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  • Source: Electrochimica Acta. Unidade: IQSC

    Subjects: ELETRÓLITOS, ELETROQUÍMICA

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      OLIVEIRA, Sarah G.G. de et al. Investigating the performance and stability of zeolitic imidazolate framework-67 electrode in alkaline redox electrolytes for energy storage applications. Electrochimica Acta, v. 480, p. 143875, 2024Tradução . . Disponível em: https://doi.org/10.1016/j.electacta.2024.143875. Acesso em: 02 jul. 2024.
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      Oliveira, S. G. G. de, Trigueiro, J. P. C., Sakita, A. M. P., Oliveira, P. S. C. de, Lavall, R. L., Pim, W. D. do, et al. (2024). Investigating the performance and stability of zeolitic imidazolate framework-67 electrode in alkaline redox electrolytes for energy storage applications. Electrochimica Acta, 480, 143875. doi:10.1016/j.electacta.2024.143875
    • NLM

      Oliveira SGG de, Trigueiro JPC, Sakita AMP, Oliveira PSC de, Lavall RL, Pim WD do, Murugesu M, Ortega PFR. Investigating the performance and stability of zeolitic imidazolate framework-67 electrode in alkaline redox electrolytes for energy storage applications [Internet]. Electrochimica Acta. 2024 ;480 143875.[citado 2024 jul. 02 ] Available from: https://doi.org/10.1016/j.electacta.2024.143875
    • Vancouver

      Oliveira SGG de, Trigueiro JPC, Sakita AMP, Oliveira PSC de, Lavall RL, Pim WD do, Murugesu M, Ortega PFR. Investigating the performance and stability of zeolitic imidazolate framework-67 electrode in alkaline redox electrolytes for energy storage applications [Internet]. Electrochimica Acta. 2024 ;480 143875.[citado 2024 jul. 02 ] Available from: https://doi.org/10.1016/j.electacta.2024.143875
  • Source: Electrocatalysis. Unidade: IQSC

    Assunto: ELETROQUÍMICA

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      Electrocatalysis. Electrocatalysis. New York: Instituto de Química de São Carlos, Universidade de São Paulo. Disponível em: https://link.springer.com/journal/12678/editors. Acesso em: 02 jul. 2024. , 2024
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      Electrocatalysis. (2024). Electrocatalysis. Electrocatalysis. New York: Instituto de Química de São Carlos, Universidade de São Paulo. Recuperado de https://link.springer.com/journal/12678/editors
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      Electrocatalysis [Internet]. Electrocatalysis. 2024 ;[citado 2024 jul. 02 ] Available from: https://link.springer.com/journal/12678/editors
    • Vancouver

      Electrocatalysis [Internet]. Electrocatalysis. 2024 ;[citado 2024 jul. 02 ] Available from: https://link.springer.com/journal/12678/editors
  • Source: Electrocatalysis. Unidade: IQSC

    Assunto: ELETROQUÍMICA

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      TICIANELLI, Edson Antonio e TREMILIOSI FILHO, Germano. Electrocatalysis. Electrocatalysis. New York: Instituto de Química de São Carlos, Universidade de São Paulo. Disponível em: https://www.springer.com/journal/12678/editors. Acesso em: 02 jul. 2024. , 2023
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      Ticianelli, E. A., & Tremiliosi Filho, G. (2023). Electrocatalysis. Electrocatalysis. New York: Instituto de Química de São Carlos, Universidade de São Paulo. Recuperado de https://www.springer.com/journal/12678/editors
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      Ticianelli EA, Tremiliosi Filho G. Electrocatalysis [Internet]. Electrocatalysis. 2023 ;[citado 2024 jul. 02 ] Available from: https://www.springer.com/journal/12678/editors
    • Vancouver

      Ticianelli EA, Tremiliosi Filho G. Electrocatalysis [Internet]. Electrocatalysis. 2023 ;[citado 2024 jul. 02 ] Available from: https://www.springer.com/journal/12678/editors
  • Source: Chemical Engineering Journal. Unidades: IFSC, ICMC

