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  • Unidade: IFSC

    Subjects: QUÍMICA ANALÍTICA, MEDICINA NUCLEAR

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      Solid State Nuclear Magnetic Resonance. . Amsterdam: Elsevier. . Acesso em: 28 maio 2024. , 2021
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      Solid State Nuclear Magnetic Resonance. (2021). Solid State Nuclear Magnetic Resonance. Amsterdam: Elsevier.
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      Solid State Nuclear Magnetic Resonance. 2021 ;[citado 2024 maio 28 ]
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      Solid State Nuclear Magnetic Resonance. 2021 ;[citado 2024 maio 28 ]
  • Source: Nanosensors for smart manufacturing. Unidades: IQSC, IFSC

    Subjects: SENSORES BIOMÉDICOS, ELETROQUÍMICA

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      MATERON, Elsa Maria et al. Smart materials for electrochemical flexible nanosensors: advances and applications. Nanosensors for smart manufacturing. Tradução . Amsterdam: Elsevier, 2021. p. 632 . Disponível em: https://doi.org/10.1016/B978-0-12-823358-0.00018-6. Acesso em: 28 maio 2024.
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      Materon, E. M., Gómez, F. R., Joshi, N. K. J., Dalmaschio, C. J., Carrilho, E., & Oliveira Junior, O. N. de. (2021). Smart materials for electrochemical flexible nanosensors: advances and applications. In Nanosensors for smart manufacturing (p. 632 ). Amsterdam: Elsevier. doi:10.1016/B978-0-12-823358-0.00018-6
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      Materon EM, Gómez FR, Joshi NKJ, Dalmaschio CJ, Carrilho E, Oliveira Junior ON de. Smart materials for electrochemical flexible nanosensors: advances and applications [Internet]. In: Nanosensors for smart manufacturing. Amsterdam: Elsevier; 2021. p. 632 .[citado 2024 maio 28 ] Available from: https://doi.org/10.1016/B978-0-12-823358-0.00018-6
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      Materon EM, Gómez FR, Joshi NKJ, Dalmaschio CJ, Carrilho E, Oliveira Junior ON de. Smart materials for electrochemical flexible nanosensors: advances and applications [Internet]. In: Nanosensors for smart manufacturing. Amsterdam: Elsevier; 2021. p. 632 .[citado 2024 maio 28 ] Available from: https://doi.org/10.1016/B978-0-12-823358-0.00018-6
  • Unidade: IFSC

    Subjects: RESSONÂNCIA MAGNÉTICA, ANÁLISE ESPECTRAL

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      Journal of Magnetic Resonance. . Amsterdam: Elsevier. . Acesso em: 28 maio 2024. , 2021
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      Journal of Magnetic Resonance. (2021). Journal of Magnetic Resonance. Amsterdam: Elsevier.
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      Journal of Magnetic Resonance. 2021 ;[citado 2024 maio 28 ]
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      Journal of Magnetic Resonance. 2021 ;[citado 2024 maio 28 ]
  • Source: Nanobatteries and nanogenerators: materials, technologies and applications. Unidade: IFSC

    Subjects: NANOTECNOLOGIA, SENSOR, FILMES FINOS, POLÍMEROS (MATERIAIS)

