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  • Source: Communications Biology. Unidades: ESALQ, CENA, IF, IB

    Subjects: PLANTAS, FISIOLOGIA VEGETAL, ECOLOGIA VEGETAL, MUDANÇA CLIMÁTICA, CARBONO

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      STEEGE, Hans ter et al. Functional composition of the Amazonian tree flora and forests. Communications Biology, v. 8, 2025Tradução . . Disponível em: https://doi.org/10.1038/s42003-025-07768-8. Acesso em: 02 nov. 2025.
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      Steege, H. ter, Luize, B. G., Quesada, C. A., Ometto, J. P. H. B., Martinelli, L. A., Artaxo, P., et al. (2025). Functional composition of the Amazonian tree flora and forests. Communications Biology, 8. doi:10.1038/s42003-025-07768-8
    • NLM

      Steege H ter, Luize BG, Quesada CA, Ometto JPHB, Martinelli LA, Artaxo P, Oliveira AA, Baider C. Functional composition of the Amazonian tree flora and forests [Internet]. Communications Biology. 2025 ; 8[citado 2025 nov. 02 ] Available from: https://doi.org/10.1038/s42003-025-07768-8
    • Vancouver

      Steege H ter, Luize BG, Quesada CA, Ometto JPHB, Martinelli LA, Artaxo P, Oliveira AA, Baider C. Functional composition of the Amazonian tree flora and forests [Internet]. Communications Biology. 2025 ; 8[citado 2025 nov. 02 ] Available from: https://doi.org/10.1038/s42003-025-07768-8
  • Source: Physical Review A. Unidade: IF

    Assunto: INTERFEROMETRIA

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      SCHUT, Martine et al. Expression for the decoherence rate due to air-molecule scattering in spatial qubits. Physical Review A, v. 111, 2025Tradução . . Disponível em: https://doi.org/10.1103/PhysRevA.111.042211. Acesso em: 02 nov. 2025.
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      Schut, M., Andriolo, P., Toroš, M., Bose, S., & Mazumdar, A. (2025). Expression for the decoherence rate due to air-molecule scattering in spatial qubits. Physical Review A, 111. doi:10.1103/PhysRevA.111.042211
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      Schut M, Andriolo P, Toroš M, Bose S, Mazumdar A. Expression for the decoherence rate due to air-molecule scattering in spatial qubits [Internet]. Physical Review A. 2025 ; 111[citado 2025 nov. 02 ] Available from: https://doi.org/10.1103/PhysRevA.111.042211
    • Vancouver

      Schut M, Andriolo P, Toroš M, Bose S, Mazumdar A. Expression for the decoherence rate due to air-molecule scattering in spatial qubits [Internet]. Physical Review A. 2025 ; 111[citado 2025 nov. 02 ] Available from: https://doi.org/10.1103/PhysRevA.111.042211
  • Source: Physical Review D. Unidade: IF

    Assunto: GRAVIDADE

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      TOROŠ, Marko et al. Relativistic dips in entangling power of gravity. Physical Review D, v. 111, 2025Tradução . . Disponível em: https://doi.org/10.1103/PhysRevD.111.036026. Acesso em: 02 nov. 2025.
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      Toroš, M., Schut, M., Andriolo, P., Bose, S., & Mazumdar, A. (2025). Relativistic dips in entangling power of gravity. Physical Review D, 111. doi:10.1103/PhysRevD.111.036026
    • NLM

      Toroš M, Schut M, Andriolo P, Bose S, Mazumdar A. Relativistic dips in entangling power of gravity [Internet]. Physical Review D. 2025 ; 111[citado 2025 nov. 02 ] Available from: https://doi.org/10.1103/PhysRevD.111.036026
    • Vancouver

      Toroš M, Schut M, Andriolo P, Bose S, Mazumdar A. Relativistic dips in entangling power of gravity [Internet]. Physical Review D. 2025 ; 111[citado 2025 nov. 02 ] Available from: https://doi.org/10.1103/PhysRevD.111.036026
  • Source: Structure. Unidade: IF

