Filtros : "BIOCOMBUSTÍVEIS" "Indexado na Web of Science" Removido: "IFSC-FCM" Limpar

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  • Source: Chemical Engineering Journal. Unidade: EESC

    Subjects: CANA-DE-AÇÚCAR, VINHAÇA, BIODIGESTORES, ENGENHARIA HIDRÁULICA, BIOCOMBUSTÍVEIS

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      FUESS, Lucas Tadeu et al. Solving the seasonality issue in sugarcane biorefineries: high-rate year-round methane production from fermented sulfate-free vinasse and molasses. Chemical Engineering Journal, v. 478, p. 1-15, 2023Tradução . . Disponível em: https://doi.org/10.1016/j.cej.2022.140965. Acesso em: 11 ago. 2024.
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      Fuess, L. T., Braga, A. F. M., Zaiat, M., & Lens, P. N. L. (2023). Solving the seasonality issue in sugarcane biorefineries: high-rate year-round methane production from fermented sulfate-free vinasse and molasses. Chemical Engineering Journal, 478, 1-15. doi:10.1016/j.cej.2023.147432
    • NLM

      Fuess LT, Braga AFM, Zaiat M, Lens PNL. Solving the seasonality issue in sugarcane biorefineries: high-rate year-round methane production from fermented sulfate-free vinasse and molasses [Internet]. Chemical Engineering Journal. 2023 ; 478 1-15.[citado 2024 ago. 11 ] Available from: https://doi.org/10.1016/j.cej.2022.140965
    • Vancouver

      Fuess LT, Braga AFM, Zaiat M, Lens PNL. Solving the seasonality issue in sugarcane biorefineries: high-rate year-round methane production from fermented sulfate-free vinasse and molasses [Internet]. Chemical Engineering Journal. 2023 ; 478 1-15.[citado 2024 ago. 11 ] Available from: https://doi.org/10.1016/j.cej.2022.140965
  • Source: Electrochimica Acta. Unidade: IQSC

    Assunto: BIOCOMBUSTÍVEIS

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      FARO, M. Lo et al. Exploring the use of bioethanol for high-temperature electrolysis of water. Electrochimica Acta, v. 466, p. 143009, 2023Tradução . . Disponível em: https://doi.org/10.1016/j.electacta.2023.143009. Acesso em: 11 ago. 2024.
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      Faro, M. L., Ometto, F. B., Zignani, S. C., Mantilla, S. V., Perez, J., & Ticianelli, E. A. (2023). Exploring the use of bioethanol for high-temperature electrolysis of water. Electrochimica Acta, 466, 143009. doi:10.1016/j.electacta.2023.143009
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      Faro ML, Ometto FB, Zignani SC, Mantilla SV, Perez J, Ticianelli EA. Exploring the use of bioethanol for high-temperature electrolysis of water [Internet]. Electrochimica Acta. 2023 ;466 143009.[citado 2024 ago. 11 ] Available from: https://doi.org/10.1016/j.electacta.2023.143009
    • Vancouver

      Faro ML, Ometto FB, Zignani SC, Mantilla SV, Perez J, Ticianelli EA. Exploring the use of bioethanol for high-temperature electrolysis of water [Internet]. Electrochimica Acta. 2023 ;466 143009.[citado 2024 ago. 11 ] Available from: https://doi.org/10.1016/j.electacta.2023.143009
  • Source: Biomass and Bioenergy. Unidade: EESC

    Subjects: BIOCOMBUSTÍVEIS, BAGAÇOS, CANA-DE-AÇÚCAR, ENGENHARIA HIDRÁULICA

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      SOARES, Laís Américo et al. Valorization of sugarcane bagasse through biofuel and value-added soluble metabolites production: optimization of alkaline hydrothermal pretreatment. Biomass and Bioenergy, p. 1-7, 2022Tradução . . Disponível em: https://doi.org/10.1016/j.biombioe.2022.106564. Acesso em: 11 ago. 2024.
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      Soares, L. A., Solano, M. G., Lindeboom, R. E. F., van Lier, J. B., Silva, E. L., & Varesche, M. B. A. (2022). Valorization of sugarcane bagasse through biofuel and value-added soluble metabolites production: optimization of alkaline hydrothermal pretreatment. Biomass and Bioenergy, 1-7. doi:10.1016/j.biombioe.2022.106564
    • NLM

