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Brazilian Journal of Physics. . New York: Springer. Disponível em: https://repositorio.usp.br/directbitstream/edc19bf0-03bb-4d62-9e13-882f13cb3d58/PROD037237_3254619.pdf. Acesso em: 06 nov. 2025. , 2025
APA
Brazilian Journal of Physics. (2025). Brazilian Journal of Physics. New York: Springer. Recuperado de https://repositorio.usp.br/directbitstream/edc19bf0-03bb-4d62-9e13-882f13cb3d58/PROD037237_3254619.pdf
NLM
Brazilian Journal of Physics [Internet]. 2025 ;[citado 2025 nov. 06 ] Available from: https://repositorio.usp.br/directbitstream/edc19bf0-03bb-4d62-9e13-882f13cb3d58/PROD037237_3254619.pdf
Vancouver
Brazilian Journal of Physics [Internet]. 2025 ;[citado 2025 nov. 06 ] Available from: https://repositorio.usp.br/directbitstream/edc19bf0-03bb-4d62-9e13-882f13cb3d58/PROD037237_3254619.pdf
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LOTFOLLAHI, Zahra et al. Oxidative stress and lipid profile during acute phase of COVID-19 infection and after recovery: evidence of a sequel in LDL. Brazilian Journal of Physics, v. 55, n. 2, 2025Tradução . . Disponível em: https://observatorio.fm.usp.br/handle/OPI/82704. Acesso em: 06 nov. 2025.
APA
Lotfollahi, Z., Neres, L. dos S., Mathias, A. F., Freitas, M. C. P. de, Cartolano, F. de C., Varella, A. C., et al. (2025). Oxidative stress and lipid profile during acute phase of COVID-19 infection and after recovery: evidence of a sequel in LDL. Brazilian Journal of Physics, 55( 2). doi:10.1007/s13538-024-01687-5
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Lotfollahi Z, Neres L dos S, Mathias AF, Freitas MCP de, Cartolano F de C, Varella AC, Lotufo PA, Goulart AC, Damasceno NRT, Andrade JB de, Figueiredo Neto AM, Fock RA. Oxidative stress and lipid profile during acute phase of COVID-19 infection and after recovery: evidence of a sequel in LDL [Internet]. Brazilian Journal of Physics. 2025 ; 55( 2):[citado 2025 nov. 06 ] Available from: https://observatorio.fm.usp.br/handle/OPI/82704
Vancouver
Lotfollahi Z, Neres L dos S, Mathias AF, Freitas MCP de, Cartolano F de C, Varella AC, Lotufo PA, Goulart AC, Damasceno NRT, Andrade JB de, Figueiredo Neto AM, Fock RA. Oxidative stress and lipid profile during acute phase of COVID-19 infection and after recovery: evidence of a sequel in LDL [Internet]. Brazilian Journal of Physics. 2025 ; 55( 2):[citado 2025 nov. 06 ] Available from: https://observatorio.fm.usp.br/handle/OPI/82704
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CUPPO, Fábio Luiz Sant'Anna e SANTISTEBAN, Angela Rocio Niño e FIGUEIREDO NETO, Antonio Martins. Thermal nonlinear optical responses of native and oxidized low-density lipoprotein solutions at visible and infra-red wavelengths: complementary approaches. Journal of the Optical Society of America B, v. 41, n. 7, p. 1522-1532, 2024Tradução . . Disponível em: https://doi.org/10.1364/JOSAB.514786. Acesso em: 06 nov. 2025.
