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Updated: Aug 13, 2026

Membrane Transport Processes Analyzed by a Highly Parallel Nanopore Chip System at Single Protein Resolution
Published on: August 16, 2016
Dynamic Liquid-like Membrane Gates Mass Transport in Inorganic Nanocells
Yong Lu1, Zhexuan Song2, Zetan Cao1
1Center for Ultrafast Science and Technology, School of Chemistry and Chemical Engineering, Shanghai Jiao Tong University, Shanghai200240, China.
Abstract:
Interactive "visualization-manipulation" of membrane-regulated behavior with high spatiotemporal resolution remains challenging. Here, we in situ design and visualize inorganic nanocells from an exciting cinnabar semiconductor while simultaneously forming liquid-like membranes and Hg nanodroplets. A full picture of such membranes from birth to disappearance, including membrane-associated gating of mass transport either in a single nanocell or across multiple nanocells, is revealed at the atomic scale. Periodic reversible cross-feeding occurs among nanodroplets confined in a single nanocell, preventing the release of Hg-associated species to the surroundings. However, once the ionic balance of membranes is disturbed by nanobubbles or electrolytes, the nanodroplets collapse. The released species experience cell-to-cell transport over long distances through nanochannels and are crystallized into Hg(I/II) compounds. Ab initio molecular dynamics simulations suggest that the nanodroplet-membrane interface undergoes dynamic charge fluctuations, recognizing membrane-regulated mass transport in nanoconfined systems. The flexible membrane is stabilized through the balance between Hg atoms and ions, which can be destroyed by nanobubbles.
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