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Thermoelectricity in Heterogeneous Nanofluidic Channels.

Long LiQinggong Wang
Published in: Small (Weinheim an der Bergstrasse, Germany) (2018)
Ionic fluids are essential to energy conversion, water desalination, drug delivery, and lab-on-a-chip devices. Ionic transport in nanoscale confinements and complex physical fields still remain elusive. Here, a nanofluidic system is developed using nanochannels of heterogeneous surface properties to investigate transport properties of ions under different temperatures. Steady ionic currents are observed under symmetric temperature gradients, which is equivalent to generating electricity using waste heat (e.g., electronic chips and solar panels). The currents increase linearly with temperature gradient and nonlinearly with channel size. Contributions to ion motion from temperatures and channel properties are evaluated for this phenomenon. The findings provide insights into the study of confined ionic fluids in multiphysical fields, and suggest applications in thermal energy conversion, temperature sensors, and chip-level thermal management.
Keyphrases
  • ionic liquid
  • drug delivery
  • solid state
  • high throughput
  • circulating tumor cells
  • mental health
  • cancer therapy
  • quantum dots
  • low cost
  • heat stress
  • aqueous solution