APA
Cuppo, F. L. S. 'A., Santisteban, A. R. N., & Figueiredo Neto, A. M. (2024). Thermal nonlinear optical responses of native and oxidized low-density lipoprotein solutions at visible and infra-red wavelengths: complementary approaches. Journal of the Optical Society of America B, 41( 7), 1522-1532. doi:10.1364/JOSAB.514786
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Cuppo FLS'A, Santisteban ARN, Figueiredo Neto AM. Thermal nonlinear optical responses of native and oxidized low-density lipoprotein solutions at visible and infra-red wavelengths: complementary approaches [Internet]. Journal of the Optical Society of America B. 2024 ; 41( 7): 1522-1532.[citado 2025 nov. 06 ] Available from: https://doi.org/10.1364/JOSAB.514786
Vancouver
Cuppo FLS'A, Santisteban ARN, Figueiredo Neto AM. Thermal nonlinear optical responses of native and oxidized low-density lipoprotein solutions at visible and infra-red wavelengths: complementary approaches [Internet]. Journal of the Optical Society of America B. 2024 ; 41( 7): 1522-1532.[citado 2025 nov. 06 ] Available from: https://doi.org/10.1364/JOSAB.514786
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TCHAKALOVA, Vera e OLIVEIRA, Cristiano Luis Pinto de e FIGUEIREDO NETO, Antonio Martins. New Lyotropic Complex Fluid Structured in Sheets of Ellipsoidal Micelles Solubilizing Fragrance Oils. ACS Omega, v. 8; n. 32; p. 29568-29584, 2023Tradução . . Disponível em: https://doi.org/10.1021/acsomega.3c03500. Acesso em: 06 nov. 2025.
APA
Tchakalova, V., Oliveira, C. L. P. de, & Figueiredo Neto, A. M. (2023). New Lyotropic Complex Fluid Structured in Sheets of Ellipsoidal Micelles Solubilizing Fragrance Oils. ACS Omega, 8; n. 32; p. 29568-29584. doi:10.1021/acsomega.3c03500
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Tchakalova V, Oliveira CLP de, Figueiredo Neto AM. New Lyotropic Complex Fluid Structured in Sheets of Ellipsoidal Micelles Solubilizing Fragrance Oils [Internet]. ACS Omega. 2023 ; 8; n. 32; p. 29568-29584[citado 2025 nov. 06 ] Available from: https://doi.org/10.1021/acsomega.3c03500
Vancouver
Tchakalova V, Oliveira CLP de, Figueiredo Neto AM. New Lyotropic Complex Fluid Structured in Sheets of Ellipsoidal Micelles Solubilizing Fragrance Oils [Internet]. ACS Omega. 2023 ; 8; n. 32; p. 29568-29584[citado 2025 nov. 06 ] Available from: https://doi.org/10.1021/acsomega.3c03500
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MACHADO, Luciene Oliveira e REIS, Dennys e FIGUEIREDO NETO, Antonio Martins. The soret coefficient of human low-density lipoprotein in solution: a thermophilic behavior. European Physical Journal E, The, v. 46, n. 12, 2023Tradução . . Disponível em: https://doi.org/10.1140/epje/s10189-023-00377-5. Acesso em: 06 nov. 2025.
APA
Machado, L. O., Reis, D., & Figueiredo Neto, A. M. (2023). The soret coefficient of human low-density lipoprotein in solution: a thermophilic behavior. European Physical Journal E, The, 46( 12). doi:10.1140/epje/s10189-023-00377-5
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Machado LO, Reis D, Figueiredo Neto AM. The soret coefficient of human low-density lipoprotein in solution: a thermophilic behavior [Internet]. European Physical Journal E, The. 2023 ; 46( 12):[citado 2025 nov. 06 ] Available from: https://doi.org/10.1140/epje/s10189-023-00377-5
Vancouver
Machado LO, Reis D, Figueiredo Neto AM. The soret coefficient of human low-density lipoprotein in solution: a thermophilic behavior [Internet]. European Physical Journal E, The. 2023 ; 46( 12):[citado 2025 nov. 06 ] Available from: https://doi.org/10.1140/epje/s10189-023-00377-5
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LOTFOLLAHI, Zahra et al. Changes in lipoproteins associated with lipid lowering and antiplatelet strategies in patients with acute myocardial infarction. Plos One, 2022Tradução . . Disponível em: https://doi.org/10.1371/journal.pone.0273292. Acesso em: 06 nov. 2025.