    Assunto: ÍONS

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      FELICES, Jose M. Martínez et al. Cobalamin decyanation by the membrane transporter BtuM. Structure, v. 32, n. 8, p. 1165-1173, 2024Tradução . . Disponível em: https://doi.org/10.1016/j.str.2024.04.014. Acesso em: 02 nov. 2025.
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      Felices, J. M. M., Barreto, Y. B., Thangaratnarajah, C., Whittaker, J. J., Alencar, A. M., Guskov, A., & Slotboom, D. J. (2024). Cobalamin decyanation by the membrane transporter BtuM. Structure, 32( 8), 1165-1173. doi:10.1016/j.str.2024.04.014
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      Felices JMM, Barreto YB, Thangaratnarajah C, Whittaker JJ, Alencar AM, Guskov A, Slotboom DJ. Cobalamin decyanation by the membrane transporter BtuM [Internet]. Structure. 2024 ; 32( 8): 1165-1173.[citado 2025 nov. 02 ] Available from: https://doi.org/10.1016/j.str.2024.04.014
    • Vancouver

      Felices JMM, Barreto YB, Thangaratnarajah C, Whittaker JJ, Alencar AM, Guskov A, Slotboom DJ. Cobalamin decyanation by the membrane transporter BtuM [Internet]. Structure. 2024 ; 32( 8): 1165-1173.[citado 2025 nov. 02 ] Available from: https://doi.org/10.1016/j.str.2024.04.014
  • Source: Bulletin of the American Meteorological Society. Unidade: IF

    Subjects: NUVENS, FOTOSSÍNTESE, CICLO DO CARBONO, ATMOSFERA

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      ARELLANO, Jordi Vila-Guerau de e MACHADO, Luiz Augusto Toledo e SILVA, F A G da. CloudRoots-Amazon22: Integrating Clouds with Photosynthesis by Crossing Scales. Bulletin of the American Meteorological Society, v. 105, n. 7, p. E1275–E1302 , 2024Tradução . . Disponível em: https://doi.org/10.1175/BAMS-D-23-0333.1. Acesso em: 02 nov. 2025.
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      Arellano, J. V. -G. de, Machado, L. A. T., & Silva, F. A. G. da. (2024). CloudRoots-Amazon22: Integrating Clouds with Photosynthesis by Crossing Scales. Bulletin of the American Meteorological Society, 105( 7), E1275–E1302 . doi:10.1175/BAMS-D-23-0333.1
    • NLM

      Arellano JV-G de, Machado LAT, Silva FAG da. CloudRoots-Amazon22: Integrating Clouds with Photosynthesis by Crossing Scales [Internet]. Bulletin of the American Meteorological Society. 2024 ; 105( 7): E1275–E1302 .[citado 2025 nov. 02 ] Available from: https://doi.org/10.1175/BAMS-D-23-0333.1
    • Vancouver

      Arellano JV-G de, Machado LAT, Silva FAG da. CloudRoots-Amazon22: Integrating Clouds with Photosynthesis by Crossing Scales [Internet]. Bulletin of the American Meteorological Society. 2024 ; 105( 7): E1275–E1302 .[citado 2025 nov. 02 ] Available from: https://doi.org/10.1175/BAMS-D-23-0333.1
  • Source: Discover Materials. Unidades: IFSC, IF, ICMC

    Subjects: BIG DATA, INTERNET DAS COISAS, APRENDIZADO COMPUTACIONAL

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      OGOSHI, Elton et al. Learning from machine learning: the case of band-gap directness in semiconductors. Discover Materials, v. 4, p. 6-1-6-14, 2024Tradução . . Disponível em: https://doi.org/10.1007/s43939-024-00073-x. Acesso em: 02 nov. 2025.
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      Ogoshi, E., Popolin Neto, M., Acosta, C. M., Nascimento, G. de M., Rodrigues, J. N. B., Oliveira Junior, O. N. de, et al. (2024). Learning from machine learning: the case of band-gap directness in semiconductors. Discover Materials, 4, 6-1-6-14. doi:10.1007/s43939-024-00073-x
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      Ogoshi E, Popolin Neto M, Acosta CM, Nascimento G de M, Rodrigues JNB, Oliveira Junior ON de, Paulovich FV, Dalpian GM. Learning from machine learning: the case of band-gap directness in semiconductors [Internet]. Discover Materials. 2024 ; 4 6-1-6-14.[citado 2025 nov. 02 ] Available from: https://doi.org/10.1007/s43939-024-00073-x
    • Vancouver

