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  • Source: Materials Advances. Unidade: IQ

    Subjects: ELETROQUÍMICA, BATERIAS ELÉTRICAS

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      MORAIS, William Gomes de e MELO, Eduardo Carmine de e TORRESI, Roberto Manuel. Mechanochemical effect on the electrochemical properties of a Na3(VO)2(PO4)2F positive electrode for sodium-ion batteries. Materials Advances, 2024Tradução . . Disponível em: https://dx.doi.org/10.1039/d4ma00106k. Acesso em: 11 jun. 2024.
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      Morais, W. G. de, Melo, E. C. de, & Torresi, R. M. (2024). Mechanochemical effect on the electrochemical properties of a Na3(VO)2(PO4)2F positive electrode for sodium-ion batteries. Materials Advances. doi:10.1039/d4ma00106k
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      Morais WG de, Melo EC de, Torresi RM. Mechanochemical effect on the electrochemical properties of a Na3(VO)2(PO4)2F positive electrode for sodium-ion batteries [Internet]. Materials Advances. 2024 ;[citado 2024 jun. 11 ] Available from: https://dx.doi.org/10.1039/d4ma00106k
    • Vancouver

      Morais WG de, Melo EC de, Torresi RM. Mechanochemical effect on the electrochemical properties of a Na3(VO)2(PO4)2F positive electrode for sodium-ion batteries [Internet]. Materials Advances. 2024 ;[citado 2024 jun. 11 ] Available from: https://dx.doi.org/10.1039/d4ma00106k
  • Source: Materials Advances. Unidade: IF

    Assunto: NANOPARTICULAS

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      ARAGÓN, Fermin Fidel Herrera e COHEN, Renato e NAGAMINE, Luiz Carlos Camargo Miranda. Evidence of progressive Fe2+ to Fe3+oxidation in Fe2+-doped ZnO nanoparticles. Materials Advances, v. 4, n. 5, p. 1389–1402, 2023Tradução . . Disponível em: https://doi.org/10.1039/D3MA00053B. Acesso em: 11 jun. 2024.
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      Aragón, F. F. H., Cohen, R., & Nagamine, L. C. C. M. (2023). Evidence of progressive Fe2+ to Fe3+oxidation in Fe2+-doped ZnO nanoparticles. Materials Advances, 4( 5), 1389–1402. doi:10.1039/D3MA00053B
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      Aragón FFH, Cohen R, Nagamine LCCM. Evidence of progressive Fe2+ to Fe3+oxidation in Fe2+-doped ZnO nanoparticles [Internet]. Materials Advances. 2023 ; 4( 5): 1389–1402.[citado 2024 jun. 11 ] Available from: https://doi.org/10.1039/D3MA00053B
    • Vancouver

      Aragón FFH, Cohen R, Nagamine LCCM. Evidence of progressive Fe2+ to Fe3+oxidation in Fe2+-doped ZnO nanoparticles [Internet]. Materials Advances. 2023 ; 4( 5): 1389–1402.[citado 2024 jun. 11 ] Available from: https://doi.org/10.1039/D3MA00053B
  • Source: Materials Advances. Unidade: IFSC

    Subjects: ZINCO, MATERIAIS NANOESTRUTURADOS, FOTOCATÁLISE, SENSOR

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      GÜELL, Frank et al. ZnO-based nanomaterials approach for photocatalytic and sensing applications: recent progress and trends. Materials Advances, v. 4, n. 17, p. 3685-3707, 2023Tradução . . Disponível em: https://doi.org/10.1039/d3ma00227f. Acesso em: 11 jun. 2024.
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      Güell, F., Galdámez-Martínez, A., Martínez-Alanis, P. R., Catto, A. C., Silva, L. F. da, Mastelaro, V. R., et al. (2023). ZnO-based nanomaterials approach for photocatalytic and sensing applications: recent progress and trends. Materials Advances, 4( 17), 3685-3707. doi:10.1039/d3ma00227f
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      Güell F, Galdámez-Martínez A, Martínez-Alanis PR, Catto AC, Silva LF da, Mastelaro VR, Rodríguez GS, Dutt A. ZnO-based nanomaterials approach for photocatalytic and sensing applications: recent progress and trends [Internet]. Materials Advances. 2023 ; 4( 17): 3685-3707.[citado 2024 jun. 11 ] Available from: https://doi.org/10.1039/d3ma00227f
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      Güell F, Galdámez-Martínez A, Martínez-Alanis PR, Catto AC, Silva LF da, Mastelaro VR, Rodríguez GS, Dutt A. ZnO-based nanomaterials approach for photocatalytic and sensing applications: recent progress and trends [Internet]. Materials Advances. 2023 ; 4( 17): 3685-3707.[citado 2024 jun. 11 ] Available from: https://doi.org/10.1039/d3ma00227f
  • Source: Materials Advances. Unidade: IQSC