APA
Lotfollahi, Z., Mello, A. P. de Q., Fonseca, F. A. H., Machado, L. O., Mathias, A. F., Izar, M. C., et al. (2022). Changes in lipoproteins associated with lipid lowering and antiplatelet strategies in patients with acute myocardial infarction. Plos One. doi:10.1371/journal.pone.0273292
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Lotfollahi Z, Mello AP de Q, Fonseca FAH, Machado LO, Mathias AF, Izar MC, Damasceno NRT, Oliveira CLP, Figueiredo Neto AM. Changes in lipoproteins associated with lipid lowering and antiplatelet strategies in patients with acute myocardial infarction [Internet]. Plos One. 2022 ;[citado 2025 nov. 06 ] Available from: https://doi.org/10.1371/journal.pone.0273292
Vancouver
Lotfollahi Z, Mello AP de Q, Fonseca FAH, Machado LO, Mathias AF, Izar MC, Damasceno NRT, Oliveira CLP, Figueiredo Neto AM. Changes in lipoproteins associated with lipid lowering and antiplatelet strategies in patients with acute myocardial infarction [Internet]. Plos One. 2022 ;[citado 2025 nov. 06 ] Available from: https://doi.org/10.1371/journal.pone.0273292
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FRANCO, Leandro Rezende et al. Molecular Dynamics Approach to Calculate the Thermodiffusion (Soret and Seebeck) Coefficients of Salts in Aqueous Solutions. Journal of Chemical Theory and Computation, v. 17, n. 6, p. 3539-3553, 2021Tradução . . Disponível em: https://doi.org/10.1021/acs.jctc.1c00116. Acesso em: 06 nov. 2025.
APA
Franco, L. R., Sehnem, A., Figueiredo Neto, A. M., & Coutinho, K. R. (2021). Molecular Dynamics Approach to Calculate the Thermodiffusion (Soret and Seebeck) Coefficients of Salts in Aqueous Solutions. Journal of Chemical Theory and Computation, 17( 6), 3539-3553. doi:10.1021/acs.jctc.1c00116
NLM
Franco LR, Sehnem A, Figueiredo Neto AM, Coutinho KR. Molecular Dynamics Approach to Calculate the Thermodiffusion (Soret and Seebeck) Coefficients of Salts in Aqueous Solutions [Internet]. Journal of Chemical Theory and Computation. 2021 ; 17( 6): 3539-3553.[citado 2025 nov. 06 ] Available from: https://doi.org/10.1021/acs.jctc.1c00116
Vancouver
Franco LR, Sehnem A, Figueiredo Neto AM, Coutinho KR. Molecular Dynamics Approach to Calculate the Thermodiffusion (Soret and Seebeck) Coefficients of Salts in Aqueous Solutions [Internet]. Journal of Chemical Theory and Computation. 2021 ; 17( 6): 3539-3553.[citado 2025 nov. 06 ] Available from: https://doi.org/10.1021/acs.jctc.1c00116
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GONÇALVES, Eduardo Sell et al. Two-photon absorption by spherical and cubic magnetic nanoparticles: external magnetic field effects on ultrafast and magnitude measurements. 2020, Anais.. Bellingham: International Society for Optical Engineering - SPIE, 2020. Disponível em: https://spie.org/PWO/conferencedetails/quantum-dots-nanostructures-and-quantum-materials#2546036. Acesso em: 06 nov. 2025.