      Ogoshi E, Popolin Neto M, Acosta CM, Nascimento G de M, Rodrigues JNB, Oliveira Junior ON de, Paulovich FV, Dalpian GM. Learning from machine learning: the case of band-gap directness in semiconductors [Internet]. Discover Materials. 2024 ; 4 6-1-6-14.[citado 2025 nov. 02 ] Available from: https://doi.org/10.1007/s43939-024-00073-x
  • Source: Physical Review D. Unidade: IF

    Assunto: RELATIVIDADE (FÍSICA)

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      TOROŠ, Marko et al. Relativistic effects on entangled single-electron traps. Physical Review D, p. 056031/1-056031/12, 2024Tradução . . Disponível em: https://doi.org/10.1103/PhysRevD.110.056031. Acesso em: 02 nov. 2025.
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      Toroš, M., Andriolo, P., Schut, M., Bose, S., & Mazumdar, A. (2024). Relativistic effects on entangled single-electron traps. Physical Review D, 056031/1-056031/12. doi:10.1103/PhysRevD.110.056031
    • NLM

      Toroš M, Andriolo P, Schut M, Bose S, Mazumdar A. Relativistic effects on entangled single-electron traps [Internet]. Physical Review D. 2024 ; 056031/1-056031/12.[citado 2025 nov. 02 ] Available from: https://doi.org/10.1103/PhysRevD.110.056031
    • Vancouver

      Toroš M, Andriolo P, Schut M, Bose S, Mazumdar A. Relativistic effects on entangled single-electron traps [Internet]. Physical Review D. 2024 ; 056031/1-056031/12.[citado 2025 nov. 02 ] Available from: https://doi.org/10.1103/PhysRevD.110.056031
  • Source: Annals of the New York Academy of Sciences. Unidades: IF, IAG

    Subjects: NUVENS, FOTOSSÍNTESE

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      ARELLANO, Jordi Vila-Guerau de e CECCHINI, Micael Amore e MACHADO, Luiz Augusto Toledo. Advancing understanding of land–atmosphere interactions by breaking discipline and scale barriers. Annals of the New York Academy of Sciences, v. 1522, n. 1, p. 74-97, 2023Tradução . . Disponível em: https://doi.org/10.1111/nyas.14956. Acesso em: 02 nov. 2025.
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      Arellano, J. V. -G. de, Cecchini, M. A., & Machado, L. A. T. (2023). Advancing understanding of land–atmosphere interactions by breaking discipline and scale barriers. Annals of the New York Academy of Sciences, 1522( 1), 74-97. doi:10.1111/nyas.14956
    • NLM

      Arellano JV-G de, Cecchini MA, Machado LAT. Advancing understanding of land–atmosphere interactions by breaking discipline and scale barriers [Internet]. Annals of the New York Academy of Sciences. 2023 ; 1522( 1): 74-97.[citado 2025 nov. 02 ] Available from: https://doi.org/10.1111/nyas.14956
    • Vancouver

      Arellano JV-G de, Cecchini MA, Machado LAT. Advancing understanding of land–atmosphere interactions by breaking discipline and scale barriers [Internet]. Annals of the New York Academy of Sciences. 2023 ; 1522( 1): 74-97.[citado 2025 nov. 02 ] Available from: https://doi.org/10.1111/nyas.14956
  • Source: Biomicrofluidics. Unidade: IF

    Subjects: NANOTECNOLOGIA, BIOFÍSICA

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      BAZYAR, H. et al. Acoustophoresis of monodisperse oil droplets in water: effect of symmetry breaking and non-resonance operation on oil trapping behavior. Biomicrofluidics, v. 17, 2023Tradução . . Disponível em: https://doi.org/10.1063/5.0175400. Acesso em: 02 nov. 2025.
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      Bazyar, H., Kandemir, M. H., Peper, J., Bernassau, A. L., Schroen, K., Lammertink, R. G. H., & Andrade, M. A. B. (2023). Acoustophoresis of monodisperse oil droplets in water: effect of symmetry breaking and non-resonance operation on oil trapping behavior. Biomicrofluidics, 17. doi:10.1063/5.0175400
    • NLM

