Dielectric Nanolensing: How a Wavelength-Scale Lens Carries Hidden Detail into an Ordinary Microscope and What Chemistry Should Build Next

Abstract Dielectric nanolensing has evolved from a wavelength-scale molecular lens into a broad family of microsphere, particle-lens, scanning, arrayed, and computational platforms. Breakthrough advances now include white-light nanoscopy, immersed high-index imaging, large-field scanning, nondestructive semiconductor metrology, living-cell optics, nanolithography, and substrate-free Raman analysis. This Perspective explains, in accessible terms, how a lens placed in the specimen’s near field can redirect otherwise inaccessible spatial information into light collected by an ordinary objective. It then reconciles curvature, solid immersion, nanojets, Mie and whispering-gallery modes, and Fano interference as condition-dependent contributions rather than competing universal explanations. The central opportunity is forward-looking: chemistry can control complex refractive index, shape, assembly, environment, and the nanometre-scale lens-specimen gap, while quantitative transfer measurements can replace incomparable resolution claims. Together, these developments point toward scalable, calibrated nanolenses for imaging, metrology, and chemical analysis.

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Publication Details

Journal
The Journal of Physical Chemistry Letters
Published
2026-10-01
DOI
https://doi.org/10.1021/acs.jpclett.6c02903
Primary Topic
Near-Field Optical Microscopy
Type
article
Field-Weighted Citation Impact
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article

Dielectric Nanolensing: How a Wavelength-Scale Lens Carries Hidden Detail into an Ordinary Microscope and What Chemistry Should Build Next

Kwang S. Kim
The Journal of Physical Chemistry Letters
Near-Field Optical Microscopy
article

Dielectric Nanolensing: How a Wavelength-Scale Lens Carries Hidden Detail into an Ordinary Microscope and What Chemistry Should Build Next

Kwang S. Kim
article en

Abstract

Abstract Dielectric nanolensing has evolved from a wavelength-scale molecular lens into a broad family of microsphere, particle-lens, scanning, arrayed, and computational platforms. Breakthrough advances now include white-light nanoscopy, immersed high-index imaging, large-field scanning, nondestructive semiconductor metrology, living-cell optics, nanolithography, and substrate-free Raman analysis. This Perspective explains, in accessible terms, how a lens placed in the specimen’s near field can redirect otherwise inaccessible spatial information into light collected by an ordinary objective. It then reconciles curvature, solid immersion, nanojets, Mie and whispering-gallery modes, and Fano interference as condition-dependent contributions rather than competing universal explanations. The central opportunity is forward-looking: chemistry can control complex refractive index, shape, assembly, environment, and the nanometre-scale lens-specimen gap, while quantitative transfer measurements can replace incomparable resolution claims. Together, these developments point toward scalable, calibrated nanolenses for imaging, metrology, and chemical analysis.

The Journal of Physical Chemistry Letters
Ulsan National Institute of Science and Technology (KR)
Sustainable cities and communities
Openalex Percentile: Top 22%
Near-Field Optical Microscopy
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