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      KUMAR, Arvind e JOSHI, Nirav Kumar Jitendrabhai. Self-powered environmental monitoring gas sensors: piezoelectric and triboelectric approaches. Nanobatteries and nanogenerators: materials, technologies and applications. Tradução . Amsterdam: Elsevier, 2021. p. 666 . Disponível em: https://doi.org/10.1016/B978-0-12-821548-7.00018-X. Acesso em: 28 maio 2024.
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      Kumar, A., & Joshi, N. K. J. (2021). Self-powered environmental monitoring gas sensors: piezoelectric and triboelectric approaches. In Nanobatteries and nanogenerators: materials, technologies and applications (p. 666 ). Amsterdam: Elsevier. doi:10.1016/B978-0-12-821548-7.00018-X
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      Kumar A, Joshi NKJ. Self-powered environmental monitoring gas sensors: piezoelectric and triboelectric approaches [Internet]. In: Nanobatteries and nanogenerators: materials, technologies and applications. Amsterdam: Elsevier; 2021. p. 666 .[citado 2024 maio 28 ] Available from: https://doi.org/10.1016/B978-0-12-821548-7.00018-X
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      Kumar A, Joshi NKJ. Self-powered environmental monitoring gas sensors: piezoelectric and triboelectric approaches [Internet]. In: Nanobatteries and nanogenerators: materials, technologies and applications. Amsterdam: Elsevier; 2021. p. 666 .[citado 2024 maio 28 ] Available from: https://doi.org/10.1016/B978-0-12-821548-7.00018-X
  • Source: Metal oxides in nanocomposite-based electrochemical sensors for toxic chemicals. Unidade: IFSC

    Subjects: SENSORES BIOMÉDICOS, ELETROQUÍMICA

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      MATERON, Elsa Maria et al. Electrochemical sensors based on metal oxide-boron nitride nanocomposites in the detection of biomolecules and toxic chemicals. Metal oxides in nanocomposite-based electrochemical sensors for toxic chemicals. Tradução . Amsterdam: Elsevier, 2021. p. 372 . Disponível em: https://doi.org/10.1016/B978-0-12-820727-7.00004-5. Acesso em: 28 maio 2024.
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      Materon, E. M., Joshi, N. K. J., Shimizu, F. M., Faria, R. C., & Oliveira Junior, O. N. de. (2021). Electrochemical sensors based on metal oxide-boron nitride nanocomposites in the detection of biomolecules and toxic chemicals. In Metal oxides in nanocomposite-based electrochemical sensors for toxic chemicals (p. 372 ). Amsterdam: Elsevier. doi:10.1016/B978-0-12-820727-7.00004-5
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      Materon EM, Joshi NKJ, Shimizu FM, Faria RC, Oliveira Junior ON de. Electrochemical sensors based on metal oxide-boron nitride nanocomposites in the detection of biomolecules and toxic chemicals [Internet]. In: Metal oxides in nanocomposite-based electrochemical sensors for toxic chemicals. Amsterdam: Elsevier; 2021. p. 372 .[citado 2024 maio 28 ] Available from: https://doi.org/10.1016/B978-0-12-820727-7.00004-5
    • Vancouver

      Materon EM, Joshi NKJ, Shimizu FM, Faria RC, Oliveira Junior ON de. Electrochemical sensors based on metal oxide-boron nitride nanocomposites in the detection of biomolecules and toxic chemicals [Internet]. In: Metal oxides in nanocomposite-based electrochemical sensors for toxic chemicals. Amsterdam: Elsevier; 2021. p. 372 .[citado 2024 maio 28 ] Available from: https://doi.org/10.1016/B978-0-12-820727-7.00004-5
  • Source: Abstract. Conference titles: International Colloids Conference - COLL. Unidade: IFSC

    Subjects: QUITOSANA, FOSFOLIPÍDEOS, FÍSICO-QUÍMICA ORGÂNICA, POLÍMEROS (MATERIAIS)

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      PEDRO, Rafael de Oliveira e MIRANDA, Paulo Barbeitas. Interaction of self-assembled chitosan nanoparticles and phospholipid membranes at air-water interface. 2020, Anais.. Philadelphia: Elsevier, 2020. . Acesso em: 28 maio 2024.
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      Pedro, R. de O., & Miranda, P. B. (2020). Interaction of self-assembled chitosan nanoparticles and phospholipid membranes at air-water interface. In Abstract. Philadelphia: Elsevier.
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      Pedro R de O, Miranda PB. Interaction of self-assembled chitosan nanoparticles and phospholipid membranes at air-water interface. Abstract. 2020 ;[citado 2024 maio 28 ]
    • Vancouver

