Y.; Hu, Z.; Pao, C.-W.; Chang, Y.-C.; Zhang, Y.; Zhao, Y.; Li, J.; Sun, Y.*

    Journal of Materials Chemistry A 2022, 10 (38), 20350-20364. DOI: 10.1039/d2ta05827h.

    (SCIE Impact Factor: 9.2 Rank: 82/472 Category: MATERIALS SCIENCE, MULTIDISCIPLINARY JCR: 2025)

  • Combined corner-sharing and edge-sharing networks in hybrid nanocomposite with unusual lattice-oxygen activation for efficient water oxidation

    4. Combined corner-sharing and edge-sharing networks in hybrid nanocomposite with unusual lattice-oxygen activation for efficient water oxidation

    Zhang, H.; Gao, Y.; Xu, H.; Guan, D.*; Hu, Z.; Jing, C.; Sha, Y.; Gu, Y.; Huang, Y.-C.; Chang, Y.-C.; Pao, C.-W.; Xu, X.; Lee, J.-F.; Chin, Y.-Y.; Lin, H.-J.; Chen, C.-T.; Chen, Y.; Guo, Y.; Ni, M.; Zhou, W.*; Shao, Z.*

    Advanced Functional Materials 2022, 32 (45), 2207618. DOI: 10.1002/adfm.202207618. Article

    (SCIE Impact Factor: 19.9 Rank: 11/250 Category: CHEMISTRY, MULTIDISCIPLINARY JCR: 2025)

  • Novel high-entropy ceramic/carbon composite materials for the decomposition of organic pollutants

    5. Novel high-entropy ceramic/carbon composite materials for the decomposition of organic pollutants

    Chiu, C.-T.; Teng, Y.-J.; Dai, B.-H.; Tsao, I.-Y.; Lin, W.-C.; Wang, K.-W.; Hsu, L.-C.; Chang, Y.-C.; Li, C.-T.; Thai Nguyen, H. T.; Chiang, C.-Y.*; Hung, W.-H.*

    Materials Chemistry and Physics 2022, 275, 125274. DOI: 10.1016/j.matchemphys.2021.125274. Article

    (SCIE Impact Factor: 5.2 Rank: 165/472 Category: MATERIALS SCIENCE, MULTIDISCIPLINARY JCR: 2025)

  • Superior performance enabled by supramolecular interactions in metal-organic cathode: the power of weak bonds

    6. Superior performance enabled by supramolecular interactions in metal-organic cathode: the power of weak bonds

    Li, A.-C.; Chang, C.-H.; Ivanov, A. S.; Lo, Y.-A.; Popovs, I.; Chen, J.-L.; Chuang, Y.-C.; Chang, Y.-C.; Chen, B.-H.; Lee, J.-C.; Chen, T.-H.*; Kaveevivitchai, W.*

    Journal of Materials Chemistry A 2022, 10 (37), 19671-19679. DOI: 10.1039/d2ta01463g.

    (SCIE Impact Factor: 9.2 Rank: 82/472 Category: MATERIALS SCIENCE, MULTIDISCIPLINARY JCR: 2025)

  • Photocatalytic CO2 reduction for C2-C3 oxy-compounds on ZIF-67 derived carbon with TiO2

    7. Photocatalytic CO2 reduction for C2-C3 oxy-compounds on ZIF-67 derived carbon with TiO2

    Sung, P.-H.; Huang, C.-Y.; Lin, C.-Y.; Chung, P.-W.; Chang, Y.-C.; Chen, L.-C.; Chen, H.-Y.; Liao, C.-N.*; Chiu, E.-L.; Wang, C.-Y.*

    Journal of CO2 Utilization 2022, 58, 101920. DOI: 10.1016/j.jcou.2022.101920. Article

    (SCIE Impact Factor: 8.6 Rank: 26/183 Category: ENGINEERING, CHEMICAL JCR: 2025)

  • In-situ growth of iron phosphide encapsulated by carbon nanotubes decorated with zeolitic imidazolate framework-8 for enhancing oxygen reduction reaction