    Subjects: MASTITE ANIMAL, ELETROQUÍMICA, APRENDIZADO COMPUTACIONAL, PECUÁRIA LEITEIRA, MONITORAMENTO AMBIENTAL, STAPHYLOCOCCUS, SENSOR

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      SOARES, Andrey Coatrini et al. Microfluidic E-tongue to diagnose bovine mastitis with milk samples using machine learning with decision tree models. Chemical Engineering Journal, v. 451, n. Ja 2023, p. 138523-1-138523-9, 2023Tradução . . Disponível em: https://doi.org/10.1016/j.cej.2022.138523. Acesso em: 02 jul. 2024.
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      Soares, A. C., Soares, J. C., Popolin Neto, M., Mello, S. S. de, Pinto, D. D. S. C., Carvalho, W. A., et al. (2023). Microfluidic E-tongue to diagnose bovine mastitis with milk samples using machine learning with decision tree models. Chemical Engineering Journal, 451( Ja 2023), 138523-1-138523-9. doi:10.1016/j.cej.2022.138523
    • NLM

      Soares AC, Soares JC, Popolin Neto M, Mello SS de, Pinto DDSC, Carvalho WA, Gilmore MS, Piazzetta MH de O, Gobbi AL, Brandão H de M, Paulovich FV, Oliveira Junior ON de, Mattoso LHC. Microfluidic E-tongue to diagnose bovine mastitis with milk samples using machine learning with decision tree models [Internet]. Chemical Engineering Journal. 2023 ; 451( Ja 2023): 138523-1-138523-9.[citado 2024 jul. 02 ] Available from: https://doi.org/10.1016/j.cej.2022.138523
    • Vancouver

      Soares AC, Soares JC, Popolin Neto M, Mello SS de, Pinto DDSC, Carvalho WA, Gilmore MS, Piazzetta MH de O, Gobbi AL, Brandão H de M, Paulovich FV, Oliveira Junior ON de, Mattoso LHC. Microfluidic E-tongue to diagnose bovine mastitis with milk samples using machine learning with decision tree models [Internet]. Chemical Engineering Journal. 2023 ; 451( Ja 2023): 138523-1-138523-9.[citado 2024 jul. 02 ] Available from: https://doi.org/10.1016/j.cej.2022.138523
  • Source: Journal of Alloys and Compounds. Unidade: IQSC

    Subjects: ELETROQUÍMICA, METANO, OXIDAÇÃO, CATALISADORES

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      SILVA, Ricardo Marques e et al. The role of TiO2:SnO2 heterojunction for partial oxidation of methane by photoelectrocatalytic process at room temperature. Journal of Alloys and Compounds, v. 968, 2023Tradução . . Disponível em: https://doi.org/10.1016/j.jallcom.2023.172090. Acesso em: 02 jul. 2024.
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      Silva, R. M. e, Souza, F. de L., Dias, E. H., Silva, G. T. S. T. da, Durán, F. E., Rego, A., et al. (2023). The role of TiO2:SnO2 heterojunction for partial oxidation of methane by photoelectrocatalytic process at room temperature. Journal of Alloys and Compounds, 968. doi:10.1016/j.jallcom.2023.172090
    • NLM

      Silva RM e, Souza F de L, Dias EH, Silva GTST da, Durán FE, Rego A, Higgins D, Ribeiro C. The role of TiO2:SnO2 heterojunction for partial oxidation of methane by photoelectrocatalytic process at room temperature [Internet]. Journal of Alloys and Compounds. 2023 ; 968[citado 2024 jul. 02 ] Available from: https://doi.org/10.1016/j.jallcom.2023.172090
    • Vancouver

