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异构动态介质中移动物体的波动动量整形

Wave-momentum shaping for moving objects in heterogeneous and dynamic media.

作者信息

Orazbayev Bakhtiyar, Malléjac Matthieu, Bachelard Nicolas, Rotter Stefan, Fleury Romain

机构信息

Physics Department, School of Sciences and Humanities, Nazarbayev University, Astana, Kazakhstan.

Laboratory of Wave Engineering, School of Engineering, EPFL, Lausanne, Switzerland.

出版信息

Nat Phys. 2024;20(9):1441-1447. doi: 10.1038/s41567-024-02538-5. Epub 2024 Jun 21.

Abstract

Light and sound waves can move objects through the transfer of linear or angular momentum, which has led to the development of optical and acoustic tweezers, with applications ranging from biomedical engineering to quantum optics. Although impressive manipulation results have been achieved, the stringent requirement for a highly controlled, low-reverberant and static environment still hinders the applicability of these techniques in many scenarios. Here we overcome this challenge and demonstrate the manipulation of objects in disordered and dynamic media by optimally tailoring the momentum of sound waves iteratively in the far field. The method does not require information about the object's physical properties or the spatial structure of the surrounding medium but relies only on a real-time scattering matrix measurement and a positional guide-star. Our experiment demonstrates the possibility of optimally moving and rotating objects to extend the reach of wave-based object manipulation to complex and dynamic scattering media. We envision new opportunities for biomedical applications, sensing and manufacturing.

摘要

光波和声波可以通过线性或角动量的传递来移动物体,这推动了光镊和声镊的发展,其应用范围涵盖从生物医学工程到量子光学等领域。尽管已经取得了令人瞩目的操纵成果,但对高度可控、低混响和静态环境的严格要求仍然阻碍了这些技术在许多场景中的应用。在此,我们克服了这一挑战,并通过在远场中迭代地优化调整声波的动量,展示了在无序和动态介质中对物体的操纵。该方法不需要关于物体物理特性或周围介质空间结构的信息,仅依赖于实时散射矩阵测量和位置引导星。我们的实验证明了以最佳方式移动物体和旋转物体的可能性,从而将基于波的物体操纵范围扩展到复杂和动态的散射介质。我们预见了生物医学应用、传感和制造方面的新机遇。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6dd4/11392811/b30aa1a38225/41567_2024_2538_Fig1_HTML.jpg

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