      Pedro R de O, Miranda PB. Interaction of self-assembled chitosan nanoparticles and phospholipid membranes at air-water interface. Abstract. 2020 ;[citado 2024 maio 28 ]
  • Unidade: IFSC

    Subjects: QUÍMICA ANALÍTICA, MEDICINA NUCLEAR

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      Solid State Nuclear Magnetic Resonance. . Amsterdam: Elsevier. . Acesso em: 28 maio 2024. , 2020
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      Solid State Nuclear Magnetic Resonance. (2020). Solid State Nuclear Magnetic Resonance. Amsterdam: Elsevier.
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      Solid State Nuclear Magnetic Resonance. 2020 ;[citado 2024 maio 28 ]
    • Vancouver

      Solid State Nuclear Magnetic Resonance. 2020 ;[citado 2024 maio 28 ]
  • Source: Handbook on Miniaturization in Analytical Chemistry: Application of Nanotechnology. Unidade: IFSC

    Subjects: NANOTECNOLOGIA, SENSOR, FILMES FINOS, POLÍMEROS (MATERIAIS)

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      NICOLICHE, Caroline Y. Nakiri e OLIVEIRA JUNIOR, Osvaldo Novais de e LIMA, Renato S. Multidimensional sensors: classification, nanoprobes, and microfluidics. Handbook on Miniaturization in Analytical Chemistry: Application of Nanotechnology. Tradução . Amsterdam: Elsevier, 2020. p. 364 . Disponível em: https://doi.org/10.1016/B978-0-12-819763-9.00009-X. Acesso em: 28 maio 2024.
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      Nicoliche, C. Y. N., Oliveira Junior, O. N. de, & Lima, R. S. (2020). Multidimensional sensors: classification, nanoprobes, and microfluidics. In Handbook on Miniaturization in Analytical Chemistry: Application of Nanotechnology (p. 364 ). Amsterdam: Elsevier. doi:10.1016/B978-0-12-819763-9.00009-X
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      Nicoliche CYN, Oliveira Junior ON de, Lima RS. Multidimensional sensors: classification, nanoprobes, and microfluidics [Internet]. In: Handbook on Miniaturization in Analytical Chemistry: Application of Nanotechnology. Amsterdam: Elsevier; 2020. p. 364 .[citado 2024 maio 28 ] Available from: https://doi.org/10.1016/B978-0-12-819763-9.00009-X
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      Nicoliche CYN, Oliveira Junior ON de, Lima RS. Multidimensional sensors: classification, nanoprobes, and microfluidics [Internet]. In: Handbook on Miniaturization in Analytical Chemistry: Application of Nanotechnology. Amsterdam: Elsevier; 2020. p. 364 .[citado 2024 maio 28 ] Available from: https://doi.org/10.1016/B978-0-12-819763-9.00009-X
  • Source: Molecular and Laser Spectroscopy. Unidade: IFSC

    Subjects: PROPRIEDADES DOS MATERIAIS, ÓPTICA NÃO LINEAR, FOTÔNICA

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      VIVAS, Marcelo G. et al. First-order hyperpolarizability of organic molecules: hyper-Rayleigh scattering and applications. Molecular and Laser Spectroscopy. Tradução . Amsterdam: Elsevier, 2020. p. 704 . Disponível em: https://doi.org/10.1016/B978-0-12-818870-5.00008-3. Acesso em: 28 maio 2024.
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      Vivas, M. G., Silva, D. L., Mendonça, C. R., & De Boni, L. (2020). First-order hyperpolarizability of organic molecules: hyper-Rayleigh scattering and applications. In Molecular and Laser Spectroscopy (p. 704 ). Amsterdam: Elsevier. doi:10.1016/B978-0-12-818870-5.00008-3
    • NLM

      Vivas MG, Silva DL, Mendonça CR, De Boni L. First-order hyperpolarizability of organic molecules: hyper-Rayleigh scattering and applications [Internet]. In: Molecular and Laser Spectroscopy. Amsterdam: Elsevier; 2020. p. 704 .[citado 2024 maio 28 ] Available from: https://doi.org/10.1016/B978-0-12-818870-5.00008-3
    • Vancouver