      Silva RM e, Souza F de L, Dias EH, Silva GTST da, Durán FE, Rego A, Higgins D, Ribeiro C. The role of TiO2:SnO2 heterojunction for partial oxidation of methane by photoelectrocatalytic process at room temperature [Internet]. Journal of Alloys and Compounds. 2023 ; 968[citado 2024 jul. 02 ] Available from: https://doi.org/10.1016/j.jallcom.2023.172090
  • Source: Journal of Electroanalytical Chemistry. Unidade: IQSC

    Subjects: RUTÊNIO, SÍNTESE INORGÂNICA, ELETROQUÍMICA

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      KHALID, Muhammad et al. Facile synthesis of Ru nanoclusters embedded in carbonaceous shells for hydrogen evolution reaction in alkaline and acidic media. Journal of Electroanalytical Chemistry, v. 929, p. 117116, 2023Tradução . . Disponível em: https://doi.org/10.1016/j.jelechem.2022.117116. Acesso em: 02 jul. 2024.
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      Khalid, M., Fonseca, H. A. B., Verga, L. G., Hatshan, M. R., Silva, J. L. F. da, Varela, H., & Shahgaldi, S. (2023). Facile synthesis of Ru nanoclusters embedded in carbonaceous shells for hydrogen evolution reaction in alkaline and acidic media. Journal of Electroanalytical Chemistry, 929, 117116. doi:10.1016/j.jelechem.2022.117116
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      Khalid M, Fonseca HAB, Verga LG, Hatshan MR, Silva JLF da, Varela H, Shahgaldi S. Facile synthesis of Ru nanoclusters embedded in carbonaceous shells for hydrogen evolution reaction in alkaline and acidic media [Internet]. Journal of Electroanalytical Chemistry. 2023 ;929 117116.[citado 2024 jul. 02 ] Available from: https://doi.org/10.1016/j.jelechem.2022.117116
    • Vancouver

      Khalid M, Fonseca HAB, Verga LG, Hatshan MR, Silva JLF da, Varela H, Shahgaldi S. Facile synthesis of Ru nanoclusters embedded in carbonaceous shells for hydrogen evolution reaction in alkaline and acidic media [Internet]. Journal of Electroanalytical Chemistry. 2023 ;929 117116.[citado 2024 jul. 02 ] Available from: https://doi.org/10.1016/j.jelechem.2022.117116
  • Source: Molecules: a journal of synthetic organic and natural product chemistry. Unidade: IQSC

    Subjects: SÍNTESE ORGÂNICA, ELETROQUÍMICA, REDUÇÃO

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      LEI, Yuting et al. One-Step Synthesis of Aminobenzoic Acid Functionalized Graphene Oxide by Electrochemical Exfoliation of Graphite for Oxygen Reduction to Hydrogen Peroxide and Supercapacitors. Molecules: a journal of synthetic organic and natural product chemistry, v. 27, p. 7629, 2022Tradução . . Disponível em: https://doi.org/10.3390/molecules27217629. Acesso em: 02 jul. 2024.
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      Lei, Y., Madalena, L. dos S., Ossonon, B. D., Bimbi Junior, F. E., Chen, J., Lanza, M. R. de V., & Tavares, A. C. (2022). One-Step Synthesis of Aminobenzoic Acid Functionalized Graphene Oxide by Electrochemical Exfoliation of Graphite for Oxygen Reduction to Hydrogen Peroxide and Supercapacitors. Molecules: a journal of synthetic organic and natural product chemistry, 27, 7629. doi:10.3390/molecules27217629
    • NLM

      Lei Y, Madalena L dos S, Ossonon BD, Bimbi Junior FE, Chen J, Lanza MR de V, Tavares AC. One-Step Synthesis of Aminobenzoic Acid Functionalized Graphene Oxide by Electrochemical Exfoliation of Graphite for Oxygen Reduction to Hydrogen Peroxide and Supercapacitors [Internet]. Molecules: a journal of synthetic organic and natural product chemistry. 2022 ;27 7629.[citado 2024 jul. 02 ] Available from: https://doi.org/10.3390/molecules27217629
    • Vancouver