    8. In-situ growth of iron phosphide encapsulated by carbon nanotubes decorated with zeolitic imidazolate framework-8 for enhancing oxygen reduction reaction

    Liu, C.-C.; Chen, H.-Y.; Jhong, H.-P.; Chang, S.-T.; Wang, K.-C.*; Chang, Y.-C.; Huang, H.-C.*; Wang, C.-H.*

    International Journal of Hydrogen Energy 2022, 47 (39), 17367-17378. DOI: 10.1016/j.ijhydene.2022.03.228. Article

    (SCIE Impact Factor: 9.2 Rank: 6/44 Category: ELECTROCHEMISTRY JCR: 2025)

  • High-efficiency electrosynthesis of hydrogen peroxide from oxygen reduction enabled by a tungsten single atom catalyst with unique terdentate N1O2 coordination

    9. High-efficiency electrosynthesis of hydrogen peroxide from oxygen reduction enabled by a tungsten single atom catalyst with unique terdentate N1O2 coordination

    Zhang, F.; Zhu, Y.*; Tang, C.; Chen, Y.; Qian, B.; Hu, Z.; Chang, Y.-C.; Pao, C.-W.; Lin, Q.; Kazemi, S. A.; Wang, Y.*; Zhang, L.; Zhang, X.; Wang, H.*

    Advanced Functional Materials 2022, 32 (16), 2110224. DOI: 10.1002/adfm.202110224. Article

    (SCIE Impact Factor: 19.9 Rank: 11/250 Category: CHEMISTRY, MULTIDISCIPLINARY JCR: 2025)

  • In situ exploring of the origin of the enhanced oxygen evolution reaction efficiency of metal (Co/Fe)-organic framework catalysts via postprocessing

    10. In situ exploring of the origin of the enhanced oxygen evolution reaction efficiency of metal (Co/Fe)-organic framework catalysts via postprocessing

    Zhou, J.; Hu, Y.; Chang, Y.-C.*; Hu, Z.*; Huang, Y.-C.; Fan, Y.; Lin, H.-J.; Pao, C.-W.; Dong, C.-L.; Lee, J.-F.; Chen, C.-T.; Wang, J.-Q.; Zhang, L.* * Corresponding author

    ACS Catalysis 2022, 12 (5), 3138-3148. DOI: 10.1021/acscatal.1c05532. Article

    (SCIE Impact Factor: 13.6 Rank: 22/191 Category: CHEMISTRY, PHYSICAL JCR: 2025)

20218 articles
  • A′-B intersite cooperation-enhanced water splitting in quadruple perovskite oxide CaCu3Ir4O12

    1. A′-B intersite cooperation-enhanced water splitting in quadruple perovskite oxide CaCu3Ir4O12

    Ye, X.; Song, S.; Li, L.; Chang, Y.-C.; Qin, S.; Liu, Z.; Huang, Y.-C.; Zhou, J.; Zhang, L.-J.; Dong, C.-L.; Pao, C.-W.; Lin, H.-J.; Chen, C.-T.; Hu, Z.*; Wang, J.-Q.*; Long, Y.*

    Chemistry of Materials 2021, 33 (23), 9295-9305. DOI: 10.1021/acs.chemmater.1c03015. Article

    (SCIE Impact Factor: 7.1 Rank: 118/472 Category: MATERIALS SCIENCE, MULTIDISCIPLINARY JCR: 2025)

  • 5f covalency synergistically boosting oxygen evolution of UCoO4 catalyst

    2. 5f covalency synergistically boosting oxygen evolution of UCoO4 catalyst

    Lin, X.; Huang, Y.-C.; Hu, Z.*; Li, L.; Zhou, J.; Zhao, Q.; Huang, H.; Sun, J.; Pao, C.-W.; Chang, Y.-C.; Lin, H.-J.; Chen, C.-T.; Dong, C.-L.; Wang, J.-Q.*; Zhang, L.*

    Journal of the American Chemical Society 2021, 144 (1), 416-423. DOI: 10.1021/jacs.1c10311. Article

