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  • Source: ChemElectroChem. Unidades: IQ, EP

    Subjects: LÍTIO, ELETRODO, OXIGÊNIO

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    • ABNT

      PLATA, Andrea Paola Gualdron e BRIZOLA, Vivivan Yamashita e MARTINS, Vitor Leite. Mechanisms of oxygen reactions in lithium–air batteries. ChemElectroChem, v. 12, n. 12, p. 1-10 art. e202500051, 2025Tradução . . Disponível em: https://dx.doi.org/10.1002/celc.202500051. Acesso em: 16 nov. 2025.
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      Plata, A. P. G., Brizola, V. Y., & Martins, V. L. (2025). Mechanisms of oxygen reactions in lithium–air batteries. ChemElectroChem, 12( 12), 1-10 art. e202500051. doi:10.1002/celc.202500051
    • NLM

      Plata APG, Brizola VY, Martins VL. Mechanisms of oxygen reactions in lithium–air batteries [Internet]. ChemElectroChem. 2025 ; 12( 12): 1-10 art. e202500051.[citado 2025 nov. 16 ] Available from: https://dx.doi.org/10.1002/celc.202500051
    • Vancouver

      Plata APG, Brizola VY, Martins VL. Mechanisms of oxygen reactions in lithium–air batteries [Internet]. ChemElectroChem. 2025 ; 12( 12): 1-10 art. e202500051.[citado 2025 nov. 16 ] Available from: https://dx.doi.org/10.1002/celc.202500051
  • Source: ChemElectroChem. Unidade: FFCLRP

    Subjects: OXIDAÇÃO, ÁLCOOL, CATALISADORES, QUÍMICA ORGÂNICA

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      CURSI, Fabiano dos Santos et al. Selective glycerol-to-glycerate electro-oxidation on cerium-modified Pt/C nanocatalyst in an alkaline direct alcohol fuel cell: cogeneration of energy and value-added products. ChemElectroChem, v. 11, n. 3, p. 1-13, 2024Tradução . . Disponível em: https://doi.org/10.1002/celc.202300555. Acesso em: 16 nov. 2025.
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      Cursi, F. dos S., Grimaud, L., Rousseau, J., Servat, K., Morais, C., Napporn, T. W., et al. (2024). Selective glycerol-to-glycerate electro-oxidation on cerium-modified Pt/C nanocatalyst in an alkaline direct alcohol fuel cell: cogeneration of energy and value-added products. ChemElectroChem, 11( 3), 1-13. doi:10.1002/celc.202300555
    • NLM

      Cursi F dos S, Grimaud L, Rousseau J, Servat K, Morais C, Napporn TW, Andrade AR de, Kokoh KB. Selective glycerol-to-glycerate electro-oxidation on cerium-modified Pt/C nanocatalyst in an alkaline direct alcohol fuel cell: cogeneration of energy and value-added products [Internet]. ChemElectroChem. 2024 ; 11( 3): 1-13.[citado 2025 nov. 16 ] Available from: https://doi.org/10.1002/celc.202300555
    • Vancouver

      Cursi F dos S, Grimaud L, Rousseau J, Servat K, Morais C, Napporn TW, Andrade AR de, Kokoh KB. Selective glycerol-to-glycerate electro-oxidation on cerium-modified Pt/C nanocatalyst in an alkaline direct alcohol fuel cell: cogeneration of energy and value-added products [Internet]. ChemElectroChem. 2024 ; 11( 3): 1-13.[citado 2025 nov. 16 ] Available from: https://doi.org/10.1002/celc.202300555
  • Source: ChemElectroChem. Unidade: IQ

    Subjects: ELETROQUÍMICA, NITRITOS

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      GONGONI, Juliana Luz Melo et al. Modulating the electrochemical response of eco-friendly laser-pyrolyzed paper sensors applied to nitrite determination. ChemElectroChem, v. 10, n. 1, p. 1-8, 2023Tradução . . Disponível em: https://doi.org/10.1002/celc.202201018. Acesso em: 16 nov. 2025.
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      Gongoni, J. L. M., Pradela Filho, L. A., Farias, D. M. de, Arantes, I. V. S., & Paixão, T. R. L. C. da. (2023). Modulating the electrochemical response of eco-friendly laser-pyrolyzed paper sensors applied to nitrite determination. ChemElectroChem, 10( 1), 1-8. doi:10.1002/celc.202201018
    • NLM

      Gongoni JLM, Pradela Filho LA, Farias DM de, Arantes IVS, Paixão TRLC da. Modulating the electrochemical response of eco-friendly laser-pyrolyzed paper sensors applied to nitrite determination [Internet]. ChemElectroChem. 2023 ; 10( 1): 1-8.[citado 2025 nov. 16 ] Available from: https://doi.org/10.1002/celc.202201018
    • Vancouver

      Gongoni JLM, Pradela Filho LA, Farias DM de, Arantes IVS, Paixão TRLC da. Modulating the electrochemical response of eco-friendly laser-pyrolyzed paper sensors applied to nitrite determination [Internet]. ChemElectroChem. 2023 ; 10( 1): 1-8.[citado 2025 nov. 16 ] Available from: https://doi.org/10.1002/celc.202201018
  • Source: ChemElectroChem. Unidade: IQSC

