- -

Spatio-temporal ultrasound beam modulation to sequentially achieve multiple foci with a single planar monofocal lens

RiuNet: Repositorio Institucional de la Universidad Politécnica de Valencia

Compartir/Enviar a

Citas

Estadísticas

  • Estadisticas de Uso

Spatio-temporal ultrasound beam modulation to sequentially achieve multiple foci with a single planar monofocal lens

Mostrar el registro completo del ítem

Pérez-López, S.; Fuster Escuder, JM.; Candelas Valiente, P. (2021). Spatio-temporal ultrasound beam modulation to sequentially achieve multiple foci with a single planar monofocal lens. Scientific Reports. 11(1):1-7. https://doi.org/10.1038/s41598-021-92849-x

Por favor, use este identificador para citar o enlazar este ítem: http://hdl.handle.net/10251/176394

Ficheros en el ítem

Metadatos del ítem

Título: Spatio-temporal ultrasound beam modulation to sequentially achieve multiple foci with a single planar monofocal lens
Autor: Pérez-López, Sergio Fuster Escuder, José Miguel Candelas Valiente, Pilar
Entidad UPV: Universitat Politècnica de València. Departamento de Física Aplicada - Departament de Física Aplicada
Universitat Politècnica de València. Departamento de Comunicaciones - Departament de Comunicacions
Fecha difusión:
Resumen:
[EN] Ultrasound focusing is a hot topic due to its multiple applications in many fields, including biomedical imaging, thermal ablation of cancerous tissues, and non destructive testing in industrial environments. In such ...[+]
Derechos de uso: Reconocimiento (by)
Fuente:
Scientific Reports. (issn: 2045-2322 )
DOI: 10.1038/s41598-021-92849-x
Editorial:
Nature Publishing Group
Versión del editor: https://doi.org/10.1038/s41598-021-92849-x
Coste APC: 3000
Código del Proyecto:
info:eu-repo/grantAgreement/AEI/Plan Estatal de Investigación Científica y Técnica y de Innovación 2017-2020/RTI2018-100792-B-I00/ES/FOCALIZACION Y CONFORMACION DE HACES DE ULTRASONIDOS MEDIANTE LENTES PLANAS/
info:eu-repo/grantAgreement/UPV//PAID-01-18//Programa de Ayudas de Investigación y Desarrollo (PAID-01-18)/
info:eu-repo/grantAgreement/GVA//AICO%2F2020%2F139//DISEÑO DE LENTES MULTIFOCALES PARA FOCALIZACIÓN EN ULTRASONIDOS/
Agradecimientos:
This work has been supported by Spanish MICINN project number RTI2018-100792-B-I00 and Generalitat Valenciana project AICO/2020/139. S.P.-L. acknowledges financial support from Universitat Politecnica de Valencia Grant ...[+]
Tipo: Artículo

References

Schmerr, L. W. Fundamentals of Ultrasonic Nondestructive Evaluation. Springer Series in Measurement Science and Technology (Springer International Publishing, 2016).

Azhari, H. Basics of Biomedical Ultrasound for Engineers (Wiley, 2010).

Fan, X. & Hynynen, K. Ultrasound surgery using multiple sonications—Treatment time considerations. Ultrasound Med. Biol. 22, 471–482. https://doi.org/10.1016/0301-5629(96)00026-9 (1996). [+]
Schmerr, L. W. Fundamentals of Ultrasonic Nondestructive Evaluation. Springer Series in Measurement Science and Technology (Springer International Publishing, 2016).

Azhari, H. Basics of Biomedical Ultrasound for Engineers (Wiley, 2010).

Fan, X. & Hynynen, K. Ultrasound surgery using multiple sonications—Treatment time considerations. Ultrasound Med. Biol. 22, 471–482. https://doi.org/10.1016/0301-5629(96)00026-9 (1996).

ter Haar, G. & Coussios, C. High intensity focused ultrasound: Physical principles and devices. Int. J. Hyperth. 23, 89–104. https://doi.org/10.1080/02656730601186138 (2007).

Guo, S., Jing, Y. & Jiang, X. Temperature rise in tissue ablation using multi-frequency ultrasound. IEEE Trans. Ultrason. Ferroelectr. Freq. Control. 60, 1699–1707. https://doi.org/10.1109/TUFFC.2013.2751 (2013).

