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Updated: Aug 13, 2026

Super-resolution Imaging of the Bacterial Division Machinery
Published on: January 21, 2013
Single-visible-light-modulated photoswitches with aggregation-induced emission for super-resolution imaging
Xiaowei Fang1,2, Pengwei Jin1,2, Fanghui Li1,2
1State Key Laboratory of Green Chemical Engineering and Industrial Catalysis, Key Laboratory for Advanced Materials and Joint International Research Laboratory of Precision Chemistry and Molecular Engineering, Shanghai Key Laboratory of Functional Materials Chemistry, East China University of Science and Technology Shanghai 200237 China whzhu@ecust.edu.cn limengqi@ecust.edu.cn.
None:
Super-resolution fluorescence imaging (SRI) overcomes the traditional optical diffraction limit, enabling the visualization of microstructures at the nanoscale. Central to this technique is the precise photo-modulation of molecular fluorescence emission, yet it remains a formidable challenge to develop visible-light-responsive photoswitching systems with aggregation-induced emission (AIE) that are biocompatible and suitable for solid-state applications. Herein, we construct a series of unique fluorescent photoswitches with single-visible-light modulation by incorporating sulfone units into a sterically hindered diarylethene. By introducing sulfone units and adjusting the substituent effect, the fluorescent photoswitches exhibit band-tail absorption, demonstrating superior single-visible-light-stimulation ability (488 or 561 nm light) and efficiently preventing damage from short-wavelength light. Notably, the weak π-π stacking and the activated restriction of intramolecular vibration (RIV) process, caused by the large, bulky ethylene bridge, also endow the fluorescent photoswitch with unique aggregation-induced emission properties. Thus, such fluorescent photoswitches exhibit fluorescence emission with a high fluorescent quantum yield and on-off ratio (>100) in the aggregated state, which successfully enables a single long-wavelength 561 nm laser, a privileged source, to perform Stochastic Optical Reconstruction Microscopy (STORM) imaging of nano-micelles with high resolution. This work offers a robust photonics-based approach to the development of remote and non-invasive fluorescence modulation platforms, fundamentally advancing the frontiers of SRI techniques.