      Bazyar H, Kandemir MH, Peper J, Bernassau AL, Schroen K, Lammertink RGH, Andrade MAB. Acoustophoresis of monodisperse oil droplets in water: effect of symmetry breaking and non-resonance operation on oil trapping behavior [Internet]. Biomicrofluidics. 2023 ; 17[citado 2025 nov. 02 ] Available from: https://doi.org/10.1063/5.0175400
    • Vancouver

      Bazyar H, Kandemir MH, Peper J, Bernassau AL, Schroen K, Lammertink RGH, Andrade MAB. Acoustophoresis of monodisperse oil droplets in water: effect of symmetry breaking and non-resonance operation on oil trapping behavior [Internet]. Biomicrofluidics. 2023 ; 17[citado 2025 nov. 02 ] Available from: https://doi.org/10.1063/5.0175400
  • Source: Monthly Notices of the Royal Astronomical Society. Unidade: IF

    Subjects: ASTROFÍSICA, COSMOLOGIA, MATÉRIA ESCURA, LENTES GRAVITACIONAIS, GALÁXIAS

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      POWELL, Devon M. et al. A lensed radio jet at milli-arcsecond resolution – II. Constraints on fuzzy dark matter from an extended gravitational arc. Monthly Notices of the Royal Astronomical Society, v. 524, n. 1, p. L84-L88, 2023Tradução . . Disponível em: https://doi.org/10.1093/mnrasl/slad074. Acesso em: 02 nov. 2025.
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      Powell, D. M., Vegetti, S., McKean, J. P., White, S., Ferreira, E. G. M., May, S., & Spingola, C. (2023). A lensed radio jet at milli-arcsecond resolution – II. Constraints on fuzzy dark matter from an extended gravitational arc. Monthly Notices of the Royal Astronomical Society, 524( 1), L84-L88. doi:10.1093/mnrasl/slad074
    • NLM

      Powell DM, Vegetti S, McKean JP, White S, Ferreira EGM, May S, Spingola C. A lensed radio jet at milli-arcsecond resolution – II. Constraints on fuzzy dark matter from an extended gravitational arc [Internet]. Monthly Notices of the Royal Astronomical Society. 2023 ; 524( 1): L84-L88.[citado 2025 nov. 02 ] Available from: https://doi.org/10.1093/mnrasl/slad074
    • Vancouver

      Powell DM, Vegetti S, McKean JP, White S, Ferreira EGM, May S, Spingola C. A lensed radio jet at milli-arcsecond resolution – II. Constraints on fuzzy dark matter from an extended gravitational arc [Internet]. Monthly Notices of the Royal Astronomical Society. 2023 ; 524( 1): L84-L88.[citado 2025 nov. 02 ] Available from: https://doi.org/10.1093/mnrasl/slad074
  • Source: Physical Review B. Unidade: IF

    Assunto: ESPECTROSCOPIA

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      MENDONÇA, Bruna Shinohara de et al. Near zero energy Caroli–de Gennes–Matricon vortex states in the presence of impurities. Physical Review B, v. 107, 2023Tradução . . Disponível em: https://doi.org/10.1103/PhysRevB.107.184509. Acesso em: 02 nov. 2025.
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      Mendonça, B. S. de, Manesco, A. L. R., Sandler, N., & Silva, L. G. G. de V. D. da. (2023). Near zero energy Caroli–de Gennes–Matricon vortex states in the presence of impurities. Physical Review B, 107. doi:10.1103/PhysRevB.107.184509
    • NLM

      Mendonça BS de, Manesco ALR, Sandler N, Silva LGG de VD da. Near zero energy Caroli–de Gennes–Matricon vortex states in the presence of impurities [Internet]. Physical Review B. 2023 ; 107[citado 2025 nov. 02 ] Available from: https://doi.org/10.1103/PhysRevB.107.184509
    • Vancouver

      Mendonça BS de, Manesco ALR, Sandler N, Silva LGG de VD da. Near zero energy Caroli–de Gennes–Matricon vortex states in the presence of impurities [Internet]. Physical Review B. 2023 ; 107[citado 2025 nov. 02 ] Available from: https://doi.org/10.1103/PhysRevB.107.184509
  • Source: Physical Review Letters. Unidades: EEL, IFSC, IF

