Site-selective heat boosting electrochemiluminescence for single cell imaging.
Xiaodan GouYiwen ZhangZejing XingCheng MaChang-Jie MaoJun-Jie ZhuPublished in: Chemical science (2023)
In operando visualization of local electrochemical reactions provides mechanical insights into the dynamic transport of interfacial charge and reactant/product. Electrochemiluminescence is a crossover technique that quantitatively determines Faraday current and mass transport in a straightforward manner. However, the sensitivity is hindered by the low collision efficiency of radicals and side reactions at high voltage. Here, we report a site-selective heat boosting electrochemiluminescence microscopy. By generating a micron-scale heat point in situ at the electrode-solution interface, we achieved an enhancement of luminescence intensity up to 63 times, along with an advance of 0.2 V in applied voltage. Experimental results and finite element simulation demonstrate that the fundamental reasons are accelerated reaction rate and thermal convection via a photothermal effect. The concentrated electrochemiluminescence not only boosts the contrast of single cells by 20.54 times but also enables the site-selective cell-by-cell analysis of the heterogeneous membrane protein abundance. This electrochemical visualization method has great potential in the highly sensitive and selective analysis of local electron transfer events.
Keyphrases
- electron transfer
- single cell
- energy transfer
- sensitive detection
- rna seq
- gold nanoparticles
- heat stress
- high resolution
- high throughput
- ionic liquid
- molecularly imprinted
- cell therapy
- label free
- quantum dots
- magnetic resonance
- stem cells
- photodynamic therapy
- drug delivery
- mass spectrometry
- clinical trial
- computed tomography
- magnetic resonance imaging
- high intensity
- optical coherence tomography
- climate change
- high speed
- cell cycle arrest
- fluorescence imaging
- risk assessment