Kiełczyński Piotr
Institute of Fundamental Technological Research, Polish Academy of Sciences, ul. Pawińskiego 5B, 02-106 Warsaw, Poland.
Sensors (Basel). 2023 Dec 17;23(24):9879. doi: 10.3390/s23249879.
The advent of elastic metamaterials at the beginning of the 21st century opened new venues and possibilities for the existence of new types of elastic (ultrasonic) surface waves, which were deemed previously impossible. In fact, it is not difficult to prove that shear horizontal (SH) elastic surface waves cannot exist on the elastic half-space or at the interface between two conventional elastic half-spaces. However, in this paper we will show that SH elastic surface waves can propagate at the interface between two elastic half-spaces, providing that one of them is a metamaterial with a negative elastic compliance s44(ω). If in addition, s44(ω) changes with frequency ω as the dielectric function ε(ω) in Drude's model of metals, then the proposed SH elastic surface waves can be considered as an elastic analogue of surface plasmon polariton (SPP) electromagnetic waves, propagating at a metal-dielectric interface. Due to inherent similarities between the proposed SH elastic surface waves and SPP electromagnetic waves, the new results developed in this paper can be readily transferred into the SPP domain and vice versa. The proposed new SH elastic surface waves are characterized by a strong subwavelength confinement of energy in the vicinity of the guiding interface; therefore, they can potentially be used in subwavelength ultrasonic imaging, superlensing, and/or acoustic (ultrasonic) sensors with extremely high mass sensitivity.
21世纪初弹性超材料的出现为新型弹性(超声)表面波的存在开辟了新途径和可能性,而这些表面波在以前被认为是不可能存在的。事实上,不难证明水平剪切(SH)弹性表面波不能存在于弹性半空间或两个常规弹性半空间的界面上。然而,在本文中我们将表明,SH弹性表面波能够在两个弹性半空间的界面处传播,条件是其中一个是具有负弹性柔度s44(ω)的超材料。此外,如果s44(ω)随频率ω的变化如同德鲁德金属模型中的介电函数ε(ω),那么所提出的SH弹性表面波可被视为在金属 - 电介质界面传播的表面等离激元极化激元(SPP)电磁波的弹性类似物。由于所提出的SH弹性表面波与SPP电磁波之间存在内在相似性,本文所得到的新结果能够很容易地转换到SPP领域,反之亦然。所提出的新型SH弹性表面波的特点是在引导界面附近具有很强的亚波长能量限制;因此,它们有可能用于亚波长超声成像、超透镜和/或具有极高质量灵敏度的声学(超声)传感器。