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JORGE, Gabriel Henrique Armando et al. Active optical tuning of azopolymeric whispering gallery mode microresonators for filter applications. Photonics, v. 11, n. 2, p. 167-1-167-10, 2024Tradução . . Disponível em: https://doi.org/10.3390/photonics11020167. Acesso em: 14 nov. 2024.
APA
Jorge, G. H. A., Couto, F. A., Almeida, J. M. P. de, Marques, V. A. S., Andrade, M. B. de, & Mendonça, C. R. (2024). Active optical tuning of azopolymeric whispering gallery mode microresonators for filter applications. Photonics, 11( 2), 167-1-167-10. doi:10.3390/photonics11020167
NLM
Jorge GHA, Couto FA, Almeida JMP de, Marques VAS, Andrade MB de, Mendonça CR. Active optical tuning of azopolymeric whispering gallery mode microresonators for filter applications [Internet]. Photonics. 2024 ; 11( 2): 167-1-167-10.[citado 2024 nov. 14 ] Available from: https://doi.org/10.3390/photonics11020167
Vancouver
Jorge GHA, Couto FA, Almeida JMP de, Marques VAS, Andrade MB de, Mendonça CR. Active optical tuning of azopolymeric whispering gallery mode microresonators for filter applications [Internet]. Photonics. 2024 ; 11( 2): 167-1-167-10.[citado 2024 nov. 14 ] Available from: https://doi.org/10.3390/photonics11020167
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SALES, Douglas Henrique et al. Al-doped ZnO thin films via sputtering: influence of structural defects on ozone gas sensitivity. Materials Research, v. 27, p. e20240184-1-e20240184-15, 2024Tradução . . Disponível em: https://doi.org/10.1590/1980-5373-MR-2024-0184. Acesso em: 14 nov. 2024.
APA
Sales, D. H., Leite, R. R., Diaz, J. C. C. A., Komorizono, A. A., Bernardi, M. I. B., Mastelaro, V. R., et al. (2024). Al-doped ZnO thin films via sputtering: influence of structural defects on ozone gas sensitivity. Materials Research, 27, e20240184-1-e20240184-15. doi:10.1590/1980-5373-MR-2024-0184
NLM
Sales DH, Leite RR, Diaz JCCA, Komorizono AA, Bernardi MIB, Mastelaro VR, Longo E, Teixeira SR, Souza AE. Al-doped ZnO thin films via sputtering: influence of structural defects on ozone gas sensitivity [Internet]. Materials Research. 2024 ; 27 e20240184-1-e20240184-15.[citado 2024 nov. 14 ] Available from: https://doi.org/10.1590/1980-5373-MR-2024-0184
Vancouver
Sales DH, Leite RR, Diaz JCCA, Komorizono AA, Bernardi MIB, Mastelaro VR, Longo E, Teixeira SR, Souza AE. Al-doped ZnO thin films via sputtering: influence of structural defects on ozone gas sensitivity [Internet]. Materials Research. 2024 ; 27 e20240184-1-e20240184-15.[citado 2024 nov. 14 ] Available from: https://doi.org/10.1590/1980-5373-MR-2024-0184
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JIANCHAO, Zhang et al. A fully metaoptical zoom lens with a wide range. Nano Letters, v. 24, p. 4893-4899, 2024Tradução . . Disponível em: http://dx.doi.org/10.1021/acs.nanolett.4c00328. Acesso em: 14 nov. 2024.
