Filtros : "Journal of Applied Polymer Science" "2015" Limpar

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  • Fonte: Journal of Applied Polymer Science. Unidade: IQ

    Assuntos: BIOPOLÍMEROS, POLISSACARÍDEOS

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    • ABNT

      PETRI, Denise Freitas Siqueira. Xanthan gum: a versatile biopolymer for biomedical and technological applications. Journal of Applied Polymer Science, v. 132, p. 1-13 art. 42035, 2015Tradução . . Disponível em: https://doi.org/10.1002/app.42035. Acesso em: 13 nov. 2025.
    • APA

      Petri, D. F. S. (2015). Xanthan gum: a versatile biopolymer for biomedical and technological applications. Journal of Applied Polymer Science, 132, 1-13 art. 42035. doi:10.1002/app.42035
    • NLM

      Petri DFS. Xanthan gum: a versatile biopolymer for biomedical and technological applications [Internet]. Journal of Applied Polymer Science. 2015 ; 132 1-13 art. 42035.[citado 2025 nov. 13 ] Available from: https://doi.org/10.1002/app.42035
    • Vancouver

      Petri DFS. Xanthan gum: a versatile biopolymer for biomedical and technological applications [Internet]. Journal of Applied Polymer Science. 2015 ; 132 1-13 art. 42035.[citado 2025 nov. 13 ] Available from: https://doi.org/10.1002/app.42035
  • Fonte: Journal of Applied Polymer Science. Unidade: IFSC

    Assuntos: NANOTECNOLOGIA, POLÍMEROS (MATERIAIS)

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      CARDOSO, Marcos Roberto et al. Highly hydrophobic hierarchical nanomicro roughness polymer surface created by stamping and laser micromachining. Journal of Applied Polymer Science, v. 132, n. 24, p. 42082-1-42082-4, 2015Tradução . . Disponível em: https://doi.org/10.1002/app.42082. Acesso em: 13 nov. 2025.
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      Cardoso, M. R., Martins, R. J., Dev, A., Voss, T., & Mendonça, C. R. (2015). Highly hydrophobic hierarchical nanomicro roughness polymer surface created by stamping and laser micromachining. Journal of Applied Polymer Science, 132( 24), 42082-1-42082-4. doi:10.1002/app.42082
    • NLM

      Cardoso MR, Martins RJ, Dev A, Voss T, Mendonça CR. Highly hydrophobic hierarchical nanomicro roughness polymer surface created by stamping and laser micromachining [Internet]. Journal of Applied Polymer Science. 2015 ; 132( 24): 42082-1-42082-4.[citado 2025 nov. 13 ] Available from: https://doi.org/10.1002/app.42082
    • Vancouver

      Cardoso MR, Martins RJ, Dev A, Voss T, Mendonça CR. Highly hydrophobic hierarchical nanomicro roughness polymer surface created by stamping and laser micromachining [Internet]. Journal of Applied Polymer Science. 2015 ; 132( 24): 42082-1-42082-4.[citado 2025 nov. 13 ] Available from: https://doi.org/10.1002/app.42082
  • Fonte: Journal of Applied Polymer Science. Unidade: ICB

    Assuntos: MICROBIOLOGIA, TERMOPLÁSTICOS, POLIMEROS (QUIMICA ORGÂNICA), ESCHERICHIA COLI, STAPHYLOCOCCUS

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      OLIANI, Washington Luiz et al. Development of a nanocomposite of polypropylene with biocide action from silver nanoparticles. Journal of Applied Polymer Science, v. 132, n. 29, p. 1-7, 2015Tradução . . Disponível em: https://doi.org/10.1002/app.42218. Acesso em: 13 nov. 2025.
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      Oliani, W. L., Parra, D. F., Lima, L. F. C. P., Lincopan, N., & Lugao, A. B. (2015). Development of a nanocomposite of polypropylene with biocide action from silver nanoparticles. Journal of Applied Polymer Science, 132( 29), 1-7. doi:10.1002/app.42218
    • NLM

      Oliani WL, Parra DF, Lima LFCP, Lincopan N, Lugao AB. Development of a nanocomposite of polypropylene with biocide action from silver nanoparticles [Internet]. Journal of Applied Polymer Science. 2015 ; 132( 29): 1-7.[citado 2025 nov. 13 ] Available from: https://doi.org/10.1002/app.42218
    • Vancouver

      Oliani WL, Parra DF, Lima LFCP, Lincopan N, Lugao AB. Development of a nanocomposite of polypropylene with biocide action from silver nanoparticles [Internet]. Journal of Applied Polymer Science. 2015 ; 132( 29): 1-7.[citado 2025 nov. 13 ] Available from: https://doi.org/10.1002/app.42218
  • Fonte: Journal of Applied Polymer Science. Unidades: FM, IQSC, EP

    Assuntos: QUÍMICA ANALÍTICA, METABOLISMO ENERGÉTICO, REVASCULARIZAÇÃO MIOCÁRDICA, BIOFILMES, BIOMATERIAIS

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      AGUIAR, Helena de Fazio et al. Compatibility of cassava starch films as nitric oxide carrier for potential medical device. Journal of Applied Polymer Science, v. 132, n. 2, p. 41382(1 of 10), 2015Tradução . . Disponível em: https://doi.org/10.1002/app.41382. Acesso em: 13 nov. 2025.
    • APA