      Vivas MG, Silva DL, Mendonça CR, De Boni L. First-order hyperpolarizability of organic molecules: hyper-Rayleigh scattering and applications [Internet]. In: Molecular and Laser Spectroscopy. Amsterdam: Elsevier; 2020. p. 704 .[citado 2024 maio 28 ] Available from: https://doi.org/10.1016/B978-0-12-818870-5.00008-3
  • Source: Nanosensors for Smart Cities: Micro and Nano Technologies. Unidade: IFSC

    Subjects: NANOTECNOLOGIA, SENSOR, FILMES FINOS, POLÍMEROS (MATERIAIS)

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      MALIK, Ritu et al. Nanosensors for monitoring indoor pollution in smart cities. Nanosensors for Smart Cities: Micro and Nano Technologies. Tradução . Amsterdam: Elsevier, 2020. p. 962 . Disponível em: https://doi.org/10.1016/B978-0-12-819870-4.00014-1. Acesso em: 28 maio 2024.
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      Malik, R., Tomer, V. K., Joshi, N. K. J., Chaudhary, V., & Lin, L. (2020). Nanosensors for monitoring indoor pollution in smart cities. In Nanosensors for Smart Cities: Micro and Nano Technologies (p. 962 ). Amsterdam: Elsevier. doi:10.1016/B978-0-12-819870-4.00014-1
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      Malik R, Tomer VK, Joshi NKJ, Chaudhary V, Lin L. Nanosensors for monitoring indoor pollution in smart cities [Internet]. In: Nanosensors for Smart Cities: Micro and Nano Technologies. Amsterdam: Elsevier; 2020. p. 962 .[citado 2024 maio 28 ] Available from: https://doi.org/10.1016/B978-0-12-819870-4.00014-1
    • Vancouver

      Malik R, Tomer VK, Joshi NKJ, Chaudhary V, Lin L. Nanosensors for monitoring indoor pollution in smart cities [Internet]. In: Nanosensors for Smart Cities: Micro and Nano Technologies. Amsterdam: Elsevier; 2020. p. 962 .[citado 2024 maio 28 ] Available from: https://doi.org/10.1016/B978-0-12-819870-4.00014-1
  • Unidade: IFSC

    Subjects: QUÍMICA ANALÍTICA, MEDICINA NUCLEAR

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      AZEVÊDO, Eduardo Ribeiro de. Solid State Nuclear Magnetic Resonance. . Amsterdam: Elsevier. . Acesso em: 28 maio 2024. , 2019
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      Azevêdo, E. R. de. (2019). Solid State Nuclear Magnetic Resonance. Amsterdam: Elsevier.
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      Azevêdo ER de. Solid State Nuclear Magnetic Resonance. 2019 ;[citado 2024 maio 28 ]
    • Vancouver

      Azevêdo ER de. Solid State Nuclear Magnetic Resonance. 2019 ;[citado 2024 maio 28 ]
  • Source: Nanophotonics Series Metal Nanostructures for Photonics. Unidade: IFSC

    Subjects: NANOTECNOLOGIA, SENSOR, FILMES FINOS, POLÍMEROS (MATERIAIS)

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      SILVA, Robson Rosa da et al. Biopolymer-metal composites. Nanophotonics Series Metal Nanostructures for Photonics. Tradução . Amsterdam: Elsevier, 2019. p. 332 . Disponível em: https://doi.org/10.1016/B978-0-08-102378-5.00011-8. Acesso em: 28 maio 2024.
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      Silva, R. R. da, Ribeiro, S. J. L., Barud, H. S., Barud, H. O., Oliveira Junior, O. N. de, & Mejía-Salazar, J. R. (2019). Biopolymer-metal composites. In Nanophotonics Series Metal Nanostructures for Photonics (p. 332 ). Amsterdam: Elsevier. doi:10.1016/B978-0-08-102378-5.00011-8
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      Silva RR da, Ribeiro SJL, Barud HS, Barud HO, Oliveira Junior ON de, Mejía-Salazar JR. Biopolymer-metal composites [Internet]. In: Nanophotonics Series Metal Nanostructures for Photonics. Amsterdam: Elsevier; 2019. p. 332 .[citado 2024 maio 28 ] Available from: https://doi.org/10.1016/B978-0-08-102378-5.00011-8
    • Vancouver

