Browsing by Titles

Showing results 1 to 16 of 16

  • 2021-07
  • Hiragond, Chaitanya B. (2021-07). A novel N-doped graphene oxide enfolded reduced titania for highly stable and selective gas-phase photocatalytic CO2 reduction into CH4: An in-depth study on the interfacial charge transfer mechanism. Chemical Engineering Journal, 416, 127978. doi: 10.1016/j.cej.2020.127978
  • Elsevier BV
  • View : 898
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  • Sorcar, Saurav
  • Hwang, Yunju
  • Lee, Jaewoong
  • Kim, Hwapyong
  • Grimes, Keltin M.
  • Grimes, Craig A.
  • Jung, Jin-Woo
  • Cho, Chang-Hee
  • Majima, Tetsuro
  • Hoffmann, Michael R.
  • et al
  • 2019-09
  • Sorcar, Saurav. (2019-09). CO2, water, and sunlight to hydrocarbon fuels: a sustained sunlight to fuel (Joule-to-Joule) photoconversion efficiency of 1%. doi: 10.1039/c9ee00734b
  • Royal Society of Chemistry
  • View : 790
  • Download : 0
  • Ali, Shahzad
  • Kim, Dongyun
  • Gong, Eunhee
  • Lee, Junho
  • Razzaq, Abdul
  • Lei, Juying
  • Kim, Ki-Jeong
  • Goddard III, William A.
  • In, Su-Il
  • 2024-09
  • Ali, Shahzad. (2024-09). Copper Deposited on Reduced Titania as Catalyst for the Production of CH4 from Sunlight and Air. ChemCatChem, 16(18). doi: 10.1002/cctc.202301485
  • Wiley
  • View : 455
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Gas Phase Photocatalytic CO2 Reduction,

  • Ali, Shahzad
  • Flores, Monica Claire
  • Razzaq, Abdul
  • Sorcar, Saurav
  • Hiragond, Chaitanya B.
  • Kim, Hye Rim
  • Park, Young Ho
  • Hwang, Yunju
  • Kim, Hong Soo
  • Kim, Hwapyong
  • et al
  • 2019-09
  • Ali, Shahzad. (2019-09). Gas Phase Photocatalytic CO2 Reduction, “A Brief Overview for Benchmarking.” Catalysts, 9(9). doi: 10.3390/catal9090727
  • MDPI AG
  • View : 703
  • Download : 450
  • Ali, Shahzad
  • Asif, Muhammad
  • Razzaq, Abdul
  • In, Su-Il
  • 2020-10
  • Ali, Shahzad. (2020-10). Layered double hydroxide (LDH) based photocatalysts: An outstanding strategy for efficient photocatalytic CO2 conversion. Catalysts, 10(10), 1185–42. doi: 10.3390/catal10101185
  • Multidisciplinary Digital Publishing Institute (MDPI)
  • View : 835
  • Download : 0
  • Mondal, Sujan
  • Powar, Niket Suresh
  • Paul, Ratul
  • Kwon, Hyuna
  • Das, Nitumani
  • Wong, Bryan M.
  • In, Su-Il
  • Mondal, John
  • 2022-01
  • Mondal, Sujan. (2022-01). Nanoarchitectonics of Metal-Free Porous Polyketone as Photocatalytic Assemblies for Artificial Photosynthesis. ACS Applied Materials & Interfaces, 14(1), 771–783. doi: 10.1021/acsami.1c18626
  • American Chemical Society
  • View : 564
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  • Kim, Hyeon Woo
  • Lee, Kyung Suk
  • Razzaq, Abdul
  • Lee, Sung Hyun
  • Grimes, Craig A.
  • In, Su Il
  • 2018-02
  • Kim, Hyeon Woo. (2018-02). Photocoupled Bioanode: A New Approach for Improved Microbial Fuel Cell Performance. Energy Technology, 6(2), 257–262. doi: 10.1002/ente.201700177
  • Wiley - VCH Verlag GmbH & CO. KGaA
  • View : 1179
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Recent Advances in Quantum Dots for Photocatalytic CO2 Reduction: A Mini-Review