    Subjects: RAIOS CÓSMICOS, FÍSICA DE ALTA ENERGIA, ASTROFÍSICA

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      AAB, A. et al. Measurement of the fluctuations in the number of muons in extensive air Showers with the Pierre Auger Observatory. Physical Review Letters, v. 126, n. 15, p. 152002-1-152002-11, 2021Tradução . . Disponível em: https://doi.org/10.1103/PhysRevLett.126.152002. Acesso em: 02 nov. 2025.
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      Aab, A., Arbeletche, L. B., Catalani, F., Souza, V. de, Lang, R. G., Martínez-Huerta, H., et al. (2021). Measurement of the fluctuations in the number of muons in extensive air Showers with the Pierre Auger Observatory. Physical Review Letters, 126( 15), 152002-1-152002-11. doi:10.1103/PhysRevLett.126.152002
    • NLM

      Aab A, Arbeletche LB, Catalani F, Souza V de, Lang RG, Martínez-Huerta H, Armand JP, Carvalho Junior WR de, Santos EM, Peixoto CJT. Measurement of the fluctuations in the number of muons in extensive air Showers with the Pierre Auger Observatory [Internet]. Physical Review Letters. 2021 ; 126( 15): 152002-1-152002-11.[citado 2025 nov. 02 ] Available from: https://doi.org/10.1103/PhysRevLett.126.152002
    • Vancouver

      Aab A, Arbeletche LB, Catalani F, Souza V de, Lang RG, Martínez-Huerta H, Armand JP, Carvalho Junior WR de, Santos EM, Peixoto CJT. Measurement of the fluctuations in the number of muons in extensive air Showers with the Pierre Auger Observatory [Internet]. Physical Review Letters. 2021 ; 126( 15): 152002-1-152002-11.[citado 2025 nov. 02 ] Available from: https://doi.org/10.1103/PhysRevLett.126.152002
  • Source: Journal of Instrumentation. Unidades: EEL, IFSC, IF

    Subjects: FÍSICA DE ALTA ENERGIA, RAIOS CÓSMICOS

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      AAB, A. et al. Deep-learning based reconstruction of the shower maximum 𝑿max using the water-Cherenkov detectors of the Pierre Auger Observatory. Journal of Instrumentation, v. 16, n. 7, p. P07019-1-P07019-27, 2021Tradução . . Disponível em: https://doi.org/10.1088/1748-0221/16/07/P07019. Acesso em: 02 nov. 2025.
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      Aab, A., Arbeletche, L. B., Catalani, F., Souza, V. de, Lang, R. G., Martínez-Huerta, H., et al. (2021). Deep-learning based reconstruction of the shower maximum 𝑿max using the water-Cherenkov detectors of the Pierre Auger Observatory. Journal of Instrumentation, 16( 7), P07019-1-P07019-27. doi:10.1088/1748-0221/16/07/P07019
    • NLM

      Aab A, Arbeletche LB, Catalani F, Souza V de, Lang RG, Martínez-Huerta H, Armand JP, Carvalho Junior WR de, Santos EM, Peixoto CJT. Deep-learning based reconstruction of the shower maximum 𝑿max using the water-Cherenkov detectors of the Pierre Auger Observatory [Internet]. Journal of Instrumentation. 2021 ; 16( 7): P07019-1-P07019-27.[citado 2025 nov. 02 ] Available from: https://doi.org/10.1088/1748-0221/16/07/P07019
    • Vancouver

      Aab A, Arbeletche LB, Catalani F, Souza V de, Lang RG, Martínez-Huerta H, Armand JP, Carvalho Junior WR de, Santos EM, Peixoto CJT. Deep-learning based reconstruction of the shower maximum 𝑿max using the water-Cherenkov detectors of the Pierre Auger Observatory [Internet]. Journal of Instrumentation. 2021 ; 16( 7): P07019-1-P07019-27.[citado 2025 nov. 02 ] Available from: https://doi.org/10.1088/1748-0221/16/07/P07019
  • Source: European Physical Journal C. Unidade: IF