    (SCIE Impact Factor: 16.6 Rank: 19/250 Category: CHEMISTRY, MULTIDISCIPLINARY JCR: 2025)

  • Extraordinary acidic oxygen evolution on new phase 3R-iridium oxide

    3. Extraordinary acidic oxygen evolution on new phase 3R-iridium oxide

    Fan, Z.; Ji, Y.; Shao, Q.*; Geng, S.; Zhu, W.; Liu, Y.*; Liao, F.; Hu, Z.; Chang, Y.-C.; Pao, C.-W.; Li, Y.; Kang, Z.*; Shao, M.*

    Joule 2021, 5 (12), 3221-3234. DOI: 10.1016/j.joule.2021.10.002. Article

    (SCIE Impact Factor: 37.1 Rank: 3/191 Category: CHEMISTRY, PHYSICAL JCR: 2025)

  • Carbon and metal-based catalysts for vanadium redox flow batteries: a perspective and review of recent progress

    4. Carbon and metal-based catalysts for vanadium redox flow batteries: a perspective and review of recent progress

    Bayeh, A. W.; Kabtamu, D. M.*; Chang, Y.-C.; Wondimu, T. H.; Huang, H.-C.; Wang, C.-H.*

    Sustainable Energy & Fuels 2021, 5 (6), 1668-1707. DOI: 10.1039/d0se01723j.

    (SCIE Impact Factor: 4.6 Rank: 190/472 Category: MATERIALS SCIENCE, MULTIDISCIPLINARY JCR: 2025)

  • 5. Solar to hydrocarbon production using metal-free water-soluble bulk heterojunction of conducting polymer nanoparticle and graphene oxide

    Lien, H.-T.; Chang, Y.-C.; Huang, C.-Y.; Hsu, H.-C.; Chang, S.-T.; Wong, D. P.; Wang, C.-H.; Wang, C.-H.; Chen, K.-H.*; Chen, L.-C.* † Co-first authors

    The Journal of Chemical Physics 2021, 154 (16). DOI: 10.1063/5.0042716.

    (SCIE Impact Factor: 3.7 Rank: 8/38 Category: PHYSICS, ATOMIC, MOLECULAR & CHEMICAL JCR: 2025)

  • MoO2-graphene nanocomposite as an electrocatalyst for high-performance vanadium redox flow battery

    6. MoO2-graphene nanocomposite as an electrocatalyst for high-performance vanadium redox flow battery

    Bayeh, A. W.; Ou, Y.-Y.; Ou, Y.-T.; Chang, Y.-C.; Chen, H.-Y.; Wang, K.-C.; Wang, Y.-M.; Huang, H.-C.; Chiang, T.-C.; Kabtamu, D. M.*; Wang, C.-H.*

    Journal of Energy Storage 2021, 40, 102795. DOI: 10.1016/j.est.2021.102795. Article

    (SCIE Impact Factor: 10.7 Rank: 29/191 Category: ENERGY & FUELS JCR: 2025)

  • Operando identification of hydrangea-like and amorphous cobalt oxyhydroxide supported by thin-layer copper for oxygen evolution reaction

    7. Operando identification of hydrangea-like and amorphous cobalt oxyhydroxide supported by thin-layer copper for oxygen evolution reaction

    Chen, H.-Y.; Chang, Y.-C.; Lee, J.-F.; Pao, C.-W.; Huang, H.-C.*; Wang, C.-H.*

    ACS Sustainable Chemistry & Engineering 2021, 9 (36), 12300-12310. DOI: 10.1021/acssuschemeng.1c03936. Article

    (SCIE Impact Factor: 7.6 Rank: 33/183 Category: ENGINEERING, CHEMICAL JCR: 2025)

  • In situ/operando capturing unusual Ir6+ facilitating ultrafast electrocatalytic water oxidation

    8. In situ/operando capturing unusual Ir6+ facilitating ultrafast electrocatalytic water oxidation

    Li, L.; Sun, H.; Hu, Z.*; Zhou, J.; Huang, Y.-C.; Huang, H.; Song, S.; Pao, C.-W.; Chang, Y.-C.; Komarek, A. C.; Lin, H.-J.; Chen, C.-T.; Dong, C.-L.; Wang, J.-Q.*; Zhang, L.*