      Lei Y, Madalena L dos S, Ossonon BD, Bimbi Junior FE, Chen J, Lanza MR de V, Tavares AC. One-Step Synthesis of Aminobenzoic Acid Functionalized Graphene Oxide by Electrochemical Exfoliation of Graphite for Oxygen Reduction to Hydrogen Peroxide and Supercapacitors [Internet]. Molecules: a journal of synthetic organic and natural product chemistry. 2022 ;27 7629.[citado 2024 jul. 02 ] Available from: https://doi.org/10.3390/molecules27217629
  • Source: Electrocatalysis. Unidade: IQSC

    Assunto: ELETROQUÍMICA

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      TREMILIOSI FILHO, Germano. Electrocatalysis. Electrocatalysis. New York: Instituto de Química de São Carlos, Universidade de São Paulo. Disponível em: https://www.springer.com/journal/12678/editors. Acesso em: 02 jul. 2024. , 2022
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      Tremiliosi Filho, G. (2022). Electrocatalysis. Electrocatalysis. New York: Instituto de Química de São Carlos, Universidade de São Paulo. Recuperado de https://www.springer.com/journal/12678/editors
    • NLM

      Tremiliosi Filho G. Electrocatalysis [Internet]. Electrocatalysis. 2022 ;[citado 2024 jul. 02 ] Available from: https://www.springer.com/journal/12678/editors
    • Vancouver

      Tremiliosi Filho G. Electrocatalysis [Internet]. Electrocatalysis. 2022 ;[citado 2024 jul. 02 ] Available from: https://www.springer.com/journal/12678/editors
  • Source: Journal of Electroanalytical Chemistry. Unidade: IQ

    Subjects: CARBONO, NITROGÊNIO, ELETRODO, ELETROQUÍMICA

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      MONJE, Ivonne E et al. In situ-formed nitrogen-doped carbon/silicon-based materials as negative electrodes for lithium-ion batteries. Journal of Electroanalytical Chemistry, v. 901, p. 1-11 art. 115732, 2021Tradução . . Disponível em: https://doi.org/10.1016/j.jelechem.2021.115732. Acesso em: 02 jul. 2024.
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      Monje, I. E., Ramirez, N. S., Santagnelic, S. H., Camargo, P. H. C. de, Bélangere, D., Schougaard, S. B., & Torresi, R. M. (2021). In situ-formed nitrogen-doped carbon/silicon-based materials as negative electrodes for lithium-ion batteries. Journal of Electroanalytical Chemistry, 901, 1-11 art. 115732. doi:10.1016/j.jelechem.2021.115732
    • NLM

      Monje IE, Ramirez NS, Santagnelic SH, Camargo PHC de, Bélangere D, Schougaard SB, Torresi RM. In situ-formed nitrogen-doped carbon/silicon-based materials as negative electrodes for lithium-ion batteries [Internet]. Journal of Electroanalytical Chemistry. 2021 ; 901 1-11 art. 115732.[citado 2024 jul. 02 ] Available from: https://doi.org/10.1016/j.jelechem.2021.115732
    • Vancouver

      Monje IE, Ramirez NS, Santagnelic SH, Camargo PHC de, Bélangere D, Schougaard SB, Torresi RM. In situ-formed nitrogen-doped carbon/silicon-based materials as negative electrodes for lithium-ion batteries [Internet]. Journal of Electroanalytical Chemistry. 2021 ; 901 1-11 art. 115732.[citado 2024 jul. 02 ] Available from: https://doi.org/10.1016/j.jelechem.2021.115732
  • Source: Electrocatalysis. Unidade: IQSC

    Assunto: ELETROQUÍMICA

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      TREMILIOSI FILHO, Germano. Electrocatalysis. Electrocatalysis. New York: Springer. Disponível em: http://www.springer.com/chemistry/electrochemistry/journal/12678?detailsPage=editorialBoard. Acesso em: 02 jul. 2024. , 2021
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      Tremiliosi Filho, G. (2021). Electrocatalysis. Electrocatalysis. New York: Springer. Recuperado de http://www.springer.com/chemistry/electrochemistry/journal/12678?detailsPage=editorialBoard
    • NLM