      Soares LA, Solano MG, Lindeboom REF, van Lier JB, Silva EL, Varesche MBA. Valorization of sugarcane bagasse through biofuel and value-added soluble metabolites production: optimization of alkaline hydrothermal pretreatment [Internet]. Biomass and Bioenergy. 2022 ; 1-7.[citado 2024 ago. 11 ] Available from: https://doi.org/10.1016/j.biombioe.2022.106564
    • Vancouver

      Soares LA, Solano MG, Lindeboom REF, van Lier JB, Silva EL, Varesche MBA. Valorization of sugarcane bagasse through biofuel and value-added soluble metabolites production: optimization of alkaline hydrothermal pretreatment [Internet]. Biomass and Bioenergy. 2022 ; 1-7.[citado 2024 ago. 11 ] Available from: https://doi.org/10.1016/j.biombioe.2022.106564
  • Source: Applied Microbiology and Biotechnology. Unidade: IFSC

    Subjects: BIOTECNOLOGIA, BIOMASSA, ENZIMAS, CRISTALOGRAFIA, BIOCOMBUSTÍVEIS

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      GONÇALVES, Thiago Augusto et al. Applying biochemical and structural characterization of hydroxycinnamate catabolic enzymes from soil metagenome for lignin valorization strategies. Applied Microbiology and Biotechnology, v. 106, n. 7, p. 2503-2516, 2022Tradução . . Disponível em: https://doi.org/10.1007/s00253-022-11885-3. Acesso em: 11 ago. 2024.
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      Gonçalves, T. A., Sodré, V., Silva, S. N. da, Vilela, N., Tomazetto, G., Araujo, J. N., et al. (2022). Applying biochemical and structural characterization of hydroxycinnamate catabolic enzymes from soil metagenome for lignin valorization strategies. Applied Microbiology and Biotechnology, 106( 7), 2503-2516. doi:10.1007/s00253-022-11885-3
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      Gonçalves TA, Sodré V, Silva SN da, Vilela N, Tomazetto G, Araujo JN, Muniz JRC, Fill TP, Damasio A, Garcia W, Squina FM. Applying biochemical and structural characterization of hydroxycinnamate catabolic enzymes from soil metagenome for lignin valorization strategies [Internet]. Applied Microbiology and Biotechnology. 2022 ; 106( 7): 2503-2516.[citado 2024 ago. 11 ] Available from: https://doi.org/10.1007/s00253-022-11885-3
    • Vancouver

      Gonçalves TA, Sodré V, Silva SN da, Vilela N, Tomazetto G, Araujo JN, Muniz JRC, Fill TP, Damasio A, Garcia W, Squina FM. Applying biochemical and structural characterization of hydroxycinnamate catabolic enzymes from soil metagenome for lignin valorization strategies [Internet]. Applied Microbiology and Biotechnology. 2022 ; 106( 7): 2503-2516.[citado 2024 ago. 11 ] Available from: https://doi.org/10.1007/s00253-022-11885-3
  • Source: Journal of Magnetic Resonance. Unidade: IQSC