    Assunto: INTERFEROMETRIA

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      SCHOORLEMMER, Harm e CARVALHO JR, Washington R. Radio interferometry applied to the observation of cosmic-ray induced extensive air showers. European Physical Journal C, v. 81, 2021Tradução . . Disponível em: https://doi.org/10.1140/epjc/s10052-021-09925-9. Acesso em: 02 nov. 2025.
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      Schoorlemmer, H., & Carvalho Jr, W. R. (2021). Radio interferometry applied to the observation of cosmic-ray induced extensive air showers. European Physical Journal C, 81. doi:10.1140/epjc/s10052-021-09925-9
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      Schoorlemmer H, Carvalho Jr WR. Radio interferometry applied to the observation of cosmic-ray induced extensive air showers [Internet]. European Physical Journal C. 2021 ; 81[citado 2025 nov. 02 ] Available from: https://doi.org/10.1140/epjc/s10052-021-09925-9
    • Vancouver

      Schoorlemmer H, Carvalho Jr WR. Radio interferometry applied to the observation of cosmic-ray induced extensive air showers [Internet]. European Physical Journal C. 2021 ; 81[citado 2025 nov. 02 ] Available from: https://doi.org/10.1140/epjc/s10052-021-09925-9
  • Source: Journal of Instrumentation. Unidades: EEL, IFSC, IF

    Subjects: FÍSICA DE ALTA ENERGIA, RAIOS CÓSMICOS

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      AAB, A. et al. Design, upgrade and characterization of the silicon photomultiplier front-end for the AMIGA detector at the Pierre Auger Observatory. Journal of Instrumentation, v. 16, n. Ja 2021, p. P01026-1-P01026-38, 2021Tradução . . Disponível em: https://doi.org/10.1088/1748-0221/16/01/P01026. Acesso em: 02 nov. 2025.
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      Aab, A., Arbeletche, L. B., Catalani, F., Souza, V. de, Lang, R. G., Martínez-Huerta, H., et al. (2021). Design, upgrade and characterization of the silicon photomultiplier front-end for the AMIGA detector at the Pierre Auger Observatory. Journal of Instrumentation, 16( Ja 2021), P01026-1-P01026-38. doi:10.1088/1748-0221/16/01/P01026
    • NLM

      Aab A, Arbeletche LB, Catalani F, Souza V de, Lang RG, Martínez-Huerta H, Armand JP, Carvalho Junior WR de, Santos EM, Peixoto CJT. Design, upgrade and characterization of the silicon photomultiplier front-end for the AMIGA detector at the Pierre Auger Observatory [Internet]. Journal of Instrumentation. 2021 ; 16( Ja 2021): P01026-1-P01026-38.[citado 2025 nov. 02 ] Available from: https://doi.org/10.1088/1748-0221/16/01/P01026
    • Vancouver

      Aab A, Arbeletche LB, Catalani F, Souza V de, Lang RG, Martínez-Huerta H, Armand JP, Carvalho Junior WR de, Santos EM, Peixoto CJT. Design, upgrade and characterization of the silicon photomultiplier front-end for the AMIGA detector at the Pierre Auger Observatory [Internet]. Journal of Instrumentation. 2021 ; 16( Ja 2021): P01026-1-P01026-38.[citado 2025 nov. 02 ] Available from: https://doi.org/10.1088/1748-0221/16/01/P01026
  • Source: Journal of Instrumentation. Unidades: EEL, IFSC, IF

    Subjects: FÍSICA DE ALTA ENERGIA, RAIOS CÓSMICOS

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      AAB, A. et al. Design and implementation of the AMIGA embedded system for data acquisition. Journal of Instrumentation, v. 16, n. 7, p. T07008-1-T07008-31, 2021Tradução . . Disponível em: https://doi.org/10.1088/1748-0221/16/07/T07008. Acesso em: 02 nov. 2025.
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      Aab, A., Arbeletche, L. B., Catalani, F., Souza, V. de, Lang, R. G., Martínez-Huerta, H., et al. (2021). Design and implementation of the AMIGA embedded system for data acquisition. Journal of Instrumentation, 16( 7), T07008-1-T07008-31. doi:10.1088/1748-0221/16/07/T07008
    • NLM