  • Park, Young Ho
  • Murali, G.
  • Modigunta, Jeevan Kumar Reddy
  • In, Insik
  • In, Su-Il
  • 2021-09
  • Park, Young Ho. (2021-09). Recent Advances in Quantum Dots for Photocatalytic CO2 Reduction: A Mini-Review. doi: 10.3389/fchem.2021.734108
  • Frontiers Media S.A.
  • View : 553
  • Download : 147
  • Hiragond, Chaitanya B.
  • Powar, Niket S.
  • In, Su-Il
  • 2020-12
  • Hiragond, Chaitanya B. (2020-12). Recent Developments in Lead and Lead-Free Halide Perovskite Nanostructures towards Photocatalytic CO2 Reduction. Nanomaterials, 10(12), 1–24. doi: 10.3390/nano10122569
  • MDPI
  • View : 674
  • Download : 0
  • 2023-02
  • Hwang, Yunju. (2023-02). Reduced TiO2 quantum dots/graphene for solar light driven CO2 reduction into precisely controlled C-1 vs C-2 hydrocarbon products without noble Co-catalyst. Journal of Power Sources, 556. doi: 10.1016/j.jpowsour.2022.232430
  • Elsevier
  • View : 295
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  • 2025-01
  • Yang, Wonseok. (2025-01). Selective conversion of CO2 to CO using blue TiO2 with an r-GO shell and quantitative measurement of excited electrons with four-wave mixing microspectroscopy. Carbon, 232. doi: 10.1016/j.carbon.2024.119819
  • Elsevier
  • View : 326
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  • Hiragond, Chaitanya B.
  • Powar, Niket Suresh
  • Lee, Junho
  • In, Su-Il
  • 2022-07
  • Hiragond, Chaitanya B. (2022-07). Single-Atom Catalysts (SACs) for Photocatalytic CO2 Reduction with H2O: Activity, Product Selectivity, Stability, and Surface Chemistry. Small, 18(29). doi: 10.1002/smll.202201428
  • Wiley - VCH Verlag GmbbH & Co.
  • View : 441
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Surface-modified Ag@Ru-P25 for photocatalytic CO2 conversion with high selectivity over CH4 formation at the solid–gas interface

  • Hiragond, Chaitanya Balappa
  • Biswas, Sohag
  • Powar, Niket Suresh
  • Lee, Junho
  • Gong, Eunhee
  • Kim, Hwapyong
  • Kim, Hong Soo
  • Jung, Jin‐Woo
  • Cho, Chang-Hee
  • Wong, Bryan M.
  • et al
  • 2024-01
  • Hiragond, Chaitanya Balappa. (2024-01). Surface-modified Ag@Ru-P25 for photocatalytic CO2 conversion with high selectivity over CH4 formation at the solid–gas interface. Carbon Energy, 6(1). doi: 10.1002/cey2.386
  • Wiley
  • View : 383
  • Download : 114
  • Ali, Shahzad
  • Lee, Junho
  • Kim, Hwapyong
  • Hwang, Yunju
  • Razzaq, Abdul
  • Jung, Jin-Woo
  • Cho, Chang-Hee
  • In, Su-Il
  • 2020-12
  • Ali, Shahzad. (2020-12). Sustained, photocatalytic CO2 reduction to CH4 in a continuous flow reactor by earth-abundant materials: Reduced titania-Cu2O Z-scheme heterostructures. Applied Catalysis B: Environmental, 279, 119344. doi: 10.1016/j.apcatb.2020.119344
  • Elsevier BV
  • View : 693
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TiO2 Based Nanostructures for Photocatalytic CO2 Conversion to Valuable Chemicals

  • 2019-05
  • Razzaq, Abdul. (2019-05). TiO2 Based Nanostructures for Photocatalytic CO2 Conversion to Valuable Chemicals. Micromachines, 10(5), 326. doi: 10.3390/mi10050326
  • Multidisciplinary Digital Publishing Institute (MDPI)
  • View : 792
  • Download : 152
  • Hiragond, Chaitanya Balappa
  • Powar, Niket S.
  • Kim, Hwapyong
  • In, Su-Il
  • 2024-09
  • Hiragond, Chaitanya Balappa. (2024-09). Unlocking solar energy: Photocatalysts design for tuning the CO2 conversion into high-value (C2+) solar fuels. EnergyChem, 6(5). doi: 10.1016/j.enchem.2024.100130
  • Elsevier
  • View : 219
  • Download : 0
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