      Tremiliosi Filho G. Electrocatalysis [Internet]. Electrocatalysis. 2021 ;[citado 2024 jul. 02 ] Available from: http://www.springer.com/chemistry/electrochemistry/journal/12678?detailsPage=editorialBoard
    • Vancouver

      Tremiliosi Filho G. Electrocatalysis [Internet]. Electrocatalysis. 2021 ;[citado 2024 jul. 02 ] Available from: http://www.springer.com/chemistry/electrochemistry/journal/12678?detailsPage=editorialBoard
  • Source: Electrocatalysis. Unidade: IQSC

    Assunto: ELETROQUÍMICA

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      Electrocatalysis. Electrocatalysis. New York: Springer. Disponível em: http://www.springer.com/chemistry/electrochemistry/journal/12678?detailsPage=editorialBoard. Acesso em: 02 jul. 2024. , 2021
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      Electrocatalysis. (2021). Electrocatalysis. Electrocatalysis. New York: Springer. Recuperado de http://www.springer.com/chemistry/electrochemistry/journal/12678?detailsPage=editorialBoard
    • NLM

      Electrocatalysis [Internet]. Electrocatalysis. 2021 ;[citado 2024 jul. 02 ] Available from: http://www.springer.com/chemistry/electrochemistry/journal/12678?detailsPage=editorialBoard
    • Vancouver

      Electrocatalysis [Internet]. Electrocatalysis. 2021 ;[citado 2024 jul. 02 ] Available from: http://www.springer.com/chemistry/electrochemistry/journal/12678?detailsPage=editorialBoard
  • Source: Electrocatalysis. Unidade: IQSC

    Assunto: ELETROQUÍMICA

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      TREMILIOSI FILHO, Germano. Electrocatalysis. Electrocatalysis. New York: Springer. Disponível em: http://www.springer.com/chemistry/electrochemistry/journal/12678?detailsPage=editorialBoard. Acesso em: 02 jul. 2024. , 2020
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      Tremiliosi Filho, G. (2020). Electrocatalysis. Electrocatalysis. New York: Springer. Recuperado de http://www.springer.com/chemistry/electrochemistry/journal/12678?detailsPage=editorialBoard
    • NLM

      Tremiliosi Filho G. Electrocatalysis [Internet]. Electrocatalysis. 2020 ;[citado 2024 jul. 02 ] Available from: http://www.springer.com/chemistry/electrochemistry/journal/12678?detailsPage=editorialBoard
    • Vancouver

      Tremiliosi Filho G. Electrocatalysis [Internet]. Electrocatalysis. 2020 ;[citado 2024 jul. 02 ] Available from: http://www.springer.com/chemistry/electrochemistry/journal/12678?detailsPage=editorialBoard
  • Source: ECS Meeting Abstracts. Conference titles: ECS Meeting. Unidade: IQSC

    Subjects: ELETROQUÍMICA, NANOPARTÍCULAS, NIÓBIO

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      KAMMOUN, Hela et al. Niobium Pentoxide Nanoparticles and Their Self- Assembled in Building Blocks for Gas Sensors. 2020, Anais.. Montreal: Electrochemical Society - ECS, 2020. Disponível em: https://doi.org/10.1149/MA2020-01282038mtgabs. Acesso em: 02 jul. 2024.
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      Kammoun, H., Yurtsever, A., Lanza, M. R. de V., & Tavares, A. C. (2020). Niobium Pentoxide Nanoparticles and Their Self- Assembled in Building Blocks for Gas Sensors. In ECS Meeting Abstracts. Montreal: Electrochemical Society - ECS. doi:10.1149/MA2020-01282038mtgabs
    • NLM

