AI Article Synopsis

  • Microscopic imaging in 3D faces challenges due to diffraction that limits high-resolution optical imaging over a large depth range.
  • A new approach using specific light paths with metasurfaces creates a direct relationship between incident and collected light, allowing for improved imaging.
  • This technique, called bijective illumination collection imaging, achieves high-resolution tissue imaging at 1.3 μm wavelength with approximately 3.2 μm lateral resolution, maintaining clarity over a 1.25 mm depth without extra complexity in data processing.

Article Abstract

Microscopic imaging in three dimensions enables numerous biological and clinical applications. However, high-resolution optical imaging preserved in a relatively large depth range is hampered by the rapid spread of tightly confined light due to diffraction. Here, we show that a particular disposition of light illumination and collection paths liberates optical imaging from the restrictions imposed by diffraction. This arrangement, realized by metasurfaces, decouples lateral resolution from depth-of-focus by establishing a one-to-one correspondence (bijection) along a focal line between the incident and collected light. Implementing this approach in optical coherence tomography, we demonstrate tissue imaging at 1.3 μm wavelength with ~ 3.2 μm lateral resolution, maintained nearly intact over 1.25 mm depth-of-focus, with no additional acquisition or computation burden. This method, termed bijective illumination collection imaging, is general and might be adapted across various existing imaging modalities.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9355264PMC
http://dx.doi.org/10.1038/s41566-022-00956-6DOI Listing

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