APA
Jianchao, Z., Qian, S., Zhengyang, W., Guangyong, Z., Yikun, L., Jin, L., et al. (2024). A fully metaoptical zoom lens with a wide range. Nano Letters, 24, 4893-4899. doi:10.1021/acs.nanolett.4c00328
NLM
Jianchao Z, Qian S, Zhengyang W, Guangyong Z, Yikun L, Jin L, Martins ER, Krauss TF, Xue-Hua W. A fully metaoptical zoom lens with a wide range [Internet]. Nano Letters. 2024 ; 24 4893-4899.[citado 2024 nov. 14 ] Available from: http://dx.doi.org/10.1021/acs.nanolett.4c00328
Vancouver
Jianchao Z, Qian S, Zhengyang W, Guangyong Z, Yikun L, Jin L, Martins ER, Krauss TF, Xue-Hua W. A fully metaoptical zoom lens with a wide range [Internet]. Nano Letters. 2024 ; 24 4893-4899.[citado 2024 nov. 14 ] Available from: http://dx.doi.org/10.1021/acs.nanolett.4c00328
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FREITAS, Bárbara Luíza Souza et al. Efficacy of UVC-LED radiation in bacterial, viral, and protozoan inactivation: an assessment of the influence of exposure doses and water quality. Water Research, v. No 2024, p. 122322-1-122322-10, 2024Tradução . . Disponível em: https://doi.org/10.1016/j.watres.2024.122322. Acesso em: 14 nov. 2024.
APA
Freitas, B. L. S., Fava, N. M. de N., Melo Neto, M. G. de, Pereira, G. G. D., Tonetti, A. L., Byrne, J. A., et al. (2024). Efficacy of UVC-LED radiation in bacterial, viral, and protozoan inactivation: an assessment of the influence of exposure doses and water quality. Water Research, No 2024, 122322-1-122322-10. doi:10.1016/j.watres.2024.122322
NLM
Freitas BLS, Fava NM de N, Melo Neto MG de, Pereira GGD, Tonetti AL, Byrne JA, Ibañez PF, Paz LPS. Efficacy of UVC-LED radiation in bacterial, viral, and protozoan inactivation: an assessment of the influence of exposure doses and water quality [Internet]. Water Research. 2024 ; No 2024 122322-1-122322-10.[citado 2024 nov. 14 ] Available from: https://doi.org/10.1016/j.watres.2024.122322
Vancouver
Freitas BLS, Fava NM de N, Melo Neto MG de, Pereira GGD, Tonetti AL, Byrne JA, Ibañez PF, Paz LPS. Efficacy of UVC-LED radiation in bacterial, viral, and protozoan inactivation: an assessment of the influence of exposure doses and water quality [Internet]. Water Research. 2024 ; No 2024 122322-1-122322-10.[citado 2024 nov. 14 ] Available from: https://doi.org/10.1016/j.watres.2024.122322
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ANGELIS, Vinicius Soares de et al. 3D holography using communication mode optics. 2024, Anais.. Washington, DC: Escola de Engenharia de São Carlos, Universidade de São Paulo, 2024. Disponível em: https://repositorio.usp.br/directbitstream/c3a5642f-c470-406b-a569-845d1dcf6643/PROD_27347_SYSNO_3216708_%281%29.pdf. Acesso em: 14 nov. 2024.
APA
Angelis, V. S. de, Dorrah, A. H., Ambrosio, L. A., Miller, D. A. B., & Capasso, F. (2024). 3D holography using communication mode optics. In Abstracts. Washington, DC: Escola de Engenharia de São Carlos, Universidade de São Paulo. Recuperado de https://repositorio.usp.br/directbitstream/c3a5642f-c470-406b-a569-845d1dcf6643/PROD_27347_SYSNO_3216708_%281%29.pdf
NLM
Angelis VS de, Dorrah AH, Ambrosio LA, Miller DAB, Capasso F. 3D holography using communication mode optics [Internet]. Abstracts. 2024 ;[citado 2024 nov. 14 ] Available from: https://repositorio.usp.br/directbitstream/c3a5642f-c470-406b-a569-845d1dcf6643/PROD_27347_SYSNO_3216708_%281%29.pdf
Vancouver
Angelis VS de, Dorrah AH, Ambrosio LA, Miller DAB, Capasso F. 3D holography using communication mode optics [Internet]. Abstracts. 2024 ;[citado 2024 nov. 14 ] Available from: https://repositorio.usp.br/directbitstream/c3a5642f-c470-406b-a569-845d1dcf6643/PROD_27347_SYSNO_3216708_%281%29.pdf
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LIMA, Thalita Hellen Nunes et al. Temperature effects on the uptake of photosensitizers in Escherichia coli. 2024, Anais.. Bellingham: International Society for Optical Engineering - SPIE, 2024. Disponível em: https://doi.org/10.1117/12.3004525. Acesso em: 14 nov. 2024.