    Subjects: AGRICULTURA, ALIMENTOS, BIOCOMBUSTÍVEIS, FRUTAS, RESSONÂNCIA MAGNÉTICA NUCLEAR

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      COLNAGO, Luiz Alberto et al. Low field, time domain NMR in the agriculture and agrifood sector: An overview of applications in plants, foods and biofuels. Journal of Magnetic Resonance, v. fe 2021, p. 106899, 2021Tradução . . Disponível em: https://doi.org/10.1016/j.jmr.2020.106899. Acesso em: 11 ago. 2024.
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      Colnago, L. A., Wiesman, Z., Pages, G., Musse, M., Monaretto, T., Windt, C. W., & Rondeau-Mouro, C. (2021). Low field, time domain NMR in the agriculture and agrifood sector: An overview of applications in plants, foods and biofuels. Journal of Magnetic Resonance, fe 2021, 106899. doi:10.1016/j.jmr.2020.106899
    • NLM

      Colnago LA, Wiesman Z, Pages G, Musse M, Monaretto T, Windt CW, Rondeau-Mouro C. Low field, time domain NMR in the agriculture and agrifood sector: An overview of applications in plants, foods and biofuels [Internet]. Journal of Magnetic Resonance. 2021 ; fe 2021 106899.[citado 2024 ago. 11 ] Available from: https://doi.org/10.1016/j.jmr.2020.106899
    • Vancouver

      Colnago LA, Wiesman Z, Pages G, Musse M, Monaretto T, Windt CW, Rondeau-Mouro C. Low field, time domain NMR in the agriculture and agrifood sector: An overview of applications in plants, foods and biofuels [Internet]. Journal of Magnetic Resonance. 2021 ; fe 2021 106899.[citado 2024 ago. 11 ] Available from: https://doi.org/10.1016/j.jmr.2020.106899
  • Source: Biomass and Bioenergy. Unidade: EESC

    Subjects: ENGENHARIA HIDRÁULICA, BAGAÇOS, CANA-DE-AÇÚCAR, BIOCOMBUSTÍVEIS, CELULOSE

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      BRAGA, Juliana Kawanishi et al. Metals addition for enhanced hydrogen, acetic and butyric acids production from cellulosic substrates by Clostridium butyricum. Biomass and Bioenergy, 2020Tradução . . Disponível em: https://doi.org/10.1016/j.biombioe.2020.105679. Acesso em: 11 ago. 2024.
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      Braga, J. K., Stancari, R. A., Motteran, F., Malavazi, I., & Varesche, M. B. A. (2020). Metals addition for enhanced hydrogen, acetic and butyric acids production from cellulosic substrates by Clostridium butyricum. Biomass and Bioenergy. doi:10.1016/j.biombioe.2020.105679
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      Braga JK, Stancari RA, Motteran F, Malavazi I, Varesche MBA. Metals addition for enhanced hydrogen, acetic and butyric acids production from cellulosic substrates by Clostridium butyricum [Internet]. Biomass and Bioenergy. 2020 ;[citado 2024 ago. 11 ] Available from: https://doi.org/10.1016/j.biombioe.2020.105679
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      Braga JK, Stancari RA, Motteran F, Malavazi I, Varesche MBA. Metals addition for enhanced hydrogen, acetic and butyric acids production from cellulosic substrates by Clostridium butyricum [Internet]. Biomass and Bioenergy. 2020 ;[citado 2024 ago. 11 ] Available from: https://doi.org/10.1016/j.biombioe.2020.105679
  • Source: Chemical Communications. Unidades: IQ, IFSC

    Subjects: BIOCOMBUSTÍVEIS, CARBONO

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      SEMPIONATTO, Juliane Renata et al. Enzymatic biofuel cells based on protective hydrophobic carbon paste electrodes: towards epidermal bioenergy harvesting in the acidic sweat environment. Chemical Communications, v. 56, n. 13, p. 2004-2007, 2020Tradução . . Disponível em: https://doi.org/10.1039/c9cc09533k. Acesso em: 11 ago. 2024.
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      Sempionatto, J. R., Raymundo-Pereira, P. A., Azeredo, N. F. B., Silva, A. N. D. L. e, Angnes, L., & Wang, J. (2020). Enzymatic biofuel cells based on protective hydrophobic carbon paste electrodes: towards epidermal bioenergy harvesting in the acidic sweat environment. Chemical Communications, 56( 13), 2004-2007. doi:10.1039/c9cc09533k
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      Sempionatto JR, Raymundo-Pereira PA, Azeredo NFB, Silva ANDL e, Angnes L, Wang J. Enzymatic biofuel cells based on protective hydrophobic carbon paste electrodes: towards epidermal bioenergy harvesting in the acidic sweat environment [Internet]. Chemical Communications. 2020 ; 56( 13): 2004-2007.[citado 2024 ago. 11 ] Available from: https://doi.org/10.1039/c9cc09533k
    • Vancouver

