Time Reversal in Subwavelength-Scaled Resonant Media: Beating the Diffraction Limit

F. Lemoult, A. Ourir, J. Rosny, A. Tourin, M. Fink, G. Lerosey
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引用次数: 10

Abstract

Time reversal is a physical concept that can focus waves both spatially and temporally regardless of the complexity of the propagation medium. Time reversal mirrors have been demonstrated first in acoustics, then with electromagnetic waves, and are being intensively studied in many fields ranging from underwater communications to sensing. In this paper, we will review the principles of time reversal and in particular its ability to focus waves in complex media. We will show that this focusing effect depends on the complexity of the propagation medium rather than on the time reversal mirror itself. A modal approach will be utilized to explain the physical mechanism underlying the concept. A particular focus will be given on the possibility to break the diffraction barrier from the far field using time reversal. We will show that finite size media made out of coupled subwavelength resonators support modes which can radiate efficiently in the far field spatial information of the near field of a source. We will show through various examples that such a process, due to reversibility, permits to beat the diffraction limit using far field time reversal, and especially that this result occurs owing to the broadband inherent nature of time reversal.
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亚波长尺度谐振介质的时间反转:突破衍射极限
时间反转是一个物理概念,它可以在空间和时间上聚焦波,而不考虑传播介质的复杂性。时间反转镜首先应用于声学,然后应用于电磁波,并在从水下通信到传感等许多领域得到深入研究。在本文中,我们将回顾时间反转的原理,特别是它在复杂介质中聚焦波的能力。我们将表明,这种聚焦效应取决于传播介质的复杂性,而不是时间反转镜本身。将采用模态方法来解释该概念背后的物理机制。将特别着重于利用时间反转从远场突破衍射势垒的可能性。我们将证明,由耦合的亚波长谐振器组成的有限尺寸介质支持在源的近场远场空间信息中有效辐射的模式。我们将通过各种例子表明,由于可逆性,这种过程允许使用远场时间反转来突破衍射极限,特别是由于时间反转的宽带固有性质而产生这种结果。
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