Physics of surface vibrational resonances: pillared phononic crystals, metamaterials, and metasurfaces

被引:112
|
作者
Jin, Yabin [1 ]
Pennec, Yan [2 ]
Bonello, Bernard [3 ]
Honarvar, Hossein [4 ,5 ,6 ,7 ]
Dobrzynski, Leonard [2 ]
Djafari-Rouhani, Bahram [2 ]
Hussein, Mahmoud, I [4 ,5 ]
机构
[1] Tongji Univ, Sch Aerosp Engn & Appl Mech, Shanghai 200092, Peoples R China
[2] Univ Lille, CNRS, UMR 8520, Inst Elect Microelect & Nanotechnol IEMN, F-59650 Villeneuve Dascq, France
[3] Sorbonne Univ, CNRS, Fac Sci, Inst Nanosci Paris INSP, F-75005 Paris, France
[4] Univ Colorado, Ann & HJ Smead Dept Aerosp Engn Sci, Boulder, CO 80309 USA
[5] Univ Colorado, Dept Phys, Boulder, CO 80302 USA
[6] Univ Colorado, JILA, Boulder, CO 80309 USA
[7] NIST, Boulder, CO 80309 USA
基金
中国国家自然科学基金;
关键词
surface vibrational resonance; pillared plate; pillared surface; phononic crystal; acoustic; elastic metamaterial; elastic metasurface; nanophononic metamaterial; WAVE BAND-GAPS; THERMAL-CONDUCTIVITY; LIGHT-PROPAGATION; ACOUSTIC METAMATERIALS; TRANSPORT-COEFFICIENTS; PHOTONIC CRYSTALS; HEAT-TRANSPORT; DEFECT MODES; SILICON; PLATE;
D O I
10.1088/1361-6633/abdab8
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
The introduction of engineered resonance phenomena on surfaces has opened a new frontier in surface science and technology. Pillared phononic crystals, metamaterials, and metasurfaces are an emerging class of artificial structured media, featuring surfaces that consist of pillars-or branching substructures-standing on a plate or a substrate. A pillared phononic crystal exhibits Bragg band gaps, while a pillared metamaterial may feature both Bragg band gaps and local resonance hybridization band gaps. These two band-gap phenomena, along with other unique wave dispersion characteristics, have been exploited for a variety of applications spanning a range of length scales and covering multiple disciplines in applied physics and engineering, particularly in elastodynamics and acoustics. The intrinsic placement of pillars on a semi-infinite surface-yielding a metasurface-has similarly provided new avenues for the control and manipulation of wave propagation. Classical waves are admitted in pillared media, including Lamb waves in plates and Rayleigh and Love waves along the surfaces of substrates, ranging in frequency from hertz to several gigahertz. With the presence of the pillars, these waves couple with surface resonances richly creating new phenomena and properties in the subwavelength regime and in some applications at higher frequencies as well. At the nanoscale, it was shown that atomic-scale resonances-stemming from nanopillars-alter the fundamental nature of conductive thermal transport by reducing the group velocities and generating mode localizations across the entire spectrum of the constituent material well into the terahertz regime. In this article, we first overview the history and development of pillared materials, then provide a detailed synopsis of a selection of key research topics that involve the utilization of pillars or similar branching substructures in different contexts. Finally, we conclude by providing a short summary and some perspectives on the state of the field and its promise for further future development.
引用
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页数:51
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