      Silva RR da, Ribeiro SJL, Barud HS, Barud HO, Oliveira Junior ON de, Mejía-Salazar JR. Biopolymer-metal composites [Internet]. In: Nanophotonics Series Metal Nanostructures for Photonics. Amsterdam: Elsevier; 2019. p. 332 .[citado 2024 maio 28 ] Available from: https://doi.org/10.1016/B978-0-08-102378-5.00011-8
  • Source: Journal of Heart and Lung Transplantation. Conference titles: International Society for Heart and Lung Transplantation Annual Meeting - ISHLT. Unidade: IFSC

    Subjects: TRANSPLANTE DE PULMÃO, TERAPIA FOTODINÂMICA, HEPATITE C

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      CYPEL, M. et al. A clinical trial evaluating the effects of ultra-violet C treatment (UVC) during ex vivo lung perfusion (EVLP) as a method of inactivating hepatitis C infection in donor lungs. Journal of Heart and Lung Transplantation. Philadelphia: Elsevier. Disponível em: https://doi.org/10.1016/j.healun.2019.01.117. Acesso em: 28 maio 2024. , 2019
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      Cypel, M., Galasso, M., Ribeiro, R., Wilson, B., Bagnato, V. S., Kurachi, C., et al. (2019). A clinical trial evaluating the effects of ultra-violet C treatment (UVC) during ex vivo lung perfusion (EVLP) as a method of inactivating hepatitis C infection in donor lungs. Journal of Heart and Lung Transplantation. Philadelphia: Elsevier. doi:10.1016/j.healun.2019.01.117
    • NLM

      Cypel M, Galasso M, Ribeiro R, Wilson B, Bagnato VS, Kurachi C, Chen M, Kumar D, Waddell TK, Singer LG, Keshavjee S, Humar A, Feld J. A clinical trial evaluating the effects of ultra-violet C treatment (UVC) during ex vivo lung perfusion (EVLP) as a method of inactivating hepatitis C infection in donor lungs [Internet]. Journal of Heart and Lung Transplantation. 2019 ; 38( 4): S53-S54.[citado 2024 maio 28 ] Available from: https://doi.org/10.1016/j.healun.2019.01.117
    • Vancouver

      Cypel M, Galasso M, Ribeiro R, Wilson B, Bagnato VS, Kurachi C, Chen M, Kumar D, Waddell TK, Singer LG, Keshavjee S, Humar A, Feld J. A clinical trial evaluating the effects of ultra-violet C treatment (UVC) during ex vivo lung perfusion (EVLP) as a method of inactivating hepatitis C infection in donor lungs [Internet]. Journal of Heart and Lung Transplantation. 2019 ; 38( 4): S53-S54.[citado 2024 maio 28 ] Available from: https://doi.org/10.1016/j.healun.2019.01.117
  • Source: Graphene-Based Electrochemical Sensors for Biomolecules: Micro and Nano Technologies. Unidade: IFSC

    Subjects: SENSOR, ELETRODO

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      MATERÓN, Elsa M. et al. Graphene-containing microfluidic and chip-based sensor devices for biomolecules. Graphene-Based Electrochemical Sensors for Biomolecules: Micro and Nano Technologies. Tradução . Amsterdam: Elsevier, 2019. p. 364 . Disponível em: https://doi.org/10.1016/B978-0-12-815394-9.00013-3. Acesso em: 28 maio 2024.
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      Materón, E. M., Lima, R. S., Joshi, N. K. J., Shimizu, F. M., & Oliveira Junior, O. N. de. (2019). Graphene-containing microfluidic and chip-based sensor devices for biomolecules. In Graphene-Based Electrochemical Sensors for Biomolecules: Micro and Nano Technologies (p. 364 ). Amsterdam: Elsevier. doi:10.1016/B978-0-12-815394-9.00013-3
    • NLM

