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KAGERER, Philipp e MORELHÃO, Sergio L. Two-dimensional ferromagnetic extension of a topological insulator. Physical Review Research, v. 5, n. 2, 2023Tradução . . Disponível em: https://doi.org/10.1103/PhysRevResearch.5.L022019. Acesso em: 04 nov. 2025.
APA
Kagerer, P., & Morelhão, S. L. (2023). Two-dimensional ferromagnetic extension of a topological insulator. Physical Review Research, 5( 2). doi:10.1103/PhysRevResearch.5.L022019
NLM
Kagerer P, Morelhão SL. Two-dimensional ferromagnetic extension of a topological insulator [Internet]. Physical Review Research. 2023 ; 5( 2):[citado 2025 nov. 04 ] Available from: https://doi.org/10.1103/PhysRevResearch.5.L022019
Vancouver
Kagerer P, Morelhão SL. Two-dimensional ferromagnetic extension of a topological insulator [Internet]. Physical Review Research. 2023 ; 5( 2):[citado 2025 nov. 04 ] Available from: https://doi.org/10.1103/PhysRevResearch.5.L022019
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HIRAYAMA, Renan Nobuyuki et al. Cumulants of conserved charges in hydrodynamic simulations. Physical Review C, v. 107, n. 2, p. 10 , 2023Tradução . . Disponível em: https://doi.org/10.1103/PhysRevC.107.024910. Acesso em: 04 nov. 2025.
APA
Hirayama, R. N., Grassi, F. M. B. S., Serenone, W. M., & Ollitrault, J. -Y. (2023). Cumulants of conserved charges in hydrodynamic simulations. Physical Review C, 107( 2), 10 . doi:10.1103/PhysRevC.107.024910
NLM
Hirayama RN, Grassi FMBS, Serenone WM, Ollitrault J-Y. Cumulants of conserved charges in hydrodynamic simulations [Internet]. Physical Review C. 2023 ; 107( 2): 10 .[citado 2025 nov. 04 ] Available from: https://doi.org/10.1103/PhysRevC.107.024910
Vancouver
Hirayama RN, Grassi FMBS, Serenone WM, Ollitrault J-Y. Cumulants of conserved charges in hydrodynamic simulations [Internet]. Physical Review C. 2023 ; 107( 2): 10 .[citado 2025 nov. 04 ] Available from: https://doi.org/10.1103/PhysRevC.107.024910
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DOUNGMO, Giscard et al. How do layered double hydroxides evolve?: First in situ insights into their synthesis processes. RSC Advances, v. 12, n. 52, p. 33469-33478, 2022Tradução . . Disponível em: https://doi.org/10.1039/D2RA05269E. Acesso em: 04 nov. 2025.
APA
Doungmo, G., Morais, A., Mustafa, D., kamgaing, T., Njanja, E., Etter, M., et al. (2022). How do layered double hydroxides evolve?: First in situ insights into their synthesis processes. RSC Advances, 12( 52), 33469-33478. doi:10.1039/D2RA05269E
NLM
Doungmo G, Morais A, Mustafa D, kamgaing T, Njanja E, Etter M, Tonle IK, Terraschke H. How do layered double hydroxides evolve?: First in situ insights into their synthesis processes [Internet]. RSC Advances. 2022 ; 12( 52): 33469-33478.[citado 2025 nov. 04 ] Available from: https://doi.org/10.1039/D2RA05269E
Vancouver
Doungmo G, Morais A, Mustafa D, kamgaing T, Njanja E, Etter M, Tonle IK, Terraschke H. How do layered double hydroxides evolve?: First in situ insights into their synthesis processes [Internet]. RSC Advances. 2022 ; 12( 52): 33469-33478.[citado 2025 nov. 04 ] Available from: https://doi.org/10.1039/D2RA05269E
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PENACCHIO, Rafaela Felix da Silva et al. Statistical modeling of epitaxial thin films of an intrinsic antiferromagnetic topological insulator. Thin Solid Films, v. 750, 2022Tradução . . Disponível em: https://doi.org/10.1016/j.tsf.2022.139183. Acesso em: 04 nov. 2025.
APA
Penacchio, R. F. da S., Fornari, C. I., Camillo, Y. G., Kagerer, P., Buchberger, S., Kamp, M., et al. (2022). Statistical modeling of epitaxial thin films of an intrinsic antiferromagnetic topological insulator. Thin Solid Films, 750. doi:10.1016/j.tsf.2022.139183
NLM
Penacchio RF da S, Fornari CI, Camillo YG, Kagerer P, Buchberger S, Kamp M, Bentmann H, Reinert F, Morelhão SL. Statistical modeling of epitaxial thin films of an intrinsic antiferromagnetic topological insulator [Internet]. Thin Solid Films. 2022 ; 750[citado 2025 nov. 04 ] Available from: https://doi.org/10.1016/j.tsf.2022.139183
Vancouver
Penacchio RF da S, Fornari CI, Camillo YG, Kagerer P, Buchberger S, Kamp M, Bentmann H, Reinert F, Morelhão SL. Statistical modeling of epitaxial thin films of an intrinsic antiferromagnetic topological insulator [Internet]. Thin Solid Films. 2022 ; 750[citado 2025 nov. 04 ] Available from: https://doi.org/10.1016/j.tsf.2022.139183
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HEROLD, Laura e FERREIRA, Elisa Gouvêa Mauricio e KOMATSU, Eiichiro. New Constraint on Early Dark Energy from Planck and BOSS Data Using the Profile Likelihood. Astrophysical Journal Letters, v. 929, n. 1, 2022Tradução . . Disponível em: https://doi.org/10.3847/2041-8213/ac63a3. Acesso em: 04 nov. 2025.