    Subjects: FÍSICO-QUÍMICA, FOTOQUÍMICA, REAÇÕES QUÍMICAS

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      SANTOS, Willy Glen et al. Inverse photochromism in viologen–tetraarylborate ion-pair complexes: optical write/microwave erase switching in polymer matrices. Materials Advances, v. 3, p. 3862-3874, 2022Tradução . . Disponível em: https://doi.org/10.1039/D1MA01030A. Acesso em: 11 jun. 2024.
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      Santos, W. G., Budkina, D. S., Costa, P. F. G. M. da, Cardoso, D. R., Tarnovsky, A. N., & Forbes, M. D. E. (2022). Inverse photochromism in viologen–tetraarylborate ion-pair complexes: optical write/microwave erase switching in polymer matrices. Materials Advances, 3, 3862-3874. doi:10.1039/D1MA01030A
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      Santos WG, Budkina DS, Costa PFGM da, Cardoso DR, Tarnovsky AN, Forbes MDE. Inverse photochromism in viologen–tetraarylborate ion-pair complexes: optical write/microwave erase switching in polymer matrices [Internet]. Materials Advances. 2022 ; 3 3862-3874.[citado 2024 jun. 11 ] Available from: https://doi.org/10.1039/D1MA01030A
    • Vancouver

      Santos WG, Budkina DS, Costa PFGM da, Cardoso DR, Tarnovsky AN, Forbes MDE. Inverse photochromism in viologen–tetraarylborate ion-pair complexes: optical write/microwave erase switching in polymer matrices [Internet]. Materials Advances. 2022 ; 3 3862-3874.[citado 2024 jun. 11 ] Available from: https://doi.org/10.1039/D1MA01030A
  • Source: Materials Advances. Unidade: IFSC

    Subjects: FOTOCATÁLISE, ELETROQUÍMICA, SEMICONDUTORES

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      KHAN, Niqab et al. Ionic liquid based dopant-free band edge shift in BiVO4 particles for photocatalysis under simulated sunlight irradiation. Materials Advances, v. 3, n. 16, p. 6485-6495 + supplementary information, 2022Tradução . . Disponível em: https://doi.org/10.1039/d2ma00259k. Acesso em: 11 jun. 2024.
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      Khan, N., Wolff, R. N., Ullah, H., Chacón, G. J., Santa Rosa, W., Dupont, J., et al. (2022). Ionic liquid based dopant-free band edge shift in BiVO4 particles for photocatalysis under simulated sunlight irradiation. Materials Advances, 3( 16), 6485-6495 + supplementary information. doi:10.1039/d2ma00259k.
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      Khan N, Wolff RN, Ullah H, Chacón GJ, Santa Rosa W, Dupont J, Gonçalves RV, Khan S. Ionic liquid based dopant-free band edge shift in BiVO4 particles for photocatalysis under simulated sunlight irradiation [Internet]. Materials Advances. 2022 ; 3( 16): 6485-6495 + supplementary information.[citado 2024 jun. 11 ] Available from: https://doi.org/10.1039/d2ma00259k.
    • Vancouver

      Khan N, Wolff RN, Ullah H, Chacón GJ, Santa Rosa W, Dupont J, Gonçalves RV, Khan S. Ionic liquid based dopant-free band edge shift in BiVO4 particles for photocatalysis under simulated sunlight irradiation [Internet]. Materials Advances. 2022 ; 3( 16): 6485-6495 + supplementary information.[citado 2024 jun. 11 ] Available from: https://doi.org/10.1039/d2ma00259k.
  • Source: Materials Advances. Unidades: FO, IQ