APA
Gonçalves, E. S., Araújo, W. W. R. de, Parekh, K., Siqueira, J., Mendonça, C. R., Figueiredo Neto, A. M., & De Boni, L. (2020). Two-photon absorption by spherical and cubic magnetic nanoparticles: external magnetic field effects on ultrafast and magnitude measurements. In Abstracts. Bellingham: International Society for Optical Engineering - SPIE. Recuperado de https://spie.org/PWO/conferencedetails/quantum-dots-nanostructures-and-quantum-materials#2546036
NLM
Gonçalves ES, Araújo WWR de, Parekh K, Siqueira J, Mendonça CR, Figueiredo Neto AM, De Boni L. Two-photon absorption by spherical and cubic magnetic nanoparticles: external magnetic field effects on ultrafast and magnitude measurements [Internet]. Abstracts. 2020 ;[citado 2025 nov. 06 ] Available from: https://spie.org/PWO/conferencedetails/quantum-dots-nanostructures-and-quantum-materials#2546036
Vancouver
Gonçalves ES, Araújo WWR de, Parekh K, Siqueira J, Mendonça CR, Figueiredo Neto AM, De Boni L. Two-photon absorption by spherical and cubic magnetic nanoparticles: external magnetic field effects on ultrafast and magnitude measurements [Internet]. Abstracts. 2020 ;[citado 2025 nov. 06 ] Available from: https://spie.org/PWO/conferencedetails/quantum-dots-nanostructures-and-quantum-materials#2546036
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GONÇALVES, Eduardo Sanches et al. Influence of magnetic field on the two-photon absorption and Hyper-Rayleigh scattering of manganese-zinc ferrite nanoparticles. Journal of Physical Chemistry C, v. 124, n. 12, p. 6784-6795, 2020Tradução . . Disponível em: https://doi.org/10.1021/acs.jpcc.9b10208. Acesso em: 06 nov. 2025.
APA
Gonçalves, E. S., Cocca, L. H. Z., Araújo, W. W. R. de, Parekh, K., Oliveira, C. L. P. de, Siqueira, J. P., et al. (2020). Influence of magnetic field on the two-photon absorption and Hyper-Rayleigh scattering of manganese-zinc ferrite nanoparticles. Journal of Physical Chemistry C, 124( 12), 6784-6795. doi:10.1021/acs.jpcc.9b10208
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Gonçalves ES, Cocca LHZ, Araújo WWR de, Parekh K, Oliveira CLP de, Siqueira JP, Mendonça CR, De Boni L, Figueiredo Neto AM. Influence of magnetic field on the two-photon absorption and Hyper-Rayleigh scattering of manganese-zinc ferrite nanoparticles [Internet]. Journal of Physical Chemistry C. 2020 ; 124( 12): 6784-6795.[citado 2025 nov. 06 ] Available from: https://doi.org/10.1021/acs.jpcc.9b10208
Vancouver
Gonçalves ES, Cocca LHZ, Araújo WWR de, Parekh K, Oliveira CLP de, Siqueira JP, Mendonça CR, De Boni L, Figueiredo Neto AM. Influence of magnetic field on the two-photon absorption and Hyper-Rayleigh scattering of manganese-zinc ferrite nanoparticles [Internet]. Journal of Physical Chemistry C. 2020 ; 124( 12): 6784-6795.[citado 2025 nov. 06 ] Available from: https://doi.org/10.1021/acs.jpcc.9b10208
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GONÇALVES, Eduardo Sell et al. Determination of the first-order hyperpolarizability anisotropy of spherical and cubic magnetic nanoparticles. 2020, Anais.. Bellingham: International Society for Optical Engineering - SPIE, 2020. Disponível em: https://spie.org/PWO/conferencedetails/quantum-dots-nanostructures-and-quantum-materials#2545156. Acesso em: 06 nov. 2025.
