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Updated: Jan 19, 2026

Fluorescence Imaging with One-nanometer Accuracy FIONA
Published on: September 26, 2014
Nanometer Accuracy in Cryogenic Far-Field Localization Microscopy of Individual Molecules
Taku Furubayashi1, Keita Ishida1, Hiromu Kashida2
1Department of Physics , Tokyo Institute of Technology , Meguro , Tokyo 152-8550 , Japan.
Abstract:
We demonstrate the nanometer accuracy of far-field fluorescence localization microscopy at a temperature of 1.8 K using near-infrared and red fluorophores bonded to double-stranded DNA molecules (10.2 nm length). Although each fluorophore was localized with a 1 nm lateral precision by acquiring an image at one axial position within the focal depth of ±0.7 μm, the distance between the two fluorophores on the lateral plane (D) was distributed from 0 to 50 nm. This systematic error was mainly due to detecting with the large focal depth the dipole emission from orientationally fixed fluorophores. Each fluorophore was localized with precisions of ±1 nm (lateral) and simultaneously ±11 nm (axial) by acquiring images every 100 nm in the axial direction from -900 to 900 nm. By correcting the dipole orientation effects, the distribution of D was centered around the DNA length. The average and standard deviation of D were 10 and 5 nm.
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