APA
Lima, T. H. N., Lima, A. R., Silva, K. J. S., Blanco, K. C., Guimarães, F. E. G., & Bagnato, V. S. (2024). Temperature effects on the uptake of photosensitizers in Escherichia coli. In Abstracts. Bellingham: International Society for Optical Engineering - SPIE. doi:10.1117/12.3004525
NLM
Lima THN, Lima AR, Silva KJS, Blanco KC, Guimarães FEG, Bagnato VS. Temperature effects on the uptake of photosensitizers in Escherichia coli [Internet]. Abstracts. 2024 ;[citado 2024 nov. 14 ] Available from: https://doi.org/10.1117/12.3004525
Vancouver
Lima THN, Lima AR, Silva KJS, Blanco KC, Guimarães FEG, Bagnato VS. Temperature effects on the uptake of photosensitizers in Escherichia coli [Internet]. Abstracts. 2024 ;[citado 2024 nov. 14 ] Available from: https://doi.org/10.1117/12.3004525
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ZHANG, Fengchan et al. Brownian motion governs the plasmonic enhancement of colloidal ipconverting nanoparticles. Nano Letters, v. 24, n. 12, p. 3785-3792 + supporting information: s1-s11, 2024Tradução . . Disponível em: https://doi.org/10.1021/acs.nanolett.4c00379. Acesso em: 14 nov. 2024.
APA
Zhang, F., Oiticica, P. R. A., Arredondo, J. A., Arai, M. S., Oliveira Junior, O. N. de, Jaque, D., et al. (2024). Brownian motion governs the plasmonic enhancement of colloidal ipconverting nanoparticles. Nano Letters, 24( 12), 3785-3792 + supporting information: s1-s11. doi:10.1021/acs.nanolett.4c00379
NLM
Zhang F, Oiticica PRA, Arredondo JA, Arai MS, Oliveira Junior ON de, Jaque D, Dominguez AIF, de Camargo ASS, González PH. Brownian motion governs the plasmonic enhancement of colloidal ipconverting nanoparticles [Internet]. Nano Letters. 2024 ; 24( 12): 3785-3792 + supporting information: s1-s11.[citado 2024 nov. 14 ] Available from: https://doi.org/10.1021/acs.nanolett.4c00379
Vancouver
Zhang F, Oiticica PRA, Arredondo JA, Arai MS, Oliveira Junior ON de, Jaque D, Dominguez AIF, de Camargo ASS, González PH. Brownian motion governs the plasmonic enhancement of colloidal ipconverting nanoparticles [Internet]. Nano Letters. 2024 ; 24( 12): 3785-3792 + supporting information: s1-s11.[citado 2024 nov. 14 ] Available from: https://doi.org/10.1021/acs.nanolett.4c00379
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MAHARJAN, Asim et al. When a lensless fluorometer outperforms a lensed system. Optica, v. 11, n. 8, p. 1124-1128, 2024Tradução . . Disponível em: http://dx.doi.org/10.1364/OPTICA.527289. Acesso em: 14 nov. 2024.
APA
Maharjan, A., Waiba, P., Shrestha, S., Maharjan, R., Martins, A., Martins, E. R., et al. (2024). When a lensless fluorometer outperforms a lensed system. Optica, 11( 8), 1124-1128. doi:10.1364/OPTICA.527289
NLM
Maharjan A, Waiba P, Shrestha S, Maharjan R, Martins A, Martins ER, Krauss TF, Dhakal A. When a lensless fluorometer outperforms a lensed system [Internet]. Optica. 2024 ; 11( 8): 1124-1128.[citado 2024 nov. 14 ] Available from: http://dx.doi.org/10.1364/OPTICA.527289
Vancouver
Maharjan A, Waiba P, Shrestha S, Maharjan R, Martins A, Martins ER, Krauss TF, Dhakal A. When a lensless fluorometer outperforms a lensed system [Internet]. Optica. 2024 ; 11( 8): 1124-1128.[citado 2024 nov. 14 ] Available from: http://dx.doi.org/10.1364/OPTICA.527289
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LIMA, Alessandra Ramos et al. Impact of PVC microplastics in photodynamic inactivation of Staphylococcus aureus and MRSA. Water Science and Technology, v. 89, n. 8, p. 2105-2117, 2024Tradução . . Disponível em: https://doi.org/10.2166/wst.2024.104. Acesso em: 14 nov. 2024.
