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Quasi-ballistic ion transport in a vertical microrod enabling efficient evaporation-driven power generation
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DOI:10.1038/s41560-026-02117-3.png)
Abstract
En 中文
Evaporation-driven power generation harnesses atmospheric thermal energy via streaming potential, but sluggish, non-directional fluid flow causes waste heat dissipation, limiting the power density. Here we demonstrate a machine learning-guided vertical microrod generator (VMG) that generates a directional Laplace pressure gradient for rapid fluid flow, thereby realizing quasi-ballistic ion transport. VMG delivers 21.5% power conversion efficiency and 14.3 W m−2 power density, with stability over 30 days under ambient conditions and retaining the efficiency over 20% across 30 K ambient temperature span. Integrated VMG arrays can power commercial devices, including emergency lights and 36 W ceiling lamps. This work achieves efficient conversion of low-power-density atmospheric thermal energy into electricity, offering a practical pathway for reliable off-grid power supply. Evaporation-driven power generators are often limited by non-directional fluid flow, which reduces their efficiency. Guided by machine learning, Wu et al. developed a vertical microrod generator that improves ion transport, increasing efficiency and power density.
Journal
IF:
60.1
Papers:
981
Citations:
5.6W