    Subjects: ELETROQUÍMICA, CATALISADORES, GÁS CARBÔNICO, HIDROGÊNIO

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      DIAS, Eduardo Henrique et al. One-Pot solvothermal synthesis of carbon black-supported CuO for catalysis of CO2 electroreduction. ChemElectroChem, v. 9, 2022Tradução . . Disponível em: https://doi.org/10.1002/celc.202200206. Acesso em: 16 nov. 2025.
    • APA

      Dias, E. H., Silva, G. T. S. T. da, Cruz, J. C. da, & Ribeiro, C. (2022). One-Pot solvothermal synthesis of carbon black-supported CuO for catalysis of CO2 electroreduction. ChemElectroChem, 9. doi:10.1002/celc.202200206
    • NLM

      Dias EH, Silva GTST da, Cruz JC da, Ribeiro C. One-Pot solvothermal synthesis of carbon black-supported CuO for catalysis of CO2 electroreduction [Internet]. ChemElectroChem. 2022 ; 9[citado 2025 nov. 16 ] Available from: https://doi.org/10.1002/celc.202200206
    • Vancouver

      Dias EH, Silva GTST da, Cruz JC da, Ribeiro C. One-Pot solvothermal synthesis of carbon black-supported CuO for catalysis of CO2 electroreduction [Internet]. ChemElectroChem. 2022 ; 9[citado 2025 nov. 16 ] Available from: https://doi.org/10.1002/celc.202200206
  • Source: ChemElectroChem. Unidade: IQSC

    Subjects: ELETROQUÍMICA, PERÓXIDO DE HIDROGÊNIO, DENSIDADE, REDUÇÃO, OXIGÊNIO

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    • ABNT

      ALMEIDA, Michell de Oliveira et al. Gas-phase errors affect DFT-based electrocatalysis models of oxygen reduction to hydrogen peroxide. ChemElectroChem, p. e202200210 1-7, 2022Tradução . . Disponível em: https://doi.org/10.1002/celc.202200210. Acesso em: 16 nov. 2025.
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      Almeida, M. de O., Kolb, M. J., Lanza, M. R. de V., Illas, F., & Calle-Vallejo, F. (2022). Gas-phase errors affect DFT-based electrocatalysis models of oxygen reduction to hydrogen peroxide. ChemElectroChem, e202200210 1-7. doi:10.1002/celc.202200210
    • NLM

      Almeida M de O, Kolb MJ, Lanza MR de V, Illas F, Calle-Vallejo F. Gas-phase errors affect DFT-based electrocatalysis models of oxygen reduction to hydrogen peroxide [Internet]. ChemElectroChem. 2022 ;e202200210 1-7.[citado 2025 nov. 16 ] Available from: https://doi.org/10.1002/celc.202200210
    • Vancouver

      Almeida M de O, Kolb MJ, Lanza MR de V, Illas F, Calle-Vallejo F. Gas-phase errors affect DFT-based electrocatalysis models of oxygen reduction to hydrogen peroxide [Internet]. ChemElectroChem. 2022 ;e202200210 1-7.[citado 2025 nov. 16 ] Available from: https://doi.org/10.1002/celc.202200210
  • Source: ChemElectroChem. Unidade: FFCLRP

    Subjects: ENZIMAS, OXIDAÇÃO

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      ANTONIO, Jesimiel Glaycon Rodrigues et al. Evaluation of TEMPO-NH2 and oxalate oxidase enzyme for complete ethylene glycol oxidation. ChemElectroChem, v. 9, n. 19, 2022Tradução . . Disponível em: https://doi.org/10.1002/celc.202200181. Acesso em: 16 nov. 2025.
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      Antonio, J. G. R., Franco, J. H., Almeida, P. Z. de, Polizeli, M. D. L. T. D. M., Minteer, S. D., & Andrade, A. R. de. (2022). Evaluation of TEMPO-NH2 and oxalate oxidase enzyme for complete ethylene glycol oxidation. ChemElectroChem, 9( 19). doi:10.1002/celc.202200181
    • NLM

      Antonio JGR, Franco JH, Almeida PZ de, Polizeli MDLTDM, Minteer SD, Andrade AR de. Evaluation of TEMPO-NH2 and oxalate oxidase enzyme for complete ethylene glycol oxidation [Internet]. ChemElectroChem. 2022 ; 9( 19):[citado 2025 nov. 16 ] Available from: https://doi.org/10.1002/celc.202200181
    • Vancouver

      Antonio JGR, Franco JH, Almeida PZ de, Polizeli MDLTDM, Minteer SD, Andrade AR de. Evaluation of TEMPO-NH2 and oxalate oxidase enzyme for complete ethylene glycol oxidation [Internet]. ChemElectroChem. 2022 ; 9( 19):[citado 2025 nov. 16 ] Available from: https://doi.org/10.1002/celc.202200181
  • Source: ChemElectroChem. Unidade: IQ