      Kammoun H, Yurtsever A, Lanza MR de V, Tavares AC. Niobium Pentoxide Nanoparticles and Their Self- Assembled in Building Blocks for Gas Sensors [Internet]. ECS Meeting Abstracts. 2020 ;[citado 2024 jul. 02 ] Available from: https://doi.org/10.1149/MA2020-01282038mtgabs
    • Vancouver

      Kammoun H, Yurtsever A, Lanza MR de V, Tavares AC. Niobium Pentoxide Nanoparticles and Their Self- Assembled in Building Blocks for Gas Sensors [Internet]. ECS Meeting Abstracts. 2020 ;[citado 2024 jul. 02 ] Available from: https://doi.org/10.1149/MA2020-01282038mtgabs
  • Source: ECS Meeting Abstracts. Conference titles: ECS Meeting. Unidade: IQSC

    Subjects: ELETROQUÍMICA, SEMICONDUTORES, POLUIÇÃO AMBIENTAL, ÁGUAS RESIDUÁRIAS

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      KAMMOUN, Hela et al. Investigating the in-Situ Doping Effect of Niobium Pentoxide Nanostructures on Their Electronic Surface Properties. 2020, Anais.. Montreal: Electrochemical Society - ECS, 2020. Disponível em: https://doi.org/10.1149/MA2020-01231346mtgabs. Acesso em: 02 jul. 2024.
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      Kammoun, H., Fanidi, K., Trevelin, L. C., Lanza, M. R. de V., & Tavares, A. C. (2020). Investigating the in-Situ Doping Effect of Niobium Pentoxide Nanostructures on Their Electronic Surface Properties. In ECS Meeting Abstracts. Montreal: Electrochemical Society - ECS. doi:10.1149/MA2020-01231346mtgabs
    • NLM

      Kammoun H, Fanidi K, Trevelin LC, Lanza MR de V, Tavares AC. Investigating the in-Situ Doping Effect of Niobium Pentoxide Nanostructures on Their Electronic Surface Properties [Internet]. ECS Meeting Abstracts. 2020 ;[citado 2024 jul. 02 ] Available from: https://doi.org/10.1149/MA2020-01231346mtgabs
    • Vancouver

      Kammoun H, Fanidi K, Trevelin LC, Lanza MR de V, Tavares AC. Investigating the in-Situ Doping Effect of Niobium Pentoxide Nanostructures on Their Electronic Surface Properties [Internet]. ECS Meeting Abstracts. 2020 ;[citado 2024 jul. 02 ] Available from: https://doi.org/10.1149/MA2020-01231346mtgabs
  • Source: Journal of Chemical Information and Modeling. Unidade: FFCLRP

    Subjects: BATERIAS ELÉTRICAS, ENERGIA ELÉTRICA, SÓDIO, POTÁSSIO, ELETROQUÍMICA, SOLUÇÕES ELETROLÍTICAS

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      SOUZA, Rafael Maglia de et al. Molecular dynamics simulations of polymer–ionic liquid (1-ethyl-3-methylimidazolium tetracyanoborate) ternary electrolyte for sodium and potassium ion batteries. Journal of Chemical Information and Modeling, v. 60, n. 2, p. 485-499, 2020Tradução . . Disponível em: https://doi.org/10.1021/acs.jcim.9b00750. Acesso em: 02 jul. 2024.
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      Souza, R. M. de, Siqueira, L. J. A. de, Karttunen, M., & Dias, L. G. (2020). Molecular dynamics simulations of polymer–ionic liquid (1-ethyl-3-methylimidazolium tetracyanoborate) ternary electrolyte for sodium and potassium ion batteries. Journal of Chemical Information and Modeling, 60( 2), 485-499. doi:10.1021/acs.jcim.9b00750
    • NLM

      Souza RM de, Siqueira LJA de, Karttunen M, Dias LG. Molecular dynamics simulations of polymer–ionic liquid (1-ethyl-3-methylimidazolium tetracyanoborate) ternary electrolyte for sodium and potassium ion batteries [Internet]. Journal of Chemical Information and Modeling. 2020 ; 60( 2): 485-499.[citado 2024 jul. 02 ] Available from: https://doi.org/10.1021/acs.jcim.9b00750
    • Vancouver