    Advanced Functional Materials 2021, 31 (43), 2104746. DOI: 10.1002/adfm.202104746. Article

    (SCIE Impact Factor: 19.9 Rank: 11/250 Category: CHEMISTRY, MULTIDISCIPLINARY JCR: 2025)

20206 articles
  • Microwave-assisted pyrolysis of Pachira aquatica leaves as a catalyst for the oxygen reduction reaction

    1. Microwave-assisted pyrolysis of Pachira aquatica leaves as a catalyst for the oxygen reduction reaction

    Chang, S.-T.; Jhong, H.-P.; Chang, Y.-C.; Liu, C.-C.; Chiang, T.-C.; Huang, H.-C.*; Wang, C.-H.*

    RSC advances 2020, 10 (20), 11543-11550. DOI: 10.1039/d0ra01078b. Article

    (SCIE Impact Factor: 6.1 Rank: 71/250 Category: CHEMISTRY, MULTIDISCIPLINARY JCR: 2025)

  • High performance of metal-organic framework-derived catalyst supported by tellurium nanowire for oxygen reduction reaction

    2. High performance of metal-organic framework-derived catalyst supported by tellurium nanowire for oxygen reduction reaction

    Wu, C.-H.; Wang, K.-C.; Chang, S.-T.; Chang, Y.-C.; Chen, H.-Y.; Yamanaka, I.; Chiang, T.-C.; Huang, H.-C.*; Wang, C.-H.*

    Renewable Energy 2020, 158, 324-331. DOI: 10.1016/j.renene.2020.05.114. Article

    (SCIE Impact Factor: 9.1 Rank: 25/114 Category: GREEN & SUSTAINABLE SCIENCE & TECHNOLOGY JCR: 2025)

  • Synergistic effects of niobium oxide-niobium carbide-reduced graphene oxide modified electrode for vanadium redox flow battery

    3. Synergistic effects of niobium oxide-niobium carbide-reduced graphene oxide modified electrode for vanadium redox flow battery

    Liu, T.-R.; Chang, Y.-C.; Bayeh, A. W.; Wang, K.-C.; Chen, H.-Y.; Wang, Y.-M.; Chiang, T.-C.; Tang, M.-T.; Tseng, S.-C.; Huang, H.-C.*; Wang, C.-H.*

    Journal of Power Sources 2020, 473, 228590. DOI: 10.1016/j.jpowsour.2020.228590. Article

    (SCIE Impact Factor: 8.4 Rank: 7/44 Category: ELECTROCHEMISTRY JCR: 2025)

  • Oxygen-vacancy-rich cubic CeO2 nanowires as catalysts for vanadium redox flow batteries

    4. Oxygen-vacancy-rich cubic CeO2 nanowires as catalysts for vanadium redox flow batteries

    Bayeh, A. W.; Lin, G.-Y.; Chang, Y.-C.; Kabtamu, D. M.; Chen, G.-C.; Chen, H.-Y.; Wang, K.-C.; Wang, Y.-M.; Chiang, T.-C.; Huang, H.-C.*; Wang, C.-H.*

    ACS Sustainable Chemistry & Engineering 2020, 8 (45), 16757-16765. DOI: 10.1021/acssuschemeng.0c03861. Article

    (SCIE Impact Factor: 7.6 Rank: 33/183 Category: ENGINEERING, CHEMICAL JCR: 2025)

  • High-index faceted ruco nanoscrews for water electrosplitting

    5. High-index faceted ruco nanoscrews for water electrosplitting

    Zhu, T.; Huang, J.; Huang, B.*; Zhang, N.; Liu, S.; Yao, Q.; Haw, S.-C.; Chang, Y.-C.; Pao, C.-W.; Chen, J.-M.; Shao, Q.; Hu, Z.; Ma, Y.; Huang, X.*

    Advanced Energy Materials 2020, 10 (47), 2002860. DOI: 10.1002/aenm.202002860. Article