      Aguiar, H. de F., Roveda Junior, A. C., Piva, R. de J., Onoda, K. A., Miyakawa, A. A., Krieger, J. E., et al. (2015). Compatibility of cassava starch films as nitric oxide carrier for potential medical device. Journal of Applied Polymer Science, 132( 2), 41382(1 of 10). doi:10.1002/app.41382
    • NLM

      Aguiar H de F, Roveda Junior AC, Piva R de J, Onoda KA, Miyakawa AA, Krieger JE, Franco DW, Tadini CC. Compatibility of cassava starch films as nitric oxide carrier for potential medical device [Internet]. Journal of Applied Polymer Science. 2015 ; 132( 2): 41382(1 of 10).[citado 2025 nov. 13 ] Available from: https://doi.org/10.1002/app.41382
    • Vancouver

      Aguiar H de F, Roveda Junior AC, Piva R de J, Onoda KA, Miyakawa AA, Krieger JE, Franco DW, Tadini CC. Compatibility of cassava starch films as nitric oxide carrier for potential medical device [Internet]. Journal of Applied Polymer Science. 2015 ; 132( 2): 41382(1 of 10).[citado 2025 nov. 13 ] Available from: https://doi.org/10.1002/app.41382
  • Fonte: Journal of Applied Polymer Science. Unidade: IQSC

    Assunto: POLÍMEROS (QUÍMICA ORGÂNICA)

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      RODRIGUES, Bruno Vinícius Manzolli et al. Ultrathin and nanofibers via room temperature electrospinning from trifluoroacetic acid solutions of untreated lignocellulosic sisal fiber or sisal pulp. Journal of Applied Polymer Science, v. 132, n. 16, p. 41826(1 of 8), 2015Tradução . . Disponível em: https://doi.org/10.1002/app.41826. Acesso em: 13 nov. 2025.
    • APA

      Rodrigues, B. V. M., Ramires, E. C., Santos, R. P. de O., & Frollini, E. (2015). Ultrathin and nanofibers via room temperature electrospinning from trifluoroacetic acid solutions of untreated lignocellulosic sisal fiber or sisal pulp. Journal of Applied Polymer Science, 132( 16), 41826(1 of 8). doi:10.1002/app.41826
    • NLM

      Rodrigues BVM, Ramires EC, Santos RP de O, Frollini E. Ultrathin and nanofibers via room temperature electrospinning from trifluoroacetic acid solutions of untreated lignocellulosic sisal fiber or sisal pulp [Internet]. Journal of Applied Polymer Science. 2015 ; 132( 16): 41826(1 of 8).[citado 2025 nov. 13 ] Available from: https://doi.org/10.1002/app.41826
    • Vancouver

      Rodrigues BVM, Ramires EC, Santos RP de O, Frollini E. Ultrathin and nanofibers via room temperature electrospinning from trifluoroacetic acid solutions of untreated lignocellulosic sisal fiber or sisal pulp [Internet]. Journal of Applied Polymer Science. 2015 ; 132( 16): 41826(1 of 8).[citado 2025 nov. 13 ] Available from: https://doi.org/10.1002/app.41826
  • Fonte: Journal of Applied Polymer Science. Unidade: IFSC

    Assuntos: LUMINESCÊNCIA, POLÍMEROS (MATERIAIS)

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      RODRIGUES, Paula C. et al. Synthesis of a PPV-fluorene derivative: applications in luminescent devices. Journal of Applied Polymer Science, v. 132, n. 38, p. 42579-1-42579-8, 2015Tradução . . Disponível em: https://doi.org/10.1002/app.42579. Acesso em: 13 nov. 2025.
    • APA

      Rodrigues, P. C., Fontes, B. D., Torres, B. B. M., Sousa, W. S., Faria, G. C., Balogh, D. T., et al. (2015). Synthesis of a PPV-fluorene derivative: applications in luminescent devices. Journal of Applied Polymer Science, 132( 38), 42579-1-42579-8. doi:10.1002/app.42579
    • NLM

      Rodrigues PC, Fontes BD, Torres BBM, Sousa WS, Faria GC, Balogh DT, Faria RM, Akcelrud L. Synthesis of a PPV-fluorene derivative: applications in luminescent devices [Internet]. Journal of Applied Polymer Science. 2015 ; 132( 38): 42579-1-42579-8.[citado 2025 nov. 13 ] Available from: https://doi.org/10.1002/app.42579
    • Vancouver

      Rodrigues PC, Fontes BD, Torres BBM, Sousa WS, Faria GC, Balogh DT, Faria RM, Akcelrud L. Synthesis of a PPV-fluorene derivative: applications in luminescent devices [Internet]. Journal of Applied Polymer Science. 2015 ; 132( 38): 42579-1-42579-8.[citado 2025 nov. 13 ] Available from: https://doi.org/10.1002/app.42579

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