      Souza RM de, Siqueira LJA de, Karttunen M, Dias LG. Molecular dynamics simulations of polymer–ionic liquid (1-ethyl-3-methylimidazolium tetracyanoborate) ternary electrolyte for sodium and potassium ion batteries [Internet]. Journal of Chemical Information and Modeling. 2020 ; 60( 2): 485-499.[citado 2024 jul. 02 ] Available from: https://doi.org/10.1021/acs.jcim.9b00750
  • Source: Electrocatalysis. Unidade: IQSC

    Assunto: ELETROQUÍMICA

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      Electrocatalysis. Electrocatalysis. New York: Springer. Disponível em: http://www.springer.com/chemistry/electrochemistry/journal/12678?detailsPage=editorialBoard. Acesso em: 02 jul. 2024. , 2020
    • APA

      Electrocatalysis. (2020). Electrocatalysis. Electrocatalysis. New York: Springer. Recuperado de http://www.springer.com/chemistry/electrochemistry/journal/12678?detailsPage=editorialBoard
    • NLM

      Electrocatalysis [Internet]. Electrocatalysis. 2020 ;[citado 2024 jul. 02 ] Available from: http://www.springer.com/chemistry/electrochemistry/journal/12678?detailsPage=editorialBoard
    • Vancouver

      Electrocatalysis [Internet]. Electrocatalysis. 2020 ;[citado 2024 jul. 02 ] Available from: http://www.springer.com/chemistry/electrochemistry/journal/12678?detailsPage=editorialBoard
  • Source: Journal of New Materials for Electrochemical Systems. Unidade: IQSC

    Assunto: ELETROQUÍMICA

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      Journal of New Materials for Electrochemical Systems. Journal of New Materials for Electrochemical Systems. Montreal: Ecole Polytechnique de Montreal. Disponível em: https://repositorio.usp.br/directbitstream/ce1ddb3c-20a6-4565-ae6f-3f30707b170a/P18676.pdf. Acesso em: 02 jul. 2024. , 2020
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      Journal of New Materials for Electrochemical Systems. (2020). Journal of New Materials for Electrochemical Systems. Journal of New Materials for Electrochemical Systems. Montreal: Ecole Polytechnique de Montreal. Recuperado de https://repositorio.usp.br/directbitstream/ce1ddb3c-20a6-4565-ae6f-3f30707b170a/P18676.pdf
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      Journal of New Materials for Electrochemical Systems [Internet]. Journal of New Materials for Electrochemical Systems. 2020 ;[citado 2024 jul. 02 ] Available from: https://repositorio.usp.br/directbitstream/ce1ddb3c-20a6-4565-ae6f-3f30707b170a/P18676.pdf
    • Vancouver

      Journal of New Materials for Electrochemical Systems [Internet]. Journal of New Materials for Electrochemical Systems. 2020 ;[citado 2024 jul. 02 ] Available from: https://repositorio.usp.br/directbitstream/ce1ddb3c-20a6-4565-ae6f-3f30707b170a/P18676.pdf
  • Source: Electrocatalysis. Unidade: IQSC

    Assunto: ELETROQUÍMICA

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      Electrocatalysis. Electrocatalysis. New York: Springer. Disponível em: http://www.springer.com/chemistry/electrochemistry/journal/12678?detailsPage=editorialBoard. Acesso em: 02 jul. 2024. , 2019
    • APA

      Electrocatalysis. (2019). Electrocatalysis. Electrocatalysis. New York: Springer. Recuperado de http://www.springer.com/chemistry/electrochemistry/journal/12678?detailsPage=editorialBoard
    • NLM

      Electrocatalysis [Internet]. Electrocatalysis. 2019 ;[citado 2024 jul. 02 ] Available from: http://www.springer.com/chemistry/electrochemistry/journal/12678?detailsPage=editorialBoard
    • Vancouver