    (SCIE Impact Factor: 25.5 Rank: 12/472 Category: MATERIALS SCIENCE, MULTIDISCIPLINARY JCR: 2025)

  • Probing the active site in single-atom oxygen reduction catalysts via operando X-ray and electrochemical spectroscopy

    6. Probing the active site in single-atom oxygen reduction catalysts via operando X-ray and electrochemical spectroscopy

    Lien, H.-T.; Chang, S.-T.; Chen, P.-T.; Wong, D. P.; Chang, Y.-C.; Lu, Y.-R.; Dong, C.-L.; Wang, C.-H.; Chen, K.-H.*; Chen, L.-C.*

    Nature Communications 2020, 11 (1), 4233. DOI: 10.1038/s41467-020-17975-y. Article

    (SCIE Impact Factor: 18.1 Rank: 8/140 Category: MULTIDISCIPLINARY SCIENCES JCR: 2025)

20192 articles
  • Hydrogen-treated defect-rich W18O49 nanowire-modified graphite felt as high-performance electrode for vanadium redox flow battery

    1. Hydrogen-treated defect-rich W18O49 nanowire-modified graphite felt as high-performance electrode for vanadium redox flow battery

    Bayeh, A. W.; Kabtamu, D. M.; Chang, Y.-C.; Chen, G.-C.; Chen, H.-Y.; Liu, T.-R.; Wondimu, T. H.; Wang, K.-C.; Wang, C.-H.*

    ACS Applied Energy Materials 2019, 2 (4), 2541-2551. DOI: 10.1021/acsaem.8b02158. Article

    (SCIE Impact Factor: 5.5 Rank: 162/472 Category: MATERIALS SCIENCE, MULTIDISCIPLINARY JCR: 2025)

  • Nanostructured cementite/ferrous sulfide encapsulated carbon with heteroatoms for oxygen reduction in alkaline environment

    2. Nanostructured cementite/ferrous sulfide encapsulated carbon with heteroatoms for oxygen reduction in alkaline environment

    Huang, H.-C.; Su, C.-Y.; Wang, K.-C.; Chen, H.-Y.; Chang, Y.-C.; Chen, Y.-L.; Wu, K. C.-W.*; Wang, C.-H.*

    ACS Sustainable Chemistry & Engineering 2019, 7 (3), 3185-3194. DOI: 10.1021/acssuschemeng.8b05033. Article

    (SCIE Impact Factor: 7.6 Rank: 33/183 Category: ENGINEERING, CHEMICAL JCR: 2025)

20185 articles
  • The effect of adding Bi3+ on the performance of a newly developed iron-copper redox flow battery

    1. The effect of adding Bi3+ on the performance of a newly developed iron-copper redox flow battery

    Kabtamu, D. M.; Lin, G.-Y.; Chang, Y.-C.; Chen, H.-Y.; Huang, H.-C.; Hsu, N.-Y.; Chou, Y.-S.; Wei, H.-J.; Wang, C.-H.*

    RSC advances 2018, 8 (16), 8537-8543. DOI: 10.1039/c7ra12926b. Article

    (SCIE Impact Factor: 6.1 Rank: 71/250 Category: CHEMISTRY, MULTIDISCIPLINARY JCR: 2025)

  • TiNb2O7 nanoparticle-decorated graphite felt as a high-performance electrode for vanadium redox flow batteries

    2. TiNb2O7 nanoparticle-decorated graphite felt as a high-performance electrode for vanadium redox flow batteries

    Kabtamu, D. M.; Bayeh, A. W.; Chiang, T.-C.; Chang, Y.-C.; Lin, G.-Y.; Wondimu, T. H.; Su, S.-K.; Wang, C.-H.*

    Applied Surface Science 2018, 462, 73-80. DOI: 10.1016/j.apsusc.2018.08.101. Article

    (SCIE Impact Factor: 6.6 Rank: 37/191 Category: PHYSICS, APPLIED JCR: 2025)