      Sempionatto JR, Raymundo-Pereira PA, Azeredo NFB, Silva ANDL e, Angnes L, Wang J. Enzymatic biofuel cells based on protective hydrophobic carbon paste electrodes: towards epidermal bioenergy harvesting in the acidic sweat environment [Internet]. Chemical Communications. 2020 ; 56( 13): 2004-2007.[citado 2024 ago. 11 ] Available from: https://doi.org/10.1039/c9cc09533k
  • Source: Fuel. Unidade: IFSC

    Subjects: LENTES, BIODIESEL, ESPECTROSCOPIA, BIOCOMBUSTÍVEIS, ÓLEO DIESEL

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      DEUS, W. B. et al. Monitoring of the ester production by near-near infrared thermal lens spectroscopy. Fuel, v. 253, p. 1090-1096, 2019Tradução . . Disponível em: https://doi.org/10.1016/j.fuel.2019.05.097. Acesso em: 11 ago. 2024.
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      Deus, W. B., Ventura, M., Silva, J. R., Andrade, L. H. C., Catunda, T., & Lima, S. M. (2019). Monitoring of the ester production by near-near infrared thermal lens spectroscopy. Fuel, 253, 1090-1096. doi:10.1016/j.fuel.2019.05.097
    • NLM

      Deus WB, Ventura M, Silva JR, Andrade LHC, Catunda T, Lima SM. Monitoring of the ester production by near-near infrared thermal lens spectroscopy [Internet]. Fuel. 2019 ; 253 1090-1096.[citado 2024 ago. 11 ] Available from: https://doi.org/10.1016/j.fuel.2019.05.097
    • Vancouver

      Deus WB, Ventura M, Silva JR, Andrade LHC, Catunda T, Lima SM. Monitoring of the ester production by near-near infrared thermal lens spectroscopy [Internet]. Fuel. 2019 ; 253 1090-1096.[citado 2024 ago. 11 ] Available from: https://doi.org/10.1016/j.fuel.2019.05.097
  • Source: Polymers. Unidade: IQSC

    Subjects: POLÍMEROS (QUÍMICA ORGÂNICA), BIOCOMBUSTÍVEIS

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      NARDELI, Jéssica Verger et al. Preparation of polyurethane monolithic resins and modification with a condensed tannin-yielding self-healing property. Polymers, v. 11, n. 11, 2019Tradução . . Disponível em: https://doi.org/10.3390/polym11111890. Acesso em: 11 ago. 2024.
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      Nardeli, J. V., Fugivara, C. S., Pinto, E. R. P., Polito, W. L., Messaddeq, Y., Ribeiro, S. J. L., & Benedetti, A. V. (2019). Preparation of polyurethane monolithic resins and modification with a condensed tannin-yielding self-healing property. Polymers, 11( 11). doi:10.3390/polym11111890
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      Nardeli JV, Fugivara CS, Pinto ERP, Polito WL, Messaddeq Y, Ribeiro SJL, Benedetti AV. Preparation of polyurethane monolithic resins and modification with a condensed tannin-yielding self-healing property [Internet]. Polymers. 2019 ; 11( 11):[citado 2024 ago. 11 ] Available from: https://doi.org/10.3390/polym11111890
    • Vancouver