      Aab A, Arbeletche LB, Catalani F, Souza V de, Lang RG, Martínez-Huerta H, Armand JP, Carvalho Junior WR de, Santos EM, Peixoto CJT. Design and implementation of the AMIGA embedded system for data acquisition [Internet]. Journal of Instrumentation. 2021 ; 16( 7): T07008-1-T07008-31.[citado 2025 nov. 02 ] Available from: https://doi.org/10.1088/1748-0221/16/07/T07008
    • Vancouver

      Aab A, Arbeletche LB, Catalani F, Souza V de, Lang RG, Martínez-Huerta H, Armand JP, Carvalho Junior WR de, Santos EM, Peixoto CJT. Design and implementation of the AMIGA embedded system for data acquisition [Internet]. Journal of Instrumentation. 2021 ; 16( 7): T07008-1-T07008-31.[citado 2025 nov. 02 ] Available from: https://doi.org/10.1088/1748-0221/16/07/T07008
  • Source: Journal of Instrumentation. Unidades: EEL, IFSC, IF

    Subjects: FÍSICA DE ALTA ENERGIA, RAIOS CÓSMICOS

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    • ABNT

      AAB, A. et al. The FRAM robotic telescope for atmospheric monitoring at the Pierre Auger Observatory. Journal of Instrumentation, v. 16, n. 6, p. P06027-1-P06027-25, 2021Tradução . . Disponível em: https://doi.org/10.1088/1748-0221/16/06/P06027. Acesso em: 02 nov. 2025.
    • APA

      Aab, A., Arbeletche, L. B., Catalani, F., Souza, V. de, Lang, R. G., Martínez-Huerta, H., et al. (2021). The FRAM robotic telescope for atmospheric monitoring at the Pierre Auger Observatory. Journal of Instrumentation, 16( 6), P06027-1-P06027-25. doi:10.1088/1748-0221/16/06/P06027
    • NLM

      Aab A, Arbeletche LB, Catalani F, Souza V de, Lang RG, Martínez-Huerta H, Armand JP, Carvalho Junior WR de, Santos EM, Peixoto CJT. The FRAM robotic telescope for atmospheric monitoring at the Pierre Auger Observatory [Internet]. Journal of Instrumentation. 2021 ; 16( 6): P06027-1-P06027-25.[citado 2025 nov. 02 ] Available from: https://doi.org/10.1088/1748-0221/16/06/P06027
    • Vancouver

      Aab A, Arbeletche LB, Catalani F, Souza V de, Lang RG, Martínez-Huerta H, Armand JP, Carvalho Junior WR de, Santos EM, Peixoto CJT. The FRAM robotic telescope for atmospheric monitoring at the Pierre Auger Observatory [Internet]. Journal of Instrumentation. 2021 ; 16( 6): P06027-1-P06027-25.[citado 2025 nov. 02 ] Available from: https://doi.org/10.1088/1748-0221/16/06/P06027
  • Source: Journal of Instrumentation. Unidades: EEL, IFSC, IF

    Subjects: FÍSICA DE ALTA ENERGIA, RAIOS CÓSMICOS

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    • ABNT

      AAB, A. et al. Extraction of the muon signals recorded with the surface detector of the Pierre Auger Observatory using recurrent neural networks. Journal of Instrumentation, v. 16, n. 7, p. P07016-1-P07016-21, 2021Tradução . . Disponível em: https://doi.org/10.1088/1748-0221/16/07/P07016. Acesso em: 02 nov. 2025.
    • APA

      Aab, A., Arbeletche, L. B., Catalani, F., Souza, V. de, Lang, R. G., Martínez-Huerta, H., et al. (2021). Extraction of the muon signals recorded with the surface detector of the Pierre Auger Observatory using recurrent neural networks. Journal of Instrumentation, 16( 7), P07016-1-P07016-21. doi:10.1088/1748-0221/16/07/P07016
    • NLM

      Aab A, Arbeletche LB, Catalani F, Souza V de, Lang RG, Martínez-Huerta H, Armand JP, Carvalho Junior WR de, Santos EM, Peixoto CJT. Extraction of the muon signals recorded with the surface detector of the Pierre Auger Observatory using recurrent neural networks [Internet]. Journal of Instrumentation. 2021 ; 16( 7): P07016-1-P07016-21.[citado 2025 nov. 02 ] Available from: https://doi.org/10.1088/1748-0221/16/07/P07016
    • Vancouver

