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Acoustic Assembly and Scanning of Superlens Arrays for High-Resolution and Large Field-of-View Bioimaging. | LitMetric

Acoustic Assembly and Scanning of Superlens Arrays for High-Resolution and Large Field-of-View Bioimaging.

ACS Nano

Department of Electronic Engineering, School of Electronic Science and Engineering, Xiamen University, Xiamen 361005, P. R. China.

Published: June 2024

AI Article Synopsis

  • High-resolution bioimaging is crucial for life sciences, and new techniques using microspheres with optical microscopes show promise for overcoming image resolution limits.
  • This study demonstrates a method using acoustic waves to arrange and control microsphere superlens arrays, enabling effective and flexible imaging of targets like nanostructures and biological cells.
  • The proposed acoustic superlens array offers a significant efficiency improvement—over 100 times that of single lenses—making it a cost-effective solution for enhancing super-resolution microscopy.

Article Abstract

High-resolution and dynamic bioimaging is essential in life sciences and biomedical applications. In recent years, microspheres combined with optical microscopes have offered a low cost but promising solution for super-resolution imaging, by breaking the diffraction barrier. However, challenges still exist in precisely and parallelly superlens controlling using a noncontact manner, to meet the demands of large-area scanning imaging for desired targets. This study proposes an acoustic wavefield-based strategy for assembling and manipulating micrometer-scale superlens arrays, in addition to achieving on-demand scanning imaging through phase modulation. In experiments, acoustic pressure nodes are designed to be comparable in size to microspheres, allowing spatially dispersed microspheres to be arranged into arrays with one unit per node. Droplet microlenses with various diameters can be adapted in the array, allowing for a wide range of spacing periods by applying different frequencies. In addition, through the continuous phase shifting in the and directions, this acoustic superlens array achieves on-demand moving for the parallel high-resolution virtual image capturing and scanning of nanostructures and biological cell samples. As a comparison, this noncontact and cost-effective acoustic manner can obtain more than ∼100 times the acquisition efficiency of a single lens, holding promise in advancing super-resolution microscopy and subcellular-level bioimaging.

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Source
http://dx.doi.org/10.1021/acsnano.4c03650DOI Listing

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