      Nardeli JV, Fugivara CS, Pinto ERP, Polito WL, Messaddeq Y, Ribeiro SJL, Benedetti AV. Preparation of polyurethane monolithic resins and modification with a condensed tannin-yielding self-healing property [Internet]. Polymers. 2019 ; 11( 11):[citado 2024 ago. 11 ] Available from: https://doi.org/10.3390/polym11111890
  • Source: Process Biochemistry. Unidade: IFSC

    Subjects: ENZIMAS, BIOCOMBUSTÍVEIS, ETANOL

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      HANS, Meenu et al. A review on bioprocessing of paddy straw to ethanol using simultaneous saccharification and fermentation. Process Biochemistry, v. 85, p. 125-134, 2019Tradução . . Disponível em: https://doi.org/10.1016/j.procbio.2019.06.019. Acesso em: 11 ago. 2024.
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      Hans, M., Kumar, S., Chandel, A. K., & Polikarpov, I. (2019). A review on bioprocessing of paddy straw to ethanol using simultaneous saccharification and fermentation. Process Biochemistry, 85, 125-134. doi:10.1016/j.procbio.2019.06.019
    • NLM

      Hans M, Kumar S, Chandel AK, Polikarpov I. A review on bioprocessing of paddy straw to ethanol using simultaneous saccharification and fermentation [Internet]. Process Biochemistry. 2019 ; 85 125-134.[citado 2024 ago. 11 ] Available from: https://doi.org/10.1016/j.procbio.2019.06.019
    • Vancouver

      Hans M, Kumar S, Chandel AK, Polikarpov I. A review on bioprocessing of paddy straw to ethanol using simultaneous saccharification and fermentation [Internet]. Process Biochemistry. 2019 ; 85 125-134.[citado 2024 ago. 11 ] Available from: https://doi.org/10.1016/j.procbio.2019.06.019
  • Source: Journal of Applied Microbiology. Unidade: IFSC

    Subjects: POLÍMEROS (MATERIAIS), BIOCOMBUSTÍVEIS

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      VIEIRA, F. R. et al. Exploring oyster mushroom (Pleurotus ostreatus) substrate preparation by varying phase I composting time: changes in bacterial communities and physicochemical composition of biomass impacting mushroom yields. Journal of Applied Microbiology, v. 126, n. 3, p. 931-944, 2019Tradução . . Disponível em: https://doi.org/10.1111/jam.14168. Acesso em: 11 ago. 2024.
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      Vieira, F. R., Pecchia, J. A., Segato, F., & Polikarpov, I. (2019). Exploring oyster mushroom (Pleurotus ostreatus) substrate preparation by varying phase I composting time: changes in bacterial communities and physicochemical composition of biomass impacting mushroom yields. Journal of Applied Microbiology, 126( 3), 931-944. doi:10.1111/jam.14168
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      Vieira FR, Pecchia JA, Segato F, Polikarpov I. Exploring oyster mushroom (Pleurotus ostreatus) substrate preparation by varying phase I composting time: changes in bacterial communities and physicochemical composition of biomass impacting mushroom yields [Internet]. Journal of Applied Microbiology. 2019 ; 126( 3): 931-944.[citado 2024 ago. 11 ] Available from: https://doi.org/10.1111/jam.14168
    • Vancouver

      Vieira FR, Pecchia JA, Segato F, Polikarpov I. Exploring oyster mushroom (Pleurotus ostreatus) substrate preparation by varying phase I composting time: changes in bacterial communities and physicochemical composition of biomass impacting mushroom yields [Internet]. Journal of Applied Microbiology. 2019 ; 126( 3): 931-944.[citado 2024 ago. 11 ] Available from: https://doi.org/10.1111/jam.14168
  • Source: Fuel. Unidade: IQSC