    Subjects: NANOCOMPOSITOS, IMPACTOS AMBIENTAIS, PETRÓLEO

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      OSORIO, Daniel Garcia et al. SPION-decorated organofunctionalized MCM48 silica-based nanocomposites for magnetic solid-phase extraction. Materials Advances, v. 2, p. 963-973 : + Supplementary materials ( S1-S4), 2021Tradução . . Disponível em: https://doi.org/10.1039/d0ma00989j. Acesso em: 11 jun. 2024.
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      Osorio, D. G., Nogueira, H. P., Gonçalves, J. M., Toma, S. H., Segura, S. G., & Araki, K. (2021). SPION-decorated organofunctionalized MCM48 silica-based nanocomposites for magnetic solid-phase extraction. Materials Advances, 2, 963-973 : + Supplementary materials ( S1-S4). doi:10.1039/d0ma00989j
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      Osorio DG, Nogueira HP, Gonçalves JM, Toma SH, Segura SG, Araki K. SPION-decorated organofunctionalized MCM48 silica-based nanocomposites for magnetic solid-phase extraction [Internet]. Materials Advances. 2021 ; 2 963-973 : + Supplementary materials ( S1-S4).[citado 2024 jun. 11 ] Available from: https://doi.org/10.1039/d0ma00989j
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      Osorio DG, Nogueira HP, Gonçalves JM, Toma SH, Segura SG, Araki K. SPION-decorated organofunctionalized MCM48 silica-based nanocomposites for magnetic solid-phase extraction [Internet]. Materials Advances. 2021 ; 2 963-973 : + Supplementary materials ( S1-S4).[citado 2024 jun. 11 ] Available from: https://doi.org/10.1039/d0ma00989j
  • Source: Materials Advances. Unidade: IQ

    Subjects: ANÁLISE TÉRMICA, ANTIBIÓTICOS, FLUORESCÊNCIA

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      HUDSON, Alexander D et al. Dual detection of nafcillin using a molecularly imprinted polymer-based platform coupled to thermal and fluorescence read-out. Materials Advances, v. 2, p. 5105–5115, 2021Tradução . . Disponível em: https://doi.org/10.1039/d1ma00192b. Acesso em: 11 jun. 2024.
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      Hudson, A. D., Jamieson, O., Crapnell, R. D., Rurack, K., Soares, T. C. C., Mecozzi, F., et al. (2021). Dual detection of nafcillin using a molecularly imprinted polymer-based platform coupled to thermal and fluorescence read-out. Materials Advances, 2, 5105–5115. doi:10.1039/d1ma00192b
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      Hudson AD, Jamieson O, Crapnell RD, Rurack K, Soares TCC, Mecozzi F, Laude A, Gruber J, Novakovica K, Peeters M. Dual detection of nafcillin using a molecularly imprinted polymer-based platform coupled to thermal and fluorescence read-out [Internet]. Materials Advances. 2021 ; 2 5105–5115.[citado 2024 jun. 11 ] Available from: https://doi.org/10.1039/d1ma00192b
    • Vancouver

      Hudson AD, Jamieson O, Crapnell RD, Rurack K, Soares TCC, Mecozzi F, Laude A, Gruber J, Novakovica K, Peeters M. Dual detection of nafcillin using a molecularly imprinted polymer-based platform coupled to thermal and fluorescence read-out [Internet]. Materials Advances. 2021 ; 2 5105–5115.[citado 2024 jun. 11 ] Available from: https://doi.org/10.1039/d1ma00192b
  • Source: Materials Advances. Unidade: IFSC

    Subjects: NANOTECNOLOGIA, SENSOR, QUALIDADE DO AR

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      MALIK, Ritu e JOSHI, Nirav Kumar Jitendrabhai e TOMER, Vijay kumar. Advances in the designs and mechanisms of MoO3 nanostructures for gas sensors: a holistic review. Materials Advances, v. 2, n. 13, p. 4190-4227, 2021Tradução . . Disponível em: https://doi.org/10.1039/d1ma00374g. Acesso em: 11 jun. 2024.
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      Malik, R., Joshi, N. K. J., & Tomer, V. kumar. (2021). Advances in the designs and mechanisms of MoO3 nanostructures for gas sensors: a holistic review. Materials Advances, 2( 13), 4190-4227. doi:10.1039/d1ma00374g
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      Malik R, Joshi NKJ, Tomer V kumar. Advances in the designs and mechanisms of MoO3 nanostructures for gas sensors: a holistic review [Internet]. Materials Advances. 2021 ; 2( 13): 4190-4227.[citado 2024 jun. 11 ] Available from: https://doi.org/10.1039/d1ma00374g
    • Vancouver