APA
Lima, A. R., Silva, K. J. S., Aguiar, A. S. N. de, Souza, M. de, Lima, T. H. N., Blanco, K. C., et al. (2024). Impact of PVC microplastics in photodynamic inactivation of Staphylococcus aureus and MRSA. Water Science and Technology, 89( 8), 2105-2117. doi:10.2166/wst.2024.104
NLM
Lima AR, Silva KJS, Aguiar ASN de, Souza M de, Lima THN, Blanco KC, Bagnato VS, Dias LD. Impact of PVC microplastics in photodynamic inactivation of Staphylococcus aureus and MRSA [Internet]. Water Science and Technology. 2024 ; 89( 8): 2105-2117.[citado 2024 nov. 14 ] Available from: https://doi.org/10.2166/wst.2024.104
Vancouver
Lima AR, Silva KJS, Aguiar ASN de, Souza M de, Lima THN, Blanco KC, Bagnato VS, Dias LD. Impact of PVC microplastics in photodynamic inactivation of Staphylococcus aureus and MRSA [Internet]. Water Science and Technology. 2024 ; 89( 8): 2105-2117.[citado 2024 nov. 14 ] Available from: https://doi.org/10.2166/wst.2024.104
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ZHANG, Fengchan et al. Plasmonic trapping of a single upconverting nanoparticle: enhanced upconversion fluorescence and trapping stability. 2023, Anais.. Washington, DC: Optical Society of America - OSA, 2023. Disponível em: https://doi.org/10.1364/OMA.2023.AM3D.3. Acesso em: 14 nov. 2024.
APA
Zhang, F., Oiticica, P. R. A., Arai, M. S., Oliveira Junior, O. N. de, de Camargo, A. S. S., García, D. J., & González, P. H. (2023). Plasmonic trapping of a single upconverting nanoparticle: enhanced upconversion fluorescence and trapping stability. In Conference Papers. Washington, DC: Optical Society of America - OSA. doi:10.1364/OMA.2023.AM3D.3
NLM
Zhang F, Oiticica PRA, Arai MS, Oliveira Junior ON de, de Camargo ASS, García DJ, González PH. Plasmonic trapping of a single upconverting nanoparticle: enhanced upconversion fluorescence and trapping stability [Internet]. Conference Papers. 2023 ;[citado 2024 nov. 14 ] Available from: https://doi.org/10.1364/OMA.2023.AM3D.3
Vancouver
Zhang F, Oiticica PRA, Arai MS, Oliveira Junior ON de, de Camargo ASS, García DJ, González PH. Plasmonic trapping of a single upconverting nanoparticle: enhanced upconversion fluorescence and trapping stability [Internet]. Conference Papers. 2023 ;[citado 2024 nov. 14 ] Available from: https://doi.org/10.1364/OMA.2023.AM3D.3
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KONDO, Jorge Douglas Massayuki et al. Improving electric field sensitivity by combining electromagnetically induced transparency, polarization spectroscopy, and microwave 3D printed lenses using hot vapor of Rydberg atoms as fundamental atomic sensors. Bulletin of the American Physical Society. College Park: Escola de Engenharia de São Carlos, Universidade de São Paulo. Disponível em: https://meetings-aps.ez67.periodicos.capes.gov.br/Meeting/DAMOP23/Session/K10.4. Acesso em: 14 nov. 2024. , 2023
APA
Kondo, J. D. M., Gomes, N. D., Pepino, V. M., Borges, B. -H. V., Magalhães, D. V., & Marcassa, L. G. (2023). Improving electric field sensitivity by combining electromagnetically induced transparency, polarization spectroscopy, and microwave 3D printed lenses using hot vapor of Rydberg atoms as fundamental atomic sensors. Bulletin of the American Physical Society. College Park: Escola de Engenharia de São Carlos, Universidade de São Paulo. Recuperado de https://meetings-aps.ez67.periodicos.capes.gov.br/Meeting/DAMOP23/Session/K10.4
NLM