    Subjects: QUÍMICA, BIOCOMBUSTÍVEIS, ETANOL, METANOL

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      KOCK, Flávio Vinicius Crizóstomo et al. Time-domain NMR: A novel analytical method to quantify adulteration of ethanol fuel with methanol. Fuel, v. 258, p. 116158 , 2019Tradução . . Disponível em: https://doi.org/10.1016/j.fuel.2019.116158. Acesso em: 11 ago. 2024.
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      Kock, F. V. C., Rocha, T. C., Araújo, G. M., Simões, F. R., Colnago, L. A., & Barbosa, L. L. (2019). Time-domain NMR: A novel analytical method to quantify adulteration of ethanol fuel with methanol. Fuel, 258, 116158 . doi:10.1016/j.fuel.2019.116158
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      Kock FVC, Rocha TC, Araújo GM, Simões FR, Colnago LA, Barbosa LL. Time-domain NMR: A novel analytical method to quantify adulteration of ethanol fuel with methanol [Internet]. Fuel. 2019 ; 258 116158 .[citado 2024 ago. 11 ] Available from: https://doi.org/10.1016/j.fuel.2019.116158
    • Vancouver

      Kock FVC, Rocha TC, Araújo GM, Simões FR, Colnago LA, Barbosa LL. Time-domain NMR: A novel analytical method to quantify adulteration of ethanol fuel with methanol [Internet]. Fuel. 2019 ; 258 116158 .[citado 2024 ago. 11 ] Available from: https://doi.org/10.1016/j.fuel.2019.116158
  • Source: Sustainable Energy and Fuels. Unidade: EESC

    Subjects: HIDROGÊNIO, BIOCOMBUSTÍVEIS, ENGENHARIA HIDRÁULICA

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      BRAGA, Juliana Kawanishi et al. Bacterial and archaeal community structure involved in biofuels production using hydrothermal- and enzymatic-pretreated sugarcane bagasse for an improvement in hydrogen and methane production. Sustainable Energy and Fuels, v. 12, p. 1-17, 2018Tradução . . Disponível em: https://doi.org/10.1039/10.1039/c8se00312b. Acesso em: 11 ago. 2024.
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      Braga, J. K., Motteran, F., Sakamoto, I. K., & Varesche, M. B. A. (2018). Bacterial and archaeal community structure involved in biofuels production using hydrothermal- and enzymatic-pretreated sugarcane bagasse for an improvement in hydrogen and methane production. Sustainable Energy and Fuels, 12, 1-17. doi:10.1039/10.1039/c8se00312b
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      Braga JK, Motteran F, Sakamoto IK, Varesche MBA. Bacterial and archaeal community structure involved in biofuels production using hydrothermal- and enzymatic-pretreated sugarcane bagasse for an improvement in hydrogen and methane production [Internet]. Sustainable Energy and Fuels. 2018 ; 12 1-17.[citado 2024 ago. 11 ] Available from: https://doi.org/10.1039/10.1039/c8se00312b
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      Braga JK, Motteran F, Sakamoto IK, Varesche MBA. Bacterial and archaeal community structure involved in biofuels production using hydrothermal- and enzymatic-pretreated sugarcane bagasse for an improvement in hydrogen and methane production [Internet]. Sustainable Energy and Fuels. 2018 ; 12 1-17.[citado 2024 ago. 11 ] Available from: https://doi.org/10.1039/10.1039/c8se00312b
  • Source: Fuel. Unidade: IFSC

    Subjects: LENTES, BIODIESEL, ESPECTROSCOPIA, BIOCOMBUSTÍVEIS, ÓLEO DIESEL

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      VENTURA, M. et al. Determination of the biodiesel content in diesel/biodiesel blends by using the near-near-infrared thermal lens spectroscopy. Fuel, v. 212, n. ja 2018, p. 309-314, 2018Tradução . . Disponível em: https://doi.org/10.1016/j.fuel.2017.10.069. Acesso em: 11 ago. 2024.
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      Ventura, M., Deus, W. B., Silva, J. R., Andrade, L. H. C., Catunda, T., & Lima, S. M. (2018). Determination of the biodiesel content in diesel/biodiesel blends by using the near-near-infrared thermal lens spectroscopy. Fuel, 212( ja 2018), 309-314. doi:10.1016/j.fuel.2017.10.069
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      Ventura M, Deus WB, Silva JR, Andrade LHC, Catunda T, Lima SM. Determination of the biodiesel content in diesel/biodiesel blends by using the near-near-infrared thermal lens spectroscopy [Internet]. Fuel. 2018 ; 212( ja 2018): 309-314.[citado 2024 ago. 11 ] Available from: https://doi.org/10.1016/j.fuel.2017.10.069
    • Vancouver