APA
Herold, L., Ferreira, E. G. M., & Komatsu, E. (2022). New Constraint on Early Dark Energy from Planck and BOSS Data Using the Profile Likelihood. Astrophysical Journal Letters, 929( 1). doi:10.3847/2041-8213/ac63a3
NLM
Herold L, Ferreira EGM, Komatsu E. New Constraint on Early Dark Energy from Planck and BOSS Data Using the Profile Likelihood [Internet]. Astrophysical Journal Letters. 2022 ; 929( 1):[citado 2025 nov. 04 ] Available from: https://doi.org/10.3847/2041-8213/ac63a3
Vancouver
Herold L, Ferreira EGM, Komatsu E. New Constraint on Early Dark Energy from Planck and BOSS Data Using the Profile Likelihood [Internet]. Astrophysical Journal Letters. 2022 ; 929( 1):[citado 2025 nov. 04 ] Available from: https://doi.org/10.3847/2041-8213/ac63a3
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PACAKOVA, Barbara et al. Large bandgap insulating superior clay nanosheets. MRS Bulletin, v. 47, p. 06 , 2022Tradução . . Disponível em: https://doi.org/10.1557/s43577-022-00349-8. Acesso em: 04 nov. 2025.
APA
Pacakova, B., Vullum, P. E., Kirch, A., Breu, J., Miranda, C. R., & Fossum, J. O. (2022). Large bandgap insulating superior clay nanosheets. MRS Bulletin, 47, 06 . doi:10.1557/s43577-022-00349-8
NLM
Pacakova B, Vullum PE, Kirch A, Breu J, Miranda CR, Fossum JO. Large bandgap insulating superior clay nanosheets [Internet]. MRS Bulletin. 2022 ; 47 06 .[citado 2025 nov. 04 ] Available from: https://doi.org/10.1557/s43577-022-00349-8
Vancouver
Pacakova B, Vullum PE, Kirch A, Breu J, Miranda CR, Fossum JO. Large bandgap insulating superior clay nanosheets [Internet]. MRS Bulletin. 2022 ; 47 06 .[citado 2025 nov. 04 ] Available from: https://doi.org/10.1557/s43577-022-00349-8
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PATADE, Sachin et al. Empirical Formulation for Multiple Groups of Primary Biological Ice Nucleating Particles from Field Observations over Amazonia. Journal of the Atmospheric Sciences, v. 78, n. 7, p. 2195-2220, 2021Tradução . . Disponível em: https://doi.org/10.1175/JAS-D-20-0096.1. Acesso em: 04 nov. 2025.
APA
Patade, S., Phillips, V. T. J., Amato, P., Bingemer, H. G., Burrows, S. M., DeMott, P. J., et al. (2021). Empirical Formulation for Multiple Groups of Primary Biological Ice Nucleating Particles from Field Observations over Amazonia. Journal of the Atmospheric Sciences, 78( 7), 2195-2220. doi:10.1175/JAS-D-20-0096.1
NLM
Patade S, Phillips VTJ, Amato P, Bingemer HG, Burrows SM, DeMott PJ, Goncalves F, Knopf DA, Morris CE, Alwmark C, Artaxo P, Poehlker C, Schrod J, Weber B. Empirical Formulation for Multiple Groups of Primary Biological Ice Nucleating Particles from Field Observations over Amazonia [Internet]. Journal of the Atmospheric Sciences. 2021 ; 78( 7): 2195-2220.[citado 2025 nov. 04 ] Available from: https://doi.org/10.1175/JAS-D-20-0096.1
Vancouver
Patade S, Phillips VTJ, Amato P, Bingemer HG, Burrows SM, DeMott PJ, Goncalves F, Knopf DA, Morris CE, Alwmark C, Artaxo P, Poehlker C, Schrod J, Weber B. Empirical Formulation for Multiple Groups of Primary Biological Ice Nucleating Particles from Field Observations over Amazonia [Internet]. Journal of the Atmospheric Sciences. 2021 ; 78( 7): 2195-2220.[citado 2025 nov. 04 ] Available from: https://doi.org/10.1175/JAS-D-20-0096.1
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LODE, A. U. J. et al. Crystallization, fermionization, and cavity-induced phase transitions of Bose-Einstein condensates. High Performance Computing in Science and Engineering '19: Transactions of the High Performance Computing Center, Stuttgart (HLRS) 2019. Tradução . Cham: Springer, 2021. p. 599 . Disponível em: https://doi.org/10.1007/978-3-030-66792-4_5. Acesso em: 04 nov. 2025.
