Ma, G., Yang, M., Xiao, S., Yang, Z., & Sheng, P. (2014). Acoustic metasurface with hybrid resonances. Nature Materials, 13(9), 873-878. doi:10.1038/nmat3994
Ma, G., & Sheng, P. (2016). Acoustic metamaterials: From local resonances to broad horizons. Science Advances, 2(2), e1501595. doi:10.1126/sciadv.1501595
Merkel, A., Theocharis, G., Richoux, O., Romero-García, V., & Pagneux, V. (2015). Control of acoustic absorption in one-dimensional scattering by resonant scatterers. Applied Physics Letters, 107(24), 244102. doi:10.1063/1.4938121
[+]
Ma, G., Yang, M., Xiao, S., Yang, Z., & Sheng, P. (2014). Acoustic metasurface with hybrid resonances. Nature Materials, 13(9), 873-878. doi:10.1038/nmat3994
Ma, G., & Sheng, P. (2016). Acoustic metamaterials: From local resonances to broad horizons. Science Advances, 2(2), e1501595. doi:10.1126/sciadv.1501595
Merkel, A., Theocharis, G., Richoux, O., Romero-García, V., & Pagneux, V. (2015). Control of acoustic absorption in one-dimensional scattering by resonant scatterers. Applied Physics Letters, 107(24), 244102. doi:10.1063/1.4938121
Romero-García, V., Theocharis, G., Richoux, O., Merkel, A., Tournat, V., & Pagneux, V. (2016). Perfect and broadband acoustic absorption by critically coupled sub-wavelength resonators. Scientific Reports, 6(1). doi:10.1038/srep19519
Romero-García, V., Theocharis, G., Richoux, O., & Pagneux, V. (2016). Use of complex frequency plane to design broadband and sub-wavelength absorbers. The Journal of the Acoustical Society of America, 139(6), 3395-3403. doi:10.1121/1.4950708
Jiménez, N., Huang, W., Romero-García, V., Pagneux, V., & Groby, J.-P. (2016). Ultra-thin metamaterial for perfect and quasi-omnidirectional sound absorption. Applied Physics Letters, 109(12), 121902. doi:10.1063/1.4962328
Chen, Y., Liu, H., Reilly, M., Bae, H., & Yu, M. (2014). Enhanced acoustic sensing through wave compression and pressure amplification in anisotropic metamaterials. Nature Communications, 5(1). doi:10.1038/ncomms6247
Martin, T. P., Nicholas, M., Orris, G. J., Cai, L.-W., Torrent, D., & Sánchez-Dehesa, J. (2010). Sonic gradient index lens for aqueous applications. Applied Physics Letters, 97(11), 113503. doi:10.1063/1.3489373
Romero-García, V., Cebrecos, A., Picó, R., Sánchez-Morcillo, V. J., Garcia-Raffi, L. M., & Sánchez-Pérez, J. V. (2013). Wave focusing using symmetry matching in axisymmetric acoustic gradient index lenses. Applied Physics Letters, 103(26), 264106. doi:10.1063/1.4860535
Cassan, E., Do, K.-V., Caer, C., Marris-Morini, D., & Vivien, L. (2011). Short-Wavelength Light Propagation in Graded Photonic Crystals. Journal of Lightwave Technology, 29(13), 1937-1943. doi:10.1109/jlt.2011.2151175
Romero-García, V., Picó, R., Cebrecos, A., Sánchez-Morcillo, V. J., & Staliunas, K. (2013). Enhancement of sound in chirped sonic crystals. Applied Physics Letters, 102(9), 091906. doi:10.1063/1.4793575
Zhu, J., Chen, Y., Zhu, X., Garcia-Vidal, F. J., Yin, X., Zhang, W., & Zhang, X. (2013). Acoustic rainbow trapping. Scientific Reports, 3(1). doi:10.1038/srep01728
Centeno, E., Cassagne, D., & Albert, J.-P. (2006). Mirage and superbending effect in two-dimensional graded photonic crystals. Physical Review B, 73(23). doi:10.1103/physrevb.73.235119
Kushwaha, M. S., Djafari-Rouhani, B., Dobrzynski, L., & Vasseur, J. O. (1998). Sonic stop-bands for cubic arrays of rigid inclusions in air. The European Physical Journal B, 3(2), 155-161. doi:10.1007/s100510050296
Cheng, Y. C., Kicas, S., Trull, J., Peckus, M., Cojocaru, C., Vilaseca, R., … Staliunas, K. (2014). Flat Focusing Mirror. Scientific Reports, 4(1). doi:10.1038/srep06326
Cebrecos, A., Picó, R., Sánchez-Morcillo, V. J., Staliunas, K., Romero-García, V., & Garcia-Raffi, L. M. (2014). Enhancement of sound by soft reflections in exponentially chirped crystals. AIP Advances, 4(12), 124402. doi:10.1063/1.4902508
Narimanov, E. E., & Kildishev, A. V. (2009). Optical black hole: Broadband omnidirectional light absorber. Applied Physics Letters, 95(4), 041106. doi:10.1063/1.3184594
Climente, A., Torrent, D., & Sánchez-Dehesa, J. (2012). Omnidirectional broadband acoustic absorber based on metamaterials. Applied Physics Letters, 100(14), 144103. doi:10.1063/1.3701611
Elliott, A. S., Venegas, R., Groby, J. P., & Umnova, O. (2014). Omnidirectional acoustic absorber with a porous core and a metamaterial matching layer. Journal of Applied Physics, 115(20), 204902. doi:10.1063/1.4876119
M. J. Powell,Numerical Analysis(Springer, 1978), pp. 144–157.
Johnson, D. L., Koplik, J., & Dashen, R. (1987). Theory of dynamic permeability and tortuosity in fluid-saturated porous media. Journal of Fluid Mechanics, 176(-1), 379. doi:10.1017/s0022112087000727
Champoux, Y., & Allard, J. (1991). Dynamic tortuosity and bulk modulus in air‐saturated porous media. Journal of Applied Physics, 70(4), 1975-1979. doi:10.1063/1.349482
Olny, X., & Panneton, R. (2008). Acoustical determination of the parameters governing thermal dissipation in porous media. The Journal of the Acoustical Society of America, 123(2), 814-824. doi:10.1121/1.2828066
Markos, P., & Soukoulis, C. (2003). Transmission properties and effective electromagnetic parameters of double negative metamaterials. Optics Express, 11(7), 649. doi:10.1364/oe.11.000649
Chen, X., Grzegorczyk, T. M., Wu, B.-I., Pacheco, J., & Kong, J. A. (2004). Robust method to retrieve the constitutive effective parameters of metamaterials. Physical Review E, 70(1). doi:10.1103/physreve.70.016608
[-]