      Ventura M, Deus WB, Silva JR, Andrade LHC, Catunda T, Lima SM. Determination of the biodiesel content in diesel/biodiesel blends by using the near-near-infrared thermal lens spectroscopy [Internet]. Fuel. 2018 ; 212( ja 2018): 309-314.[citado 2024 ago. 11 ] Available from: https://doi.org/10.1016/j.fuel.2017.10.069
  • Source: FEBS Journal. Unidade: IFSC

    Subjects: ENZIMAS, BIOMASSA, BIOCOMBUSTÍVEIS

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      KADOWAKI, Marco Antonio et al. Biochemical and structural insights into a thermostable cellobiohydrolase from Myceliophthora thermophila. FEBS Journal, v. 285, n. 3, p. 559-579, 2018Tradução . . Disponível em: https://doi.org/10.1111/febs.14356. Acesso em: 11 ago. 2024.
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      Kadowaki, M. A., Higasi, P., Godoy, M. O., Prade, R. A., & Polikarpov, I. (2018). Biochemical and structural insights into a thermostable cellobiohydrolase from Myceliophthora thermophila. FEBS Journal, 285( 3), 559-579. doi:10.1111/febs.14356
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      Kadowaki MA, Higasi P, Godoy MO, Prade RA, Polikarpov I. Biochemical and structural insights into a thermostable cellobiohydrolase from Myceliophthora thermophila [Internet]. FEBS Journal. 2018 ; 285( 3): 559-579.[citado 2024 ago. 11 ] Available from: https://doi.org/10.1111/febs.14356
    • Vancouver

      Kadowaki MA, Higasi P, Godoy MO, Prade RA, Polikarpov I. Biochemical and structural insights into a thermostable cellobiohydrolase from Myceliophthora thermophila [Internet]. FEBS Journal. 2018 ; 285( 3): 559-579.[citado 2024 ago. 11 ] Available from: https://doi.org/10.1111/febs.14356
  • Source: Fuel. Unidade: IFSC

    Subjects: POLÍMEROS (MATERIAIS), BIOCOMBUSTÍVEIS, RESSONÂNCIA MAGNÉTICA NUCLEAR

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      SILVA, Lorena M. A. et al. NMR investigation of commercial carbon black filled vulcanized natural rubber exposed to petrodiesel/biodiesel mixtures. Fuel, v. 186, p. 50-57, 2016Tradução . . Disponível em: https://doi.org/10.1016/j.fuel.2016.08.060. Acesso em: 11 ago. 2024.
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      Silva, L. M. A., Andrade, F. D., Alves Filho, E. G., Monteiro, M. R., Azevêdo, E. R. de, & Venâncio, T. (2016). NMR investigation of commercial carbon black filled vulcanized natural rubber exposed to petrodiesel/biodiesel mixtures. Fuel, 186, 50-57. doi:10.1016/j.fuel.2016.08.060
    • NLM

      Silva LMA, Andrade FD, Alves Filho EG, Monteiro MR, Azevêdo ER de, Venâncio T. NMR investigation of commercial carbon black filled vulcanized natural rubber exposed to petrodiesel/biodiesel mixtures [Internet]. Fuel. 2016 ; 186 50-57.[citado 2024 ago. 11 ] Available from: https://doi.org/10.1016/j.fuel.2016.08.060
    • Vancouver