      Materón EM, Lima RS, Joshi NKJ, Shimizu FM, Oliveira Junior ON de. Graphene-containing microfluidic and chip-based sensor devices for biomolecules [Internet]. In: Graphene-Based Electrochemical Sensors for Biomolecules: Micro and Nano Technologies. Amsterdam: Elsevier; 2019. p. 364 .[citado 2024 maio 28 ] Available from: https://doi.org/10.1016/B978-0-12-815394-9.00013-3
    • Vancouver

      Materón EM, Lima RS, Joshi NKJ, Shimizu FM, Oliveira Junior ON de. Graphene-containing microfluidic and chip-based sensor devices for biomolecules [Internet]. In: Graphene-Based Electrochemical Sensors for Biomolecules: Micro and Nano Technologies. Amsterdam: Elsevier; 2019. p. 364 .[citado 2024 maio 28 ] Available from: https://doi.org/10.1016/B978-0-12-815394-9.00013-3
  • Source: Advanced supramolecular nanoarchitectonics. Unidade: IFSC

    Subjects: POLÍMEROS (MATERIAIS), NANOTECNOLOGIA, SENSOR

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      RAYMUNDO-PEREIRA, Paulo Augusto et al. Nanoarchitectonics in microfluidic devices for sensing and biosensing. Advanced supramolecular nanoarchitectonics. Tradução . Amsterdam: Elsevier, 2019. p. 306 . Disponível em: https://doi.org/10.1016/B978-0-12-813341-5.00009-7. Acesso em: 28 maio 2024.
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      Raymundo-Pereira, P. A., Shimizu, F. M., Lima, R. S., & Oliveira Junior, O. N. de. (2019). Nanoarchitectonics in microfluidic devices for sensing and biosensing. In Advanced supramolecular nanoarchitectonics (p. 306 ). Amsterdam: Elsevier. doi:10.1016/B978-0-12-813341-5.00009-7
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      Raymundo-Pereira PA, Shimizu FM, Lima RS, Oliveira Junior ON de. Nanoarchitectonics in microfluidic devices for sensing and biosensing [Internet]. In: Advanced supramolecular nanoarchitectonics. Amsterdam: Elsevier; 2019. p. 306 .[citado 2024 maio 28 ] Available from: https://doi.org/10.1016/B978-0-12-813341-5.00009-7
    • Vancouver

      Raymundo-Pereira PA, Shimizu FM, Lima RS, Oliveira Junior ON de. Nanoarchitectonics in microfluidic devices for sensing and biosensing [Internet]. In: Advanced supramolecular nanoarchitectonics. Amsterdam: Elsevier; 2019. p. 306 .[citado 2024 maio 28 ] Available from: https://doi.org/10.1016/B978-0-12-813341-5.00009-7
  • Unidade: IFSC

    Subjects: QUÍMICA ANALÍTICA, MEDICINA NUCLEAR

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      AZEVÊDO, Eduardo Ribeiro de. Solid State Nuclear Magnetic Resonance. . Amsterdam: Elsevier. . Acesso em: 28 maio 2024. , 2018
    • APA

      Azevêdo, E. R. de. (2018). Solid State Nuclear Magnetic Resonance. Amsterdam: Elsevier.
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      Azevêdo ER de. Solid State Nuclear Magnetic Resonance. 2018 ;[citado 2024 maio 28 ]
    • Vancouver

      Azevêdo ER de. Solid State Nuclear Magnetic Resonance. 2018 ;[citado 2024 maio 28 ]
  • Source: Molecular and laser spectroscopy: advances and applications. Unidade: IFSC