      Malik R, Joshi NKJ, Tomer V kumar. Advances in the designs and mechanisms of MoO3 nanostructures for gas sensors: a holistic review [Internet]. Materials Advances. 2021 ; 2( 13): 4190-4227.[citado 2024 jun. 11 ] Available from: https://doi.org/10.1039/d1ma00374g
  • Source: Materials Advances. Unidade: IQSC

    Subjects: FÍSICO-QUÍMICA, CATÁLISE, NANOPARTÍCULAS

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      MENDONÇA, João Paulo A. de et al. Molecular dynamics investigation of the structural and energetic properties of CeO2–MOx (M = Gd, La, Ce, Zr) nanoparticles. Materials Advances, v. 2, p. se2021, 2021Tradução . . Disponível em: https://doi.org/10.1039/D1MA00543J. Acesso em: 11 jun. 2024.
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      Mendonça, J. P. A. de, Lourenço, T. da C., Freitas, L. P. M., Anderson A. E. Santo,, Feliciano, G. T., & Silva, J. L. F. da. (2021). Molecular dynamics investigation of the structural and energetic properties of CeO2–MOx (M = Gd, La, Ce, Zr) nanoparticles. Materials Advances, 2, se2021. doi:10.1039/D1MA00543J
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      Mendonça JPA de, Lourenço T da C, Freitas LPM, Anderson A. E. Santo, Feliciano GT, Silva JLF da. Molecular dynamics investigation of the structural and energetic properties of CeO2–MOx (M = Gd, La, Ce, Zr) nanoparticles [Internet]. Materials Advances. 2021 ; 2 se2021.[citado 2024 jun. 11 ] Available from: https://doi.org/10.1039/D1MA00543J
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      Mendonça JPA de, Lourenço T da C, Freitas LPM, Anderson A. E. Santo, Feliciano GT, Silva JLF da. Molecular dynamics investigation of the structural and energetic properties of CeO2–MOx (M = Gd, La, Ce, Zr) nanoparticles [Internet]. Materials Advances. 2021 ; 2 se2021.[citado 2024 jun. 11 ] Available from: https://doi.org/10.1039/D1MA00543J
  • Source: Materials Advances. Unidades: IQSC, EESC

    Subjects: NANOPARTÍCULAS, FOTOCATÁLISE, CERÂMICA

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      FERREIRA NETO, Elias Paiva et al. Thermally stable SiO2@TiO2 core@shell nanoparticles for application in photocatalytic self-cleaning ceramic tiles. Materials Advances, v. 2, p. 2085-2096, 2021Tradução . . Disponível em: https://doi.org/10.1039/d0ma00785d. Acesso em: 11 jun. 2024.
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      Ferreira Neto, E. P., Ullah, S., Martinez, V. P., Yabarrena, J. M. S. C., Simões, M. B., Perissinotto, A. P., et al. (2021). Thermally stable SiO2@TiO2 core@shell nanoparticles for application in photocatalytic self-cleaning ceramic tiles. Materials Advances, 2, 2085-2096. doi:10.1039/d0ma00785d
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      Ferreira Neto EP, Ullah S, Martinez VP, Yabarrena JMSC, Simões MB, Perissinotto AP, Wender H, Vicente FS de, Noeske P-LM, Ribeiro SJL, Rodrigues Filho UP. Thermally stable SiO2@TiO2 core@shell nanoparticles for application in photocatalytic self-cleaning ceramic tiles [Internet]. Materials Advances. 2021 ;2 2085-2096.[citado 2024 jun. 11 ] Available from: https://doi.org/10.1039/d0ma00785d
    • Vancouver

      Ferreira Neto EP, Ullah S, Martinez VP, Yabarrena JMSC, Simões MB, Perissinotto AP, Wender H, Vicente FS de, Noeske P-LM, Ribeiro SJL, Rodrigues Filho UP. Thermally stable SiO2@TiO2 core@shell nanoparticles for application in photocatalytic self-cleaning ceramic tiles [Internet]. Materials Advances. 2021 ;2 2085-2096.[citado 2024 jun. 11 ] Available from: https://doi.org/10.1039/d0ma00785d
  • Source: Materials Advances. Unidade: IFSC