      Electrocatalysis [Internet]. Electrocatalysis. 2019 ;[citado 2024 jul. 02 ] Available from: http://www.springer.com/chemistry/electrochemistry/journal/12678?detailsPage=editorialBoard
  • Source: Electrocatalysis. Unidade: IQSC

    Assunto: ELETROQUÍMICA

    Versão PublicadaAcesso à fonteHow to cite
    A citação é gerada automaticamente e pode não estar totalmente de acordo com as normas
    • ABNT

      Electrocatalysis. Electrocatalysis. New York: Springer. Disponível em: http://www.springer.com/chemistry/electrochemistry/journal/12678?detailsPage=editorialBoard. Acesso em: 02 jul. 2024. , 2018
    • APA

      Electrocatalysis. (2018). Electrocatalysis. Electrocatalysis. New York: Springer. Recuperado de http://www.springer.com/chemistry/electrochemistry/journal/12678?detailsPage=editorialBoard
    • NLM

      Electrocatalysis [Internet]. Electrocatalysis. 2018 ;[citado 2024 jul. 02 ] Available from: http://www.springer.com/chemistry/electrochemistry/journal/12678?detailsPage=editorialBoard
    • Vancouver

      Electrocatalysis [Internet]. Electrocatalysis. 2018 ;[citado 2024 jul. 02 ] Available from: http://www.springer.com/chemistry/electrochemistry/journal/12678?detailsPage=editorialBoard
  • Source: Journal of Chemical & Engineering Data. Unidade: IQ

    Subjects: ELETROQUÍMICA, LÍQUIDOS IÔNICOS

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      SANCHEZ RAMIREZ, Nédher et al. A comparison among viscosity, density, conductivity, and electrochemical windows of N-n-butyl-N-methylpyrrolidinium and triethyl-n-pentylphosphonium bis(fluorosulfonyl imide) ionic liquids and their analogues containing bis(trifluoromethylsulfonyl) imide anion. Journal of Chemical & Engineering Data, v. 62, n. 10, p. 3437-3444, 2017Tradução . . Disponível em: https://doi.org/10.1021/acs.jced.7b00458. Acesso em: 02 jul. 2024.
    • APA

      Sanchez Ramirez, N., Assresahegn, B. D., Bélanger, D., & Torresi, R. M. (2017). A comparison among viscosity, density, conductivity, and electrochemical windows of N-n-butyl-N-methylpyrrolidinium and triethyl-n-pentylphosphonium bis(fluorosulfonyl imide) ionic liquids and their analogues containing bis(trifluoromethylsulfonyl) imide anion. Journal of Chemical & Engineering Data, 62( 10), 3437-3444. doi:10.1021/acs.jced.7b00458
    • NLM

      Sanchez Ramirez N, Assresahegn BD, Bélanger D, Torresi RM. A comparison among viscosity, density, conductivity, and electrochemical windows of N-n-butyl-N-methylpyrrolidinium and triethyl-n-pentylphosphonium bis(fluorosulfonyl imide) ionic liquids and their analogues containing bis(trifluoromethylsulfonyl) imide anion [Internet]. Journal of Chemical & Engineering Data. 2017 ; 62( 10): 3437-3444.[citado 2024 jul. 02 ] Available from: https://doi.org/10.1021/acs.jced.7b00458
    • Vancouver

      Sanchez Ramirez N, Assresahegn BD, Bélanger D, Torresi RM. A comparison among viscosity, density, conductivity, and electrochemical windows of N-n-butyl-N-methylpyrrolidinium and triethyl-n-pentylphosphonium bis(fluorosulfonyl imide) ionic liquids and their analogues containing bis(trifluoromethylsulfonyl) imide anion [Internet]. Journal of Chemical & Engineering Data. 2017 ; 62( 10): 3437-3444.[citado 2024 jul. 02 ] Available from: https://doi.org/10.1021/acs.jced.7b00458

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