APA
Lode, A. U. J., Alon, O. E., Cederbaum, L. E., Chakrabarti, B., Chatterjee, B., Chitra, R., et al. (2021). Crystallization, fermionization, and cavity-induced phase transitions of Bose-Einstein condensates. In High Performance Computing in Science and Engineering '19: Transactions of the High Performance Computing Center, Stuttgart (HLRS) 2019 (p. 599 ). Cham: Springer. doi:10.1007/978-3-030-66792-4_5
NLM
Lode AUJ, Alon OE, Cederbaum LE, Chakrabarti B, Chatterjee B, Chitra R, Gammal A, Haldar SK, Lekava ML, Lévêque C, Lin R, Molignini P, Papariello L, Tsatsos M. Crystallization, fermionization, and cavity-induced phase transitions of Bose-Einstein condensates [Internet]. In: High Performance Computing in Science and Engineering '19: Transactions of the High Performance Computing Center, Stuttgart (HLRS) 2019. Cham: Springer; 2021. p. 599 .[citado 2025 nov. 04 ] Available from: https://doi.org/10.1007/978-3-030-66792-4_5
Vancouver
Lode AUJ, Alon OE, Cederbaum LE, Chakrabarti B, Chatterjee B, Chitra R, Gammal A, Haldar SK, Lekava ML, Lévêque C, Lin R, Molignini P, Papariello L, Tsatsos M. Crystallization, fermionization, and cavity-induced phase transitions of Bose-Einstein condensates [Internet]. In: High Performance Computing in Science and Engineering '19: Transactions of the High Performance Computing Center, Stuttgart (HLRS) 2019. Cham: Springer; 2021. p. 599 .[citado 2025 nov. 04 ] Available from: https://doi.org/10.1007/978-3-030-66792-4_5
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VOIVODIC, Rodrigo e BARREIRA, Alexandre. Responses of Halo Occupation Distributions: a new ingredient in the halo model & the impact on galaxy bias. Journal of Cosmology and Astroparticle Physics (JCAP), 2021Tradução . . Disponível em: https://doi.org/10.1088/1475-7516/2021/05/069. Acesso em: 04 nov. 2025.
APA
Voivodic, R., & Barreira, A. (2021). Responses of Halo Occupation Distributions: a new ingredient in the halo model & the impact on galaxy bias. Journal of Cosmology and Astroparticle Physics (JCAP). doi:10.1088/1475-7516/2021/05/069
NLM
Voivodic R, Barreira A. Responses of Halo Occupation Distributions: a new ingredient in the halo model & the impact on galaxy bias [Internet]. Journal of Cosmology and Astroparticle Physics (JCAP). 2021 ;[citado 2025 nov. 04 ] Available from: https://doi.org/10.1088/1475-7516/2021/05/069
Vancouver
Voivodic R, Barreira A. Responses of Halo Occupation Distributions: a new ingredient in the halo model & the impact on galaxy bias [Internet]. Journal of Cosmology and Astroparticle Physics (JCAP). 2021 ;[citado 2025 nov. 04 ] Available from: https://doi.org/10.1088/1475-7516/2021/05/069
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SAVINA, P. et al. Search for neutrino and photon primary particles in the EeV energy range with the Pierre Auger Observatory. Il Nuovo Cimento C. Bologna: Società Italiana di Fisica - SIF. Disponível em: https://doi.org/10.1393/ncc/i2020-20099-x. Acesso em: 04 nov. 2025. , 2020
APA
Savina, P., Albuquerque, I. F. da M. e, Catalani, F., Souza, V. de, Kemmerich, N., Lang, R. G., et al. (2020). Search for neutrino and photon primary particles in the EeV energy range with the Pierre Auger Observatory. Il Nuovo Cimento C. Bologna: Società Italiana di Fisica - SIF. doi:10.1393/ncc/i2020-20099-x
NLM
Savina P, Albuquerque IF da M e, Catalani F, Souza V de, Kemmerich N, Lang RG, Martínez-Huerta H, Prado RR, Carvalho WR de, Santos EM, Peixoto CJT. Search for neutrino and photon primary particles in the EeV energy range with the Pierre Auger Observatory [Internet]. Il Nuovo Cimento C. 2020 ; 43( 2/3): 99-1-99-3.[citado 2025 nov. 04 ] Available from: https://doi.org/10.1393/ncc/i2020-20099-x
Vancouver
Savina P, Albuquerque IF da M e, Catalani F, Souza V de, Kemmerich N, Lang RG, Martínez-Huerta H, Prado RR, Carvalho WR de, Santos EM, Peixoto CJT. Search for neutrino and photon primary particles in the EeV energy range with the Pierre Auger Observatory [Internet]. Il Nuovo Cimento C. 2020 ; 43( 2/3): 99-1-99-3.[citado 2025 nov. 04 ] Available from: https://doi.org/10.1393/ncc/i2020-20099-x