  • Synergistic effects of a TiNb2O7-reduced graphene oxide nanocomposite electrocatalyst for high-performance all-vanadium redox flow batteries

    3. Synergistic effects of a TiNb2O7-reduced graphene oxide nanocomposite electrocatalyst for high-performance all-vanadium redox flow batteries

    Bayeh, A. W.; Kabtamu, D. M.; Chang, Y.-C.; Chen, G.-C.; Chen, H.-Y.; Lin, G.-Y.; Liu, T.-R.; Wondimu, T. H.; Wang, K.-C.; Wang, C.-H.*

    Journal of Materials Chemistry A 2018, 6 (28), 13908-13917. DOI: 10.1039/c8ta03408g. Article

    (SCIE Impact Factor: 9.2 Rank: 82/472 Category: MATERIALS SCIENCE, MULTIDISCIPLINARY JCR: 2025)

  • Ta2O5-nanoparticle-modified graphite felt as a high-performance electrode for a vanadium redox flow battery

    4. Ta2O5-nanoparticle-modified graphite felt as a high-performance electrode for a vanadium redox flow battery

    Bayeh, A. W.; Kabtamu, D. M.; Chang, Y.-C.; Chen, G.-C.; Chen, H.-Y.; Lin, G.-Y.; Liu, T.-R.; Wondimu, T. H.; Wang, K.-C.; Wang, C.-H.*

    ACS Sustainable Chemistry & Engineering 2018, 6 (3), 3019-3028. DOI: 10.1021/acssuschemeng.7b02752. Article

    (SCIE Impact Factor: 7.6 Rank: 33/183 Category: ENGINEERING, CHEMICAL JCR: 2025)

  • Carbon-doped SnS2 nanostructure as a high-efficiency solar fuel catalyst under visible light

    5. Carbon-doped SnS2 nanostructure as a high-efficiency solar fuel catalyst under visible light

    Shown, I.; Samireddi, S.; Chang, Y.-C.; Putikam, R.; Chang, P.-H.; Sabbah, A.; Fu, F.-Y.; Chen, W.-F.; Wu, C.-I.; Yu, T.-Y.; Chung, P.-W.; Lin, M. C.; Chen, L.-C.*; Chen, K.-H.*

    Nature communications 2018, 9 (1), 169. DOI: 10.1038/s41467-017-02547-4. Article

    (SCIE Impact Factor: 18.1 Rank: 8/140 Category: MULTIDISCIPLINARY SCIENCES JCR: 2025)

20173 articles
  • Water-activated graphite felt as a high-performance electrode for vanadium redox flow batteries

    1. Water-activated graphite felt as a high-performance electrode for vanadium redox flow batteries

    Kabtamu, D. M.; Chen, J.-Y.; Chang, Y.-C.; Wang, C.-H.*

    Journal of Power Sources 2017, 341, 270-279. DOI: 10.1016/j.jpowsour.2016.12.004. Article

    (SCIE Impact Factor: 8.4 Rank: 7/44 Category: ELECTROCHEMISTRY JCR: 2025)

  • High efficiency of CO2-activated graphite felt as electrode for vanadium redox flow battery application

    2. High efficiency of CO2-activated graphite felt as electrode for vanadium redox flow battery application

    Chang, Y.-C.; Chen, J.-Y.; Kabtamu, D. M.; Lin, G.-Y.; Hsu, N.-Y.; Chou, Y.-S.; Wei, H.-J.; Wang, C.-H.*

    Journal of Power Sources 2017, 364, 1-8. DOI: 10.1016/j.jpowsour.2017.07.103. Article

    (SCIE Impact Factor: 8.4 Rank: 7/44 Category: ELECTROCHEMISTRY JCR: 2025)

  • Three-dimensional annealed WO3 nanowire/graphene foam as an electrocatalytic material for all vanadium redox flow batteries

    3. Three-dimensional annealed WO3 nanowire/graphene foam as an electrocatalytic material for all vanadium redox flow batteries

    Kabtamu, D. M.; Chang, Y.-C.; Lin, G.-Y.; Bayeh, A. W.; Chen, J.-Y.; Wondimu, T. H.; Wang, C.-H.*