      Silva LMA, Andrade FD, Alves Filho EG, Monteiro MR, Azevêdo ER de, Venâncio T. NMR investigation of commercial carbon black filled vulcanized natural rubber exposed to petrodiesel/biodiesel mixtures [Internet]. Fuel. 2016 ; 186 50-57.[citado 2024 ago. 11 ] Available from: https://doi.org/10.1016/j.fuel.2016.08.060
  • Source: ChemCatChem. Unidade: IQSC

    Assunto: BIOCOMBUSTÍVEIS

    PrivadoAcesso à fonteDOIHow to cite
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    • ABNT

      FARO, Massimiliano Lo et al. Nickel-iron/gadolinium-doped ceria (CGO) composite electrocatalyst as a protective layer for a solid oxide fuel cell anode fed with biofuels. ChemCatChem, v. 8, p. 648-655, 2016Tradução . . Disponível em: https://doi.org/10.1002/cctc.20151090. Acesso em: 11 ago. 2024.
    • APA

      Faro, M. L., Trocino, S., Zignani, S. C., Italiano, C., Reis, R. M., Ticianelli, E. A., & Arico, A. S. (2016). Nickel-iron/gadolinium-doped ceria (CGO) composite electrocatalyst as a protective layer for a solid oxide fuel cell anode fed with biofuels. ChemCatChem, 8, 648-655. doi:10.1002/cctc.20151090
    • NLM

      Faro ML, Trocino S, Zignani SC, Italiano C, Reis RM, Ticianelli EA, Arico AS. Nickel-iron/gadolinium-doped ceria (CGO) composite electrocatalyst as a protective layer for a solid oxide fuel cell anode fed with biofuels [Internet]. ChemCatChem. 2016 ; 8 648-655.[citado 2024 ago. 11 ] Available from: https://doi.org/10.1002/cctc.20151090
    • Vancouver

      Faro ML, Trocino S, Zignani SC, Italiano C, Reis RM, Ticianelli EA, Arico AS. Nickel-iron/gadolinium-doped ceria (CGO) composite electrocatalyst as a protective layer for a solid oxide fuel cell anode fed with biofuels [Internet]. ChemCatChem. 2016 ; 8 648-655.[citado 2024 ago. 11 ] Available from: https://doi.org/10.1002/cctc.20151090
  • Source: Scientific Reports. Unidade: IFSC

    Subjects: BIOTECNOLOGIA, BIOCOMBUSTÍVEIS, CANA-DE-AÇÚCAR

    Acesso à fonteDOIHow to cite
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    • ABNT

      MELLO, Bruno L. et al. Nutrient availability shapes the microbial community structure in sugarcane bagasse compost-derived consortia. Scientific Reports, v. 6, p. 38781-1-38781-8 + supplementary information, 2016Tradução . . Disponível em: https://doi.org/10.1038/srep38781. Acesso em: 11 ago. 2024.
    • APA

      Mello, B. L., Alessi, A. M., McQueen-Mason, S., Bruce, N. C., & Polikarpov, I. (2016). Nutrient availability shapes the microbial community structure in sugarcane bagasse compost-derived consortia. Scientific Reports, 6, 38781-1-38781-8 + supplementary information. doi:10.1038/srep38781
    • NLM

      Mello BL, Alessi AM, McQueen-Mason S, Bruce NC, Polikarpov I. Nutrient availability shapes the microbial community structure in sugarcane bagasse compost-derived consortia [Internet]. Scientific Reports. 2016 ; 6 38781-1-38781-8 + supplementary information.[citado 2024 ago. 11 ] Available from: https://doi.org/10.1038/srep38781
    • Vancouver

      Mello BL, Alessi AM, McQueen-Mason S, Bruce NC, Polikarpov I. Nutrient availability shapes the microbial community structure in sugarcane bagasse compost-derived consortia [Internet]. Scientific Reports. 2016 ; 6 38781-1-38781-8 + supplementary information.[citado 2024 ago. 11 ] Available from: https://doi.org/10.1038/srep38781

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