APA
Gonçalves, E. S., Cocca, L. H. Z., Araújo, W. W. R. de, Parekh, K., Oliveira, C. L. P. de, Figueiredo Neto, A. M., & De Boni, L. (2020). Determination of the first-order hyperpolarizability anisotropy of spherical and cubic magnetic nanoparticles. In Abstracts. Bellingham: International Society for Optical Engineering - SPIE. Recuperado de https://spie.org/PWO/conferencedetails/quantum-dots-nanostructures-and-quantum-materials#2545156
NLM
Gonçalves ES, Cocca LHZ, Araújo WWR de, Parekh K, Oliveira CLP de, Figueiredo Neto AM, De Boni L. Determination of the first-order hyperpolarizability anisotropy of spherical and cubic magnetic nanoparticles [Internet]. Abstracts. 2020 ;[citado 2025 nov. 06 ] Available from: https://spie.org/PWO/conferencedetails/quantum-dots-nanostructures-and-quantum-materials#2545156
Vancouver
Gonçalves ES, Cocca LHZ, Araújo WWR de, Parekh K, Oliveira CLP de, Figueiredo Neto AM, De Boni L. Determination of the first-order hyperpolarizability anisotropy of spherical and cubic magnetic nanoparticles [Internet]. Abstracts. 2020 ;[citado 2025 nov. 06 ] Available from: https://spie.org/PWO/conferencedetails/quantum-dots-nanostructures-and-quantum-materials#2545156
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GONÇALVES, E. S. et al. Hyper-Rayleigh scattering measurements of magnetite nanoparticles: determination of the first order hyperpolarizability anisotropy. Proceedings of SPIE. Bellingham: International Society for Optical Engineering - SPIE. Disponível em: https://doi.org/10.1117/12.2510249. Acesso em: 06 nov. 2025. , 2019
APA
Gonçalves, E. S., Fonseca, R. D., De Boni, L., & Figueiredo Neto, A. M. (2019). Hyper-Rayleigh scattering measurements of magnetite nanoparticles: determination of the first order hyperpolarizability anisotropy. Proceedings of SPIE. Bellingham: International Society for Optical Engineering - SPIE. doi:10.1117/12.2510249
NLM
Gonçalves ES, Fonseca RD, De Boni L, Figueiredo Neto AM. Hyper-Rayleigh scattering measurements of magnetite nanoparticles: determination of the first order hyperpolarizability anisotropy [Internet]. Proceedings of SPIE. 2019 ; 10941 109410G-1-109410G-13.[citado 2025 nov. 06 ] Available from: https://doi.org/10.1117/12.2510249
Vancouver
Gonçalves ES, Fonseca RD, De Boni L, Figueiredo Neto AM. Hyper-Rayleigh scattering measurements of magnetite nanoparticles: determination of the first order hyperpolarizability anisotropy [Internet]. Proceedings of SPIE. 2019 ; 10941 109410G-1-109410G-13.[citado 2025 nov. 06 ] Available from: https://doi.org/10.1117/12.2510249
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ARAUJO, W. W. R. et al. Magnetic, structural and cation distribution studies on FeO center dot Fe(2-x)NdxO3 (x=0.00, 0.02, 0.04, 0.06 and 0.1) nanoparticles. EUROPEAN PHYSICAL JOURNAL E, v. 42, n. 12, 2019Tradução . . Disponível em: https://doi.org/10.1140/epje/i2019-11917-5. Acesso em: 06 nov. 2025.