Kondo JDM, Gomes ND, Pepino VM, Borges B-HV, Magalhães DV, Marcassa LG. Improving electric field sensitivity by combining electromagnetically induced transparency, polarization spectroscopy, and microwave 3D printed lenses using hot vapor of Rydberg atoms as fundamental atomic sensors [Internet]. Bulletin of the American Physical Society. 2023 ; 68( 7):[citado 2024 nov. 14 ] Available from: https://meetings-aps.ez67.periodicos.capes.gov.br/Meeting/DAMOP23/Session/K10.4
Vancouver
Kondo JDM, Gomes ND, Pepino VM, Borges B-HV, Magalhães DV, Marcassa LG. Improving electric field sensitivity by combining electromagnetically induced transparency, polarization spectroscopy, and microwave 3D printed lenses using hot vapor of Rydberg atoms as fundamental atomic sensors [Internet]. Bulletin of the American Physical Society. 2023 ; 68( 7):[citado 2024 nov. 14 ] Available from: https://meetings-aps.ez67.periodicos.capes.gov.br/Meeting/DAMOP23/Session/K10.4
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ZHANG, Fengchan et al. Improving optical trapping of a single upconverting nanoparticle by plasmonic structure. EPJ Web of Conferences. Les Ulis: Instituto de Física de São Carlos, Universidade de São Paulo. Disponível em: https://doi.org/10.1051/epjconf/202328704015. Acesso em: 14 nov. 2024. , 2023
APA
Zhang, F., Oiticica, P. R. A., Arai, M. S., Oliveira Junior, O. N. de, de Camargo, A. S. S., García, D. J., & González, P. H. (2023). Improving optical trapping of a single upconverting nanoparticle by plasmonic structure. EPJ Web of Conferences. Les Ulis: Instituto de Física de São Carlos, Universidade de São Paulo. doi:10.1051/epjconf/202328704015
NLM
Zhang F, Oiticica PRA, Arai MS, Oliveira Junior ON de, de Camargo ASS, García DJ, González PH. Improving optical trapping of a single upconverting nanoparticle by plasmonic structure [Internet]. EPJ Web of Conferences. 2023 ; 287 04015-1-04015-2.[citado 2024 nov. 14 ] Available from: https://doi.org/10.1051/epjconf/202328704015
Vancouver
Zhang F, Oiticica PRA, Arai MS, Oliveira Junior ON de, de Camargo ASS, García DJ, González PH. Improving optical trapping of a single upconverting nanoparticle by plasmonic structure [Internet]. EPJ Web of Conferences. 2023 ; 287 04015-1-04015-2.[citado 2024 nov. 14 ] Available from: https://doi.org/10.1051/epjconf/202328704015
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MARCASSA, Luís Gustavo et al. Effects of microwave cavity on Rb Rydberg atoms. Bulletin of the American Physical Society. College Park: American Physical Society - APS. Disponível em: https://meetings.aps.org/Meeting/DAMOP22/Session/V01.32. Acesso em: 14 nov. 2024. , 2022
APA
Marcassa, L. G., Gomes, N. D., Magnani, B. da F., Mojica-Casique, C., Cardoso, M. R., & Magalhães, D. V. (2022). Effects of microwave cavity on Rb Rydberg atoms. Bulletin of the American Physical Society. College Park: American Physical Society - APS. Recuperado de https://meetings.aps.org/Meeting/DAMOP22/Session/V01.32
NLM
Marcassa LG, Gomes ND, Magnani B da F, Mojica-Casique C, Cardoso MR, Magalhães DV. Effects of microwave cavity on Rb Rydberg atoms [Internet]. Bulletin of the American Physical Society. 2022 ; 67( 7):[citado 2024 nov. 14 ] Available from: https://meetings.aps.org/Meeting/DAMOP22/Session/V01.32
Vancouver
Marcassa LG, Gomes ND, Magnani B da F, Mojica-Casique C, Cardoso MR, Magalhães DV. Effects of microwave cavity on Rb Rydberg atoms [Internet]. Bulletin of the American Physical Society. 2022 ; 67( 7):[citado 2024 nov. 14 ] Available from: https://meetings.aps.org/Meeting/DAMOP22/Session/V01.32
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MARTINS, Augusto et al. Fundamental limits and design principles of doublet metalenses. Nanophotonics, v. 11, n. 6, p. 1187-1194, 2022Tradução . . Disponível em: https://doi.org/10.1515/nanoph-2021-0770. Acesso em: 14 nov. 2024.