    Subjects: NEOPLASIAS, BIOMEDICINA, POLÍMEROS (MATERIAIS), NANOTECNOLOGIA

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      ESTEVÃO, Bianca Martins et al. Anti-GPC1-modified mesoporous silica nanoparticles as nanocarriers for combination therapy and targeting of PANC-1 cells. Materials Advances, v. 2, n. 15, p. 5224-5235, 2021Tradução . . Disponível em: https://doi.org/10.1039/d1ma00225b. Acesso em: 11 jun. 2024.
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      Estevão, B. M., Comparetti, E. J., Rissi, N. C., & Zucolotto, V. (2021). Anti-GPC1-modified mesoporous silica nanoparticles as nanocarriers for combination therapy and targeting of PANC-1 cells. Materials Advances, 2( 15), 5224-5235. doi:10.1039/d1ma00225b
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      Estevão BM, Comparetti EJ, Rissi NC, Zucolotto V. Anti-GPC1-modified mesoporous silica nanoparticles as nanocarriers for combination therapy and targeting of PANC-1 cells [Internet]. Materials Advances. 2021 ; 2( 15): 5224-5235.[citado 2024 jun. 11 ] Available from: https://doi.org/10.1039/d1ma00225b
    • Vancouver

      Estevão BM, Comparetti EJ, Rissi NC, Zucolotto V. Anti-GPC1-modified mesoporous silica nanoparticles as nanocarriers for combination therapy and targeting of PANC-1 cells [Internet]. Materials Advances. 2021 ; 2( 15): 5224-5235.[citado 2024 jun. 11 ] Available from: https://doi.org/10.1039/d1ma00225b
  • Source: Materials Advances. Unidades: IQSC, EACH, EESC

    Subjects: TRATAMENTO DE ÁGUAS RESIDUÁRIAS, COMPOSTOS ORGÂNICOS, PARACETAMOL, OXIGÊNIO

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      KRONKA, Matheus Schiavon et al. Tailoring the ORR selectivity for H2O2 electrogeneration by modification of Printex L6 carbon with 1,4-naphthoquinone. Materials Advances, v. 1, p. 1318-1329 2020, 2020Tradução . . Disponível em: https://doi.org/10.1039/D0MA00290A. Acesso em: 11 jun. 2024.
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      Kronka, M. S., Silva, F. L., Martins, A. S., Almeida, M. de O., Honório, K. M., & Lanza, M. R. de V. (2020). Tailoring the ORR selectivity for H2O2 electrogeneration by modification of Printex L6 carbon with 1,4-naphthoquinone. Materials Advances, 1, 1318-1329 2020. doi:10.1039/D0MA00290A
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      Kronka MS, Silva FL, Martins AS, Almeida M de O, Honório KM, Lanza MR de V. Tailoring the ORR selectivity for H2O2 electrogeneration by modification of Printex L6 carbon with 1,4-naphthoquinone [Internet]. Materials Advances. 2020 ; 1 1318-1329 2020.[citado 2024 jun. 11 ] Available from: https://doi.org/10.1039/D0MA00290A
    • Vancouver

      Kronka MS, Silva FL, Martins AS, Almeida M de O, Honório KM, Lanza MR de V. Tailoring the ORR selectivity for H2O2 electrogeneration by modification of Printex L6 carbon with 1,4-naphthoquinone [Internet]. Materials Advances. 2020 ; 1 1318-1329 2020.[citado 2024 jun. 11 ] Available from: https://doi.org/10.1039/D0MA00290A
  • Source: Materials Advances. Unidade: IQ