APA
Araujo, W. W. R., Araujo, J. F. D. F., Oliveira, C. L. P., Brito, G. E. de S., & Figueiredo Neto, A. M. (2019). Magnetic, structural and cation distribution studies on FeO center dot Fe(2-x)NdxO3 (x=0.00, 0.02, 0.04, 0.06 and 0.1) nanoparticles. EUROPEAN PHYSICAL JOURNAL E, 42( 12). doi:10.1140/epje/i2019-11917-5
NLM
Araujo WWR, Araujo JFDF, Oliveira CLP, Brito GE de S, Figueiredo Neto AM. Magnetic, structural and cation distribution studies on FeO center dot Fe(2-x)NdxO3 (x=0.00, 0.02, 0.04, 0.06 and 0.1) nanoparticles [Internet]. EUROPEAN PHYSICAL JOURNAL E. 2019 ; 42( 12):[citado 2025 nov. 06 ] Available from: https://doi.org/10.1140/epje/i2019-11917-5
Vancouver
Araujo WWR, Araujo JFDF, Oliveira CLP, Brito GE de S, Figueiredo Neto AM. Magnetic, structural and cation distribution studies on FeO center dot Fe(2-x)NdxO3 (x=0.00, 0.02, 0.04, 0.06 and 0.1) nanoparticles [Internet]. EUROPEAN PHYSICAL JOURNAL E. 2019 ; 42( 12):[citado 2025 nov. 06 ] Available from: https://doi.org/10.1140/epje/i2019-11917-5
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GONÇALVES, Eduardo Sell et al. Nanoparticle shape effect on the determination of the first-order hyperpolarizability anisotropy of magnetic colloids. 2019, Anais.. Warrendale: Materials Research Society - MRS, 2019. Disponível em: https://www.mrs.org/docs/default-source/meetings-events/fall-meetings/2019/abstract-book.pdf?sfvrsn=be3a250d_4. Acesso em: 06 nov. 2025.
APA
Gonçalves, E. S., Cocca, L. H. Z., Wlysses, W., Parekh, K., Oliveira, C., Figueiredo Neto, A. M., & De Boni, L. (2019). Nanoparticle shape effect on the determination of the first-order hyperpolarizability anisotropy of magnetic colloids. In Abstract book. Warrendale: Materials Research Society - MRS. Recuperado de https://www.mrs.org/docs/default-source/meetings-events/fall-meetings/2019/abstract-book.pdf?sfvrsn=be3a250d_4
NLM
Gonçalves ES, Cocca LHZ, Wlysses W, Parekh K, Oliveira C, Figueiredo Neto AM, De Boni L. Nanoparticle shape effect on the determination of the first-order hyperpolarizability anisotropy of magnetic colloids [Internet]. Abstract book. 2019 ;[citado 2025 nov. 06 ] Available from: https://www.mrs.org/docs/default-source/meetings-events/fall-meetings/2019/abstract-book.pdf?sfvrsn=be3a250d_4
Vancouver
Gonçalves ES, Cocca LHZ, Wlysses W, Parekh K, Oliveira C, Figueiredo Neto AM, De Boni L. Nanoparticle shape effect on the determination of the first-order hyperpolarizability anisotropy of magnetic colloids [Internet]. Abstract book. 2019 ;[citado 2025 nov. 06 ] Available from: https://www.mrs.org/docs/default-source/meetings-events/fall-meetings/2019/abstract-book.pdf?sfvrsn=be3a250d_4
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BATALIOTO, Fernando e FIGUEIREDO NETO, Antonio Martins. Random Energy Barrier Model for AC Electrode Conductivity. Journal of Physical Chemistry C, v. 123, n. 11, p. 6650-6654, 2019Tradução . . Disponível em: https://doi.org/10.1021/acs.jpcc.9b00294. Acesso em: 06 nov. 2025.
APA
Batalioto, F., & Figueiredo Neto, A. M. (2019). Random Energy Barrier Model for AC Electrode Conductivity. Journal of Physical Chemistry C, 123( 11), 6650-6654. doi:10.1021/acs.jpcc.9b00294
NLM
Batalioto F, Figueiredo Neto AM. Random Energy Barrier Model for AC Electrode Conductivity [Internet]. Journal of Physical Chemistry C. 2019 ; 123( 11): 6650-6654.[citado 2025 nov. 06 ] Available from: https://doi.org/10.1021/acs.jpcc.9b00294
Vancouver
Batalioto F, Figueiredo Neto AM. Random Energy Barrier Model for AC Electrode Conductivity [Internet]. Journal of Physical Chemistry C. 2019 ; 123( 11): 6650-6654.[citado 2025 nov. 06 ] Available from: https://doi.org/10.1021/acs.jpcc.9b00294