    Subjects: CÉRIO, NANOTECNOLOGIA, CATALISADORES, PARACETAMOL, ELETROQUÍMICA

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      ANGNES, Lúcio et al. Screen-printed nickel-cerium hydroxide sensor for acetaminophen determination in body fluids. ChemElectroChem, v. 8, p. 2505–2511, 2021Tradução . . Disponível em: https://doi.org/10.1002/celc.202100417. Acesso em: 16 nov. 2025.
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      Angnes, L., Azeredo, N. F. B., Gonçalves, J. M., Lima, I. S., Araki, K., & Wang, J. (2021). Screen-printed nickel-cerium hydroxide sensor for acetaminophen determination in body fluids. ChemElectroChem, 8, 2505–2511. doi:10.1002/celc.202100417
    • NLM

      Angnes L, Azeredo NFB, Gonçalves JM, Lima IS, Araki K, Wang J. Screen-printed nickel-cerium hydroxide sensor for acetaminophen determination in body fluids [Internet]. ChemElectroChem. 2021 ; 8 2505–2511.[citado 2025 nov. 16 ] Available from: https://doi.org/10.1002/celc.202100417
    • Vancouver

      Angnes L, Azeredo NFB, Gonçalves JM, Lima IS, Araki K, Wang J. Screen-printed nickel-cerium hydroxide sensor for acetaminophen determination in body fluids [Internet]. ChemElectroChem. 2021 ; 8 2505–2511.[citado 2025 nov. 16 ] Available from: https://doi.org/10.1002/celc.202100417
  • Source: ChemElectroChem. Unidade: IQ

    Subjects: OURO, ÁCIDOS ASCÓRBICOS, ELETROQUÍMICA

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      KUMAR, Abhishek et al. Mass transport in nanoporous gold and correlation with surface pores for EC1 mechanism: case of ascorbic acid. ChemElectroChem, v. 8, p. 2129 –2136, 2021Tradução . . Disponível em: https://doi.org/10.1002/celc.202100440. Acesso em: 16 nov. 2025.
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      Kumar, A., Gonçalves, J. M., Furtado, V. L., Araki, K., Angnes, L., Bouvet, M., et al. (2021). Mass transport in nanoporous gold and correlation with surface pores for EC1 mechanism: case of ascorbic acid. ChemElectroChem, 8, 2129 –2136. doi:10.1002/celc.202100440
    • NLM

      Kumar A, Gonçalves JM, Furtado VL, Araki K, Angnes L, Bouvet M, Bertotti M, Prest RM. Mass transport in nanoporous gold and correlation with surface pores for EC1 mechanism: case of ascorbic acid [Internet]. ChemElectroChem. 2021 ; 8 2129 –2136.[citado 2025 nov. 16 ] Available from: https://doi.org/10.1002/celc.202100440
    • Vancouver

      Kumar A, Gonçalves JM, Furtado VL, Araki K, Angnes L, Bouvet M, Bertotti M, Prest RM. Mass transport in nanoporous gold and correlation with surface pores for EC1 mechanism: case of ascorbic acid [Internet]. ChemElectroChem. 2021 ; 8 2129 –2136.[citado 2025 nov. 16 ] Available from: https://doi.org/10.1002/celc.202100440
  • Source: ChemElectroChem. Unidade: FCFRP

    Subjects: ELÉTRONS, ELETROQUÍMICA

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      SILVA, Thaissa L. et al. Decorating BODIPY with electron-withdrawing NO group: spectroelectrochemical consequences and computational investigation. ChemElectroChem, v. 8, n. 15, p. 2746-2983, 2021Tradução . . Disponível em: https://doi.org/10.1002/celc.202100609. Acesso em: 16 nov. 2025.
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      Silva, T. L., Nascimento, T. A. do, Almeida, A. K. A. de, Melo, S. M. G. de, Silva, J. C. S. da, Xavier, J. A., et al. (2021). Decorating BODIPY with electron-withdrawing NO group: spectroelectrochemical consequences and computational investigation. ChemElectroChem, 8( 15), 2746-2983. doi:10.1002/celc.202100609
    • NLM

      Silva TL, Nascimento TA do, Almeida AKA de, Melo SMG de, Silva JCS da, Xavier JA, Xavier AFA, Santos DC, Wadhawan J, Emery F da S, Goulart MOF. Decorating BODIPY with electron-withdrawing NO group: spectroelectrochemical consequences and computational investigation [Internet]. ChemElectroChem. 2021 ; 8( 15): 2746-2983.[citado 2025 nov. 16 ] Available from: https://doi.org/10.1002/celc.202100609
    • Vancouver

      Silva TL, Nascimento TA do, Almeida AKA de, Melo SMG de, Silva JCS da, Xavier JA, Xavier AFA, Santos DC, Wadhawan J, Emery F da S, Goulart MOF. Decorating BODIPY with electron-withdrawing NO group: spectroelectrochemical consequences and computational investigation [Internet]. ChemElectroChem. 2021 ; 8( 15): 2746-2983.[citado 2025 nov. 16 ] Available from: https://doi.org/10.1002/celc.202100609

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