    Sustainable Energy & Fuels 2017, 1 (10), 2091-2100. DOI: 10.1039/c7se00271h. Article

    (SCIE Impact Factor: 4.6 Rank: 190/472 Category: MATERIALS SCIENCE, MULTIDISCIPLINARY JCR: 2025)

20162 articles
  • Electrocatalytic activity of Nb-doped hexagonal WO3 nanowire-modified graphite felt as a positive electrode for vanadium redox flow batteries

    1. Electrocatalytic activity of Nb-doped hexagonal WO3 nanowire-modified graphite felt as a positive electrode for vanadium redox flow batteries

    Kabtamu, D. M.; Chen, J.-Y.; Chang, Y.-C.; Wang, C.-H.*

    Journal of Materials Chemistry A 2016, 4 (29), 11472-11480. DOI: 10.1039/c6ta03936g. Article

    (SCIE Impact Factor: 9.2 Rank: 82/472 Category: MATERIALS SCIENCE, MULTIDISCIPLINARY JCR: 2025)

  • High efficiency of bamboo-like carbon nanotubes on functionalized graphite felt as electrode in vanadium redox flow battery

    2. High efficiency of bamboo-like carbon nanotubes on functionalized graphite felt as electrode in vanadium redox flow battery

    Chang, Y.-C.; Shih, Y.-C.; Chen, J.-Y.; Lin, G.-Y.; Hsu, N.-Y.; Chou, Y.-S.; Wang, C.-H.*

    RSC advances 2016, 6 (104), 102068-102075. DOI: 10.1039/c6ra22035e. Article

    (SCIE Impact Factor: 6.1 Rank: 71/250 Category: CHEMISTRY, MULTIDISCIPLINARY JCR: 2025)

20151 articles
  • Graphene oxides and carbon nanotubes embedded in polyacrylonitrile-based carbon nanofibers used as electrodes for supercapacitor

    1. Graphene oxides and carbon nanotubes embedded in polyacrylonitrile-based carbon nanofibers used as electrodes for supercapacitor

    Hsu, H.-C.; Wang, C.-H.*; Chang, Y.-C.; Hu, J.-H.; Yao, B.-Y.; Lin, C.-Y.

    Journal of Physics and Chemistry of Solids 2015, 85, 62-68. DOI: 10.1016/j.jpcs.2015.04.010. Article

    (SCIE Impact Factor: 5.9 Rank: 22/81 Category: PHYSICS, CONDENSED MATTER JCR: 2025)

20141 articles
  • Highly efficient visible light photocatalytic reduction of CO2 to hydrocarbon fuels by Cu-nanoparticle decorated graphene oxide

    1. Highly efficient visible light photocatalytic reduction of CO2 to hydrocarbon fuels by Cu-nanoparticle decorated graphene oxide

    Shown, I.; Hsu, H.-C.; Chang, Y.-C.; Lin, C.-H.; Roy, P. K.; Ganguly, A.; Wang, C.-H.; Chang, J.-K.; Wu, C.-I.; Chen, L.-C.*; Chen, K.-H.*

    Nano letters 2014, 14 (11), 6097-6103. DOI: 10.1021/nl503609v. Article

    (SCIE Impact Factor: 9.1 Rank: 27/191 Category: PHYSICS, APPLIED JCR: 2025)

20121 articles
  • Graphene oxide as a promising photocatalyst for CO2 to methanol conversion

    1. Graphene oxide as a promising photocatalyst for CO2 to methanol conversion

    Hsu, H.-C.; Shown, I.*; Wei, H.-Y.; Chang, Y.-C.; Du, H.-Y.; Lin, Y.-G.; Tseng, C.-A.; Wang, C.-H.*; Chen, L.-C.; Lin, Y.-C.; Chen, K.-H.*

    Nanoscale 2012, 5 (1), 262-268. DOI: 10.1039/c2nr31718d.

    (SCIE Impact Factor: 5.2 Rank: 46/191 Category: PHYSICS, APPLIED JCR: 2025)