    Subjects: ESPECTROSCOPIA, FLUORESCÊNCIA, FOTÔNICA

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      VIVAS, Marcelo G. e DE BONI, Leonardo e MENDONÇA, Cleber Renato. Two-photon spectroscopy of organic materials. Molecular and laser spectroscopy: advances and applications. Tradução . Amsterdam: Elsevier, 2018. p. 362 . Disponível em: https://doi.org/10.1016/B978-0-12-849883-5.00008-5. Acesso em: 28 maio 2024.
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      Vivas, M. G., De Boni, L., & Mendonça, C. R. (2018). Two-photon spectroscopy of organic materials. In Molecular and laser spectroscopy: advances and applications (p. 362 ). Amsterdam: Elsevier. doi:10.1016/B978-0-12-849883-5.00008-5
    • NLM

      Vivas MG, De Boni L, Mendonça CR. Two-photon spectroscopy of organic materials [Internet]. In: Molecular and laser spectroscopy: advances and applications. Amsterdam: Elsevier; 2018. p. 362 .[citado 2024 maio 28 ] Available from: https://doi.org/10.1016/B978-0-12-849883-5.00008-5
    • Vancouver

      Vivas MG, De Boni L, Mendonça CR. Two-photon spectroscopy of organic materials [Internet]. In: Molecular and laser spectroscopy: advances and applications. Amsterdam: Elsevier; 2018. p. 362 .[citado 2024 maio 28 ] Available from: https://doi.org/10.1016/B978-0-12-849883-5.00008-5
  • Unidade: IFSC

    Subjects: QUÍMICA ANALÍTICA, MEDICINA NUCLEAR

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      AZEVÊDO, Eduardo Ribeiro de. Solid State Nuclear Magnetic Resonance. . Amsterdam: Elsevier. . Acesso em: 28 maio 2024. , 2017
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      Azevêdo, E. R. de. (2017). Solid State Nuclear Magnetic Resonance. Amsterdam: Elsevier.
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      Azevêdo ER de. Solid State Nuclear Magnetic Resonance. 2017 ;[citado 2024 maio 28 ]
    • Vancouver

      Azevêdo ER de. Solid State Nuclear Magnetic Resonance. 2017 ;[citado 2024 maio 28 ]
  • Unidade: IFSC

    Subjects: NONACIÊNCIA, NANOTECNOLOGIA, INOVAÇÕES TECNOLÓGICAS

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      DA RÓZ, Alessandra L. et al. Nanoscience and its applications. . Amsterdam: Elsevier. . Acesso em: 28 maio 2024. , 2017
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      Da Róz, A. L., Ferreira, M., Leite, F. de L., & Oliveira Junior, O. N. de. (2017). Nanoscience and its applications. Amsterdam: Elsevier.
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      Da Róz AL, Ferreira M, Leite F de L, Oliveira Junior ON de. Nanoscience and its applications. 2017 ;[citado 2024 maio 28 ]
    • Vancouver

      Da Róz AL, Ferreira M, Leite F de L, Oliveira Junior ON de. Nanoscience and its applications. 2017 ;[citado 2024 maio 28 ]
  • Unidade: IFSC

    Subjects: FÍSICA, NANOTECNOLOGIA

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      Nanocharacterization techniques. . Amsterdam: Elsevier. Disponível em: https://www.sciencedirect.com/science/book/9780323497787. Acesso em: 28 maio 2024. , 2017
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      Nanocharacterization techniques. (2017). Nanocharacterization techniques. Amsterdam: Elsevier. Recuperado de https://www.sciencedirect.com/science/book/9780323497787
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      Nanocharacterization techniques [Internet]. 2017 ;[citado 2024 maio 28 ] Available from: https://www.sciencedirect.com/science/book/9780323497787
    • Vancouver

      Nanocharacterization techniques [Internet]. 2017 ;[citado 2024 maio 28 ] Available from: https://www.sciencedirect.com/science/book/9780323497787

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