APA
Martins, A., Juntao, L., Borges, B. -H. V., Krauss, T. F., & Martins, E. R. (2022). Fundamental limits and design principles of doublet metalenses. Nanophotonics, 11( 6), 1187-1194. doi:10.1515/nanoph-2021-0770
NLM
Martins A, Juntao L, Borges B-HV, Krauss TF, Martins ER. Fundamental limits and design principles of doublet metalenses [Internet]. Nanophotonics. 2022 ; 11( 6): 1187-1194.[citado 2024 nov. 14 ] Available from: https://doi.org/10.1515/nanoph-2021-0770
Vancouver
Martins A, Juntao L, Borges B-HV, Krauss TF, Martins ER. Fundamental limits and design principles of doublet metalenses [Internet]. Nanophotonics. 2022 ; 11( 6): 1187-1194.[citado 2024 nov. 14 ] Available from: https://doi.org/10.1515/nanoph-2021-0770
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REGUERA, César Raúl Medero et al. Excitation of Rb Rydberg atoms in MOT inside a microwave cavity. Bulletin of the American Physical Society. College Park: American Physical Society - APS. Disponível em: https://meetings.aps.org/Meeting/DAMOP22/Session/V01.31. Acesso em: 14 nov. 2024. , 2022
APA
Reguera, C. R. M., Gomes, N. D., Magalhães, D. V., & Marcassa, L. G. (2022). Excitation of Rb Rydberg atoms in MOT inside a microwave cavity. Bulletin of the American Physical Society. College Park: American Physical Society - APS. Recuperado de https://meetings.aps.org/Meeting/DAMOP22/Session/V01.31
NLM
Reguera CRM, Gomes ND, Magalhães DV, Marcassa LG. Excitation of Rb Rydberg atoms in MOT inside a microwave cavity [Internet]. Bulletin of the American Physical Society. 2022 ; 67( 7):[citado 2024 nov. 14 ] Available from: https://meetings.aps.org/Meeting/DAMOP22/Session/V01.31
Vancouver
Reguera CRM, Gomes ND, Magalhães DV, Marcassa LG. Excitation of Rb Rydberg atoms in MOT inside a microwave cavity [Internet]. Bulletin of the American Physical Society. 2022 ; 67( 7):[citado 2024 nov. 14 ] Available from: https://meetings.aps.org/Meeting/DAMOP22/Session/V01.31
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MARTINS, Augusto et al. Correction of aberrations via polarization in single layer metalenses. Advanced Optical Materials. Weinheim, Germany: Wiley-VCH Verlag. Disponível em: https://doi.org/10.1002/adom.202102555. Acesso em: 14 nov. 2024. , 2022
APA
Martins, A., Kezheng, L., Arruda, G. S., Conteduca, D., Haowen, L., Juntao, L., et al. (2022). Correction of aberrations via polarization in single layer metalenses. Advanced Optical Materials. Weinheim, Germany: Wiley-VCH Verlag. doi:10.1002/adom.202102555
NLM
Martins A, Kezheng L, Arruda GS, Conteduca D, Haowen L, Juntao L, Borges B-HV, Krauss TF, Martins ER. Correction of aberrations via polarization in single layer metalenses [Internet]. Advanced Optical Materials. 2022 ;[citado 2024 nov. 14 ] Available from: https://doi.org/10.1002/adom.202102555
Vancouver
Martins A, Kezheng L, Arruda GS, Conteduca D, Haowen L, Juntao L, Borges B-HV, Krauss TF, Martins ER. Correction of aberrations via polarization in single layer metalenses [Internet]. Advanced Optical Materials. 2022 ;[citado 2024 nov. 14 ] Available from: https://doi.org/10.1002/adom.202102555
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SBFoton International Optics and Photonics Conference - IOPC, 2021. . Campinas: Sociedade Brasileira de Ótica e Fotônica - SBFoton. . Acesso em: 14 nov. 2024. , 2021
APA
SBFoton International Optics and Photonics Conference - IOPC, 2021. (2021). SBFoton International Optics and Photonics Conference - IOPC, 2021. Campinas: Sociedade Brasileira de Ótica e Fotônica - SBFoton.