Ebbini, E. & Cain, C. Multiple-focus ultrasound phased-array pattern synthesis: Optimal driving-signal distributions for hyperthermia. IEEE Trans. Ultrason. Ferroelectr. Freq. Control. 36, 540–548. https://doi.org/10.1109/58.31798 (1989).

Casper, A., Liu, D. & Ebbini, E. S. Realtime control of multiple-focus phased array heating patterns based on noninvasive ultrasound thermography. IEEE Trans. Biomed. Eng. 59, 95–105. https://doi.org/10.1109/TBME.2011.2162105 (2012).

Ilovitsh, A., Ilovitsh, T., Foiret, J., Stephens, D. N. & Ferrara, K. W. Simultaneous axial multifocal imaging using a single acoustical transmission: A practical implementation. IEEE Trans. Ultrason. Ferroelectr. Freq. Control. 66, 273–284. https://doi.org/10.1109/TUFFC.2018.2885080 (2019).

Lalonde, R., Worthington, A. & Hunt, J. Field conjugate acoustic lenses for ultrasound hyperthermia. IEEE Trans. Ultrason. Ferroelectr. Freq. Control. 40, 592–602. https://doi.org/10.1109/58.238113 (1993).

Lalonde, R. & Hunt, J. Variable frequency field conjugate lenses for ultrasound hyperthermia. IEEE Trans. Ultrason. Ferroelectr. Freq. Control. 42, 825–831. https://doi.org/10.1109/58.464838 (1995).

Brown, M. D., Allen, T. J., Cox, B. T. & Treeby, B. E. Control of optically generated ultrasound fields using binary amplitude holograms. in IEEE International Ultrasonics Symposium, IUS, 1037–1040. https://doi.org/10.1109/ULTSYM.2014.0254 (IEEE, 2014).

Melde, K., Mark, A. G., Qiu, T. & Fischer, P. Holograms for acoustics. Nature 537, 518–522. https://doi.org/10.1038/nature19755 (2016).

Brown, M. D., Cox, B. T. & Treeby, B. E. Design of multi-frequency acoustic kinoforms. Appl. Phys. Lett. 111, 244101. https://doi.org/10.1063/1.5004040 (2017).

Jiménez-Gambín, S., Jiménez, N., Benlloch, J. M. & Camarena, F. Holograms to focus arbitrary ultrasonic fields through the skull. Phys. Rev. Appl. 12, 014016. https://doi.org/10.1103/PhysRevApplied.12.014016 (2019).

Young, M. Zone plates and their aberrations. J. Opt. Soc. Am. 62, 972. https://doi.org/10.1364/JOSA.62.000972 (1972).

Rodrigues Ribeiro, R. S., Dahal, P., Guerreiro, A., Jorge, P. A. S. & Viegas, J. Fabrication of Fresnel plates on optical fibres by FIB milling for optical trapping, manipulation and detection of single cells. Sci. Rep. 7, 4485. https://doi.org/10.1038/s41598-017-04490-2 (2017).

Kim, H. et al. Metallic Fresnel zone plate implemented on an optical fiber facet for super-variable focusing of light. Opt. Express 25, 30290. https://doi.org/10.1364/OE.25.030290 (2017).

Kirz, J. Phase zone plates for X-rays and the extreme UV. J. Opt. Soc. Am. 64, 301–309. https://doi.org/10.1364/JOSA.64.000301 (1974).

Yashiro, W., Takeda, Y., Takeuchi, A., Suzuki, Y. & Momose, A. Hard-X-ray phase-difference microscopy using a fresnel zone plate and a transmission grating. Phys. Rev. Lett. 103, 180801. https://doi.org/10.1103/PhysRevLett.103.180801 (2009).

Hristov, H. D. & Herben, M. H. Millimeter-wave fresnel-zone plate lens and antenna. IEEE Trans. Microw. Theory Tech. 43, 2779–2785. https://doi.org/10.1109/22.475635 (1995).

Hristov, H. D. & Rodriguez, J. M. Design equation for multidielectric fresnel zone plate lens. IEEE Microw. Wirel. Components Lett. 22, 574–576. https://doi.org/10.1109/LMWC.2012.2224099 (2012).