    Subjects: PROTEÍNAS, ENGENHARIA TECIDUAL

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      DELECHIAVE, Giovanne et al. Tuning protein delivery from different architectures of layer-by-layer assemblies on polymer films. Materials Advances, v. 1, p. 2043-2056, 2020Tradução . . Disponível em: https://doi.org/10.1039/d0ma00432d. Acesso em: 11 jun. 2024.
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      Delechiave, G., Naves, A. F., Kolanthai, E., Silva, R. A. da, Vlasman, R. C., Petri, D. F. S., et al. (2020). Tuning protein delivery from different architectures of layer-by-layer assemblies on polymer films. Materials Advances, 1, 2043-2056. doi:10.1039/d0ma00432d
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      Delechiave G, Naves AF, Kolanthai E, Silva RA da, Vlasman RC, Petri DFS, Torresi RM, Catalani LH. Tuning protein delivery from different architectures of layer-by-layer assemblies on polymer films [Internet]. Materials Advances. 2020 ; 1 2043-2056.[citado 2024 jun. 11 ] Available from: https://doi.org/10.1039/d0ma00432d
    • Vancouver

      Delechiave G, Naves AF, Kolanthai E, Silva RA da, Vlasman RC, Petri DFS, Torresi RM, Catalani LH. Tuning protein delivery from different architectures of layer-by-layer assemblies on polymer films [Internet]. Materials Advances. 2020 ; 1 2043-2056.[citado 2024 jun. 11 ] Available from: https://doi.org/10.1039/d0ma00432d
  • Source: Materials Advances. Unidade: IQSC

    Assunto: QUÍMICA TEÓRICA

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      OZÓRIO, Mailde da Silva et al. Novel zero-dimensional lead-free bismuth based perovskites:: from synthesis to structural and optoelectronic characterization. Materials Advances, v. 1, p. 3439-3448, 2020Tradução . . Disponível em: https://doi.org/10.1039/d0ma00791a. Acesso em: 11 jun. 2024.
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      Ozório, M. da S., Oliveira, W. X. C., Silveira, J. F. R. V., Nogueira, A. F., & Silva, J. L. F. da. (2020). Novel zero-dimensional lead-free bismuth based perovskites:: from synthesis to structural and optoelectronic characterization. Materials Advances, 1, 3439-3448. doi:10.1039/d0ma00791a
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      Ozório M da S, Oliveira WXC, Silveira JFRV, Nogueira AF, Silva JLF da. Novel zero-dimensional lead-free bismuth based perovskites:: from synthesis to structural and optoelectronic characterization [Internet]. Materials Advances. 2020 ; 1 3439-3448.[citado 2024 jun. 11 ] Available from: https://doi.org/10.1039/d0ma00791a
    • Vancouver

      Ozório M da S, Oliveira WXC, Silveira JFRV, Nogueira AF, Silva JLF da. Novel zero-dimensional lead-free bismuth based perovskites:: from synthesis to structural and optoelectronic characterization [Internet]. Materials Advances. 2020 ; 1 3439-3448.[citado 2024 jun. 11 ] Available from: https://doi.org/10.1039/d0ma00791a
  • Source: Materials Advances. Unidade: IFSC

    Subjects: NANOTECNOLOGIA, BIOMEDICINA, NEOPLASIAS

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      COMPARETTI, Edson José et al. Cancer cell membrane-derived nanoparticles improve the activity of gemcitabine and paclitaxel on pancreatic cancer cells and coordinate immunoregulatory properties on professional antigen-presenting cells. Materials Advances, v. 1, n. 6, p. 1775-1787, 2020Tradução . . Disponível em: https://doi.org/10.1039/d0ma00367k. Acesso em: 11 jun. 2024.
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      Comparetti, E. J., Lins, P. M. P., Quitiba, J. V. B., & Zucolotto, V. (2020). Cancer cell membrane-derived nanoparticles improve the activity of gemcitabine and paclitaxel on pancreatic cancer cells and coordinate immunoregulatory properties on professional antigen-presenting cells. Materials Advances, 1( 6), 1775-1787. doi:10.1039/d0ma00367k
    • NLM

      Comparetti EJ, Lins PMP, Quitiba JVB, Zucolotto V. Cancer cell membrane-derived nanoparticles improve the activity of gemcitabine and paclitaxel on pancreatic cancer cells and coordinate immunoregulatory properties on professional antigen-presenting cells [Internet]. Materials Advances. 2020 ; 1( 6): 1775-1787.[citado 2024 jun. 11 ] Available from: https://doi.org/10.1039/d0ma00367k
    • Vancouver