NLM
SBFoton International Optics and Photonics Conference - IOPC, 2021. 2021 ;[citado 2024 nov. 14 ]
Vancouver
SBFoton International Optics and Photonics Conference - IOPC, 2021. 2021 ;[citado 2024 nov. 14 ]
A citação é gerada automaticamente e pode não estar totalmente de acordo com as normas
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MARTINS, Augusto. Metasurfaces for control of light propagation and diffractive optics applications. 2021. Tese (Doutorado) – Universidade de São Paulo, São Carlos, 2021. Disponível em: https://www.teses.usp.br/teses/disponiveis/18/18155/tde-17032021-115322/. Acesso em: 14 nov. 2024.
APA
Martins, A. (2021). Metasurfaces for control of light propagation and diffractive optics applications (Tese (Doutorado). Universidade de São Paulo, São Carlos. Recuperado de https://www.teses.usp.br/teses/disponiveis/18/18155/tde-17032021-115322/
NLM
Martins A. Metasurfaces for control of light propagation and diffractive optics applications [Internet]. 2021 ;[citado 2024 nov. 14 ] Available from: https://www.teses.usp.br/teses/disponiveis/18/18155/tde-17032021-115322/
Vancouver
Martins A. Metasurfaces for control of light propagation and diffractive optics applications [Internet]. 2021 ;[citado 2024 nov. 14 ] Available from: https://www.teses.usp.br/teses/disponiveis/18/18155/tde-17032021-115322/
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NOLASCO, Lucas Konaka et al. Femtosecond laser micromachining of GaN using different wavelengths from near-infrared to ultraviolet. Journal of Alloys and Compounds, v. 877, p. 160259-1-160259-5, 2021Tradução . . Disponível em: https://doi.org/10.1016/j.jallcom.2021.160259. Acesso em: 14 nov. 2024.
APA
Nolasco, L. K., Almeida, G. F. B. de, Voss, T., & Mendonça, C. R. (2021). Femtosecond laser micromachining of GaN using different wavelengths from near-infrared to ultraviolet. Journal of Alloys and Compounds, 877, 160259-1-160259-5. doi:10.1016/j.jallcom.2021.160259
NLM
Nolasco LK, Almeida GFB de, Voss T, Mendonça CR. Femtosecond laser micromachining of GaN using different wavelengths from near-infrared to ultraviolet [Internet]. Journal of Alloys and Compounds. 2021 ; 877 160259-1-160259-5.[citado 2024 nov. 14 ] Available from: https://doi.org/10.1016/j.jallcom.2021.160259
Vancouver
Nolasco LK, Almeida GFB de, Voss T, Mendonça CR. Femtosecond laser micromachining of GaN using different wavelengths from near-infrared to ultraviolet [Internet]. Journal of Alloys and Compounds. 2021 ; 877 160259-1-160259-5.[citado 2024 nov. 14 ] Available from: https://doi.org/10.1016/j.jallcom.2021.160259