Chao, G., Auld, B. A. & Winslow, D. K. Focusing and scanning of acoustic beams with fresnel zone plates. in 1972 Ultrasonics Symposium, 140–143. https://doi.org/10.1109/ultsym.1972.196048 (IEEE, 1972).

Farnow, S. A. & Auld, B. A. Acoustic fresnel zone plate transducers. Appl. Phys. Lett. 25, 681–682. https://doi.org/10.1063/1.1655359 (1974).

Farnow, S. A. & Auld, B. A. An acoustic phase plate imaging device. in Acoustical Holography, Vol. 6 (ed. Booth, N.) 259–273. https://doi.org/10.1007/978-1-4615-8216-8_14 (Springer US, 1975).

Yamada, K. & Shimizu, H. Planar-structure focusing lens for acoustic microscope. in Ultrasonics Symposium Proceedings, 755–758. https://doi.org/10.1109/ultsym.1985.198612 (IEEE, 1985).

Calvo, D. C., Thangawng, A. L., Nicholas, M. & Layman, C. N. Thin Fresnel zone plate lenses for focusing underwater sound. Appl. Phys. Lett. 107, 014103. https://doi.org/10.1063/1.4926607 (2015).

Jiménez, N., Romero-García, V., García-Raffi, L. M., Camarena, F. & Staliunas, K. Sharp acoustic vortex focusing by Fresnel-spiral zone plates. Appl. Phys. Lett. 112, 204101. https://doi.org/10.1063/1.5029424 (2018).

Monsoriu, J. A. et al. Bifocal fibonacci diffractive lenses. IEEE Photon. J. 5, 3400106–3400106. https://doi.org/10.1109/JPHOT.2013.2248707 (2013).

Pérez-López, S., Fuster, J. M. & Candelas, P. M-Bonacci zone plates for ultrasound focusing. Sensors 19, 4313. https://doi.org/10.3390/s19194313 (2019).

Saavedra, G., Furlan, W. D. & Monsoriu, J. A. Fractal zone plates. Opt. Lett. 28, 971. https://doi.org/10.1364/ol.28.000971 (2003).

Pérez-López, S., Fuster, J. M., Candelas, P. & Rubio, C. Fractal lenses based on Cantor binary sequences for ultrasound focusing applications. Ultrasonics 99, 105967. https://doi.org/10.1016/j.ultras.2019.105967 (2019).

Tarrazó-Serrano, D., Pérez-López, S., Candelas, P., Uris, A. & Rubio, C. Acoustic focusing enhancement in fresnel zone plate lenses. Sci. Rep. 9, 7067. https://doi.org/10.1038/s41598-019-43495-x (2019).

Fuster, J. M., Candelas, P., Castiñeira-Ibáñez, S., Pérez-López, S. & Rubio, C. Analysis of fresnel zone plates focusing dependence on operating frequency. Sensors (Switzerland) 17, 2809. https://doi.org/10.3390/s17122809 (2017).

Muelas-Hurtado, R. D., Ealo, J. L. & Volke-Sepúlveda, K. Active-spiral Fresnel zone plate with tunable focal length for airborne generation of focused acoustic vortices. Appl. Phys. Lett. 116, 114101. https://doi.org/10.1063/1.5137766 (2020).

Xia, X. et al. Ultrasonic tunable focusing by a stretchable phase-reversal Fresnel zone plate. Appl. Phys. Lett. 117, 021904. https://doi.org/10.1063/5.0018663 (2020).

Pérez-López, S., Tarrazó-Serrano, D., Dolmatov, D. O., Rubio, C. & Candelas, P. Transient analysis of fresnel zone plates for ultrasound focusing applications. Sensors 20, 6824. https://doi.org/10.3390/s20236824 (2020).

Liu, D.-L. & Waag, R. Propagation and backpropagation for ultrasonic wavefront design. IEEE Trans. Ultrason. Ferroelectr. Freq. Control. 44, 1–13. https://doi.org/10.1109/58.585184 (1997).

[-]

recommendations

 

Este ítem aparece en la(s) siguiente(s) colección(ones)

Mostrar el registro completo del ítem