      Comparetti EJ, Lins PMP, Quitiba JVB, Zucolotto V. Cancer cell membrane-derived nanoparticles improve the activity of gemcitabine and paclitaxel on pancreatic cancer cells and coordinate immunoregulatory properties on professional antigen-presenting cells [Internet]. Materials Advances. 2020 ; 1( 6): 1775-1787.[citado 2024 jun. 11 ] Available from: https://doi.org/10.1039/d0ma00367k
  • Source: Materials Advances. Unidade: IFSC

    Subjects: NANOCOMPOSITOS, FERROELETRICIDADE, FOTOCATÁLISE

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      ASSAVACHIN, Samutr et al. Ferroelectric surface photovoltage enhancement in chromium-doped SrTiO3 nanocrystal photocatalysts for hydrogen evolution. Materials Advances, v. 1, n. 5, p. 1382-1389, 2020Tradução . . Disponível em: https://doi.org/10.1039/d0ma00463d. Acesso em: 11 jun. 2024.
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      Assavachin, S., Nail, B. A., Gonçalves, R. V., Mulcahy, J. R., Lloyd, S. E., & Osterloh, F. E. (2020). Ferroelectric surface photovoltage enhancement in chromium-doped SrTiO3 nanocrystal photocatalysts for hydrogen evolution. Materials Advances, 1( 5), 1382-1389. doi:10.1039/d0ma00463d
    • NLM

      Assavachin S, Nail BA, Gonçalves RV, Mulcahy JR, Lloyd SE, Osterloh FE. Ferroelectric surface photovoltage enhancement in chromium-doped SrTiO3 nanocrystal photocatalysts for hydrogen evolution [Internet]. Materials Advances. 2020 ; 1( 5): 1382-1389.[citado 2024 jun. 11 ] Available from: https://doi.org/10.1039/d0ma00463d
    • Vancouver

      Assavachin S, Nail BA, Gonçalves RV, Mulcahy JR, Lloyd SE, Osterloh FE. Ferroelectric surface photovoltage enhancement in chromium-doped SrTiO3 nanocrystal photocatalysts for hydrogen evolution [Internet]. Materials Advances. 2020 ; 1( 5): 1382-1389.[citado 2024 jun. 11 ] Available from: https://doi.org/10.1039/d0ma00463d
  • Source: Materials Advances. Unidades: IPEN, IQ

    Subjects: SENSORES ÓPTICOS, ÍONS

    Versão PublicadaAcesso à fonteDOIHow to cite
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      GUIMARÃES, Lucca Blois et al. Highly sensitive and precise optical temperature sensors based on new luminescent Tb3+/Eu3+ tetrakis complexes with imidazolic counterions. Materials Advances, v. 1, n. 6, p. 1988-1995 : + Supplementary materials ( S1-S9), 2020Tradução . . Disponível em: https://doi.org/10.1039/d0ma00201a. Acesso em: 11 jun. 2024.
    • APA

      Guimarães, L. B., Botas, A. M. P., Felinto, M. C. F. da C., Ferreira, R. A. S., Carlos, L. D., Malta, O. L., & Brito, H. F. de. (2020). Highly sensitive and precise optical temperature sensors based on new luminescent Tb3+/Eu3+ tetrakis complexes with imidazolic counterions. Materials Advances, 1( 6), 1988-1995 : + Supplementary materials ( S1-S9). doi:10.1039/d0ma00201a
    • NLM

      Guimarães LB, Botas AMP, Felinto MCF da C, Ferreira RAS, Carlos LD, Malta OL, Brito HF de. Highly sensitive and precise optical temperature sensors based on new luminescent Tb3+/Eu3+ tetrakis complexes with imidazolic counterions [Internet]. Materials Advances. 2020 ; 1( 6): 1988-1995 : + Supplementary materials ( S1-S9).[citado 2024 jun. 11 ] Available from: https://doi.org/10.1039/d0ma00201a
    • Vancouver

      Guimarães LB, Botas AMP, Felinto MCF da C, Ferreira RAS, Carlos LD, Malta OL, Brito HF de. Highly sensitive and precise optical temperature sensors based on new luminescent Tb3+/Eu3+ tetrakis complexes with imidazolic counterions [Internet]. Materials Advances. 2020 ; 1( 6): 1988-1995 : + Supplementary materials ( S1-S9).[citado 2024 jun. 11 ] Available from: https://doi.org/10.1039/d0ma00201a

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