      Aab A, Arbeletche LB, Catalani F, Souza V de, Lang RG, Martínez-Huerta H, Armand JP, Carvalho Junior WR de, Santos EM, Peixoto CJT. Extraction of the muon signals recorded with the surface detector of the Pierre Auger Observatory using recurrent neural networks [Internet]. Journal of Instrumentation. 2021 ; 16( 7): P07016-1-P07016-21.[citado 2025 nov. 02 ] Available from: https://doi.org/10.1088/1748-0221/16/07/P07016
  • Source: Journal of Instrumentation. Unidades: EEL, IFSC, IF

    Subjects: FÍSICA DE ALTA ENERGIA, RAIOS CÓSMICOS

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    • ABNT

      AAB, A. et al. Calibration of the underground muon detector of the Pierre Auger Observatory. Journal of Instrumentation, v. 16, p. P04003-1-P04003-24, 2021Tradução . . Disponível em: https://doi.org/10.1088/1748-0221/16/04/P04003. Acesso em: 02 nov. 2025.
    • APA

      Aab, A., Arbeletche, L. B., Catalani, F., Souza, V. de, Lang, R. G., Martínez-Huerta, H., et al. (2021). Calibration of the underground muon detector of the Pierre Auger Observatory. Journal of Instrumentation, 16, P04003-1-P04003-24. doi:10.1088/1748-0221/16/04/P04003
    • NLM

      Aab A, Arbeletche LB, Catalani F, Souza V de, Lang RG, Martínez-Huerta H, Armand JP, Carvalho Junior WR de, Santos EM, Peixoto CJT. Calibration of the underground muon detector of the Pierre Auger Observatory [Internet]. Journal of Instrumentation. 2021 ; 16 P04003-1-P04003-24.[citado 2025 nov. 02 ] Available from: https://doi.org/10.1088/1748-0221/16/04/P04003
    • Vancouver

      Aab A, Arbeletche LB, Catalani F, Souza V de, Lang RG, Martínez-Huerta H, Armand JP, Carvalho Junior WR de, Santos EM, Peixoto CJT. Calibration of the underground muon detector of the Pierre Auger Observatory [Internet]. Journal of Instrumentation. 2021 ; 16 P04003-1-P04003-24.[citado 2025 nov. 02 ] Available from: https://doi.org/10.1088/1748-0221/16/04/P04003
  • Source: Nature. Unidade: IF

    Subjects: MATERIAIS MAGNÉTICOS, SUPERCONDUTIVIDADE, TERMODINÂMICA (FÍSICO-QUÍMICA), NANOELETRÔNICA, SPINTRÔNICA

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    • ABNT

      JIMÉNEZ, Julio Antonio Larrea et al. A quantum magnetic analogue to the critical point of water. Nature, v. 592, p. 370–375, 2021Tradução . . Disponível em: https://doi.org/10.1038/s41586-021-03411-8. Acesso em: 02 nov. 2025.
    • APA

      Jiménez, J. A. L., Crone, S. P. G., Fogh, E., Zayed, M. E., Lortz, R., Pomjakushina, E., et al. (2021). A quantum magnetic analogue to the critical point of water. Nature, 592, 370–375. doi:10.1038/s41586-021-03411-8
    • NLM

      Jiménez JAL, Crone SPG, Fogh E, Zayed ME, Lortz R, Pomjakushina E, Conder K, Läuchli AM, Weber L, Wessel S, Honecker A, Normand B, Rüegg C, Corboz P, Ronnow HM, Mila F. A quantum magnetic analogue to the critical point of water [Internet]. Nature. 2021 ; 592 370–375.[citado 2025 nov. 02 ] Available from: https://doi.org/10.1038/s41586-021-03411-8
    • Vancouver

      Jiménez JAL, Crone SPG, Fogh E, Zayed ME, Lortz R, Pomjakushina E, Conder K, Läuchli AM, Weber L, Wessel S, Honecker A, Normand B, Rüegg C, Corboz P, Ronnow HM, Mila F. A quantum magnetic analogue to the critical point of water [Internet]. Nature. 2021 ; 592 370–375.[citado 2025 nov. 02 ] Available from: https://doi.org/10.1038/s41586-021-03411-8

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