Efficient solar energy conversion bionic sunlight-driven ion transport boosted by synergistic photo-electric/thermal effects
Mimicking smart light-controlled ion transport in biological channels exhibits exceptional application potential. However, to achieve efficiency comparable to those of biological counterparts, both constructing delicate nanoarchitectures and developing novel light-responsive mechanisms are urgently...
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Veröffentlicht in: | Energy & environmental science 2023-07, Vol.16 (7), p.3146-3157 |
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Zusammenfassung: | Mimicking smart light-controlled ion transport in biological channels exhibits exceptional application potential. However, to achieve efficiency comparable to those of biological counterparts, both constructing delicate nanoarchitectures and developing novel light-responsive mechanisms are urgently required. Herein, unique light-regulated ion transport driven by a photo-electric/thermal synergistic effect was realized in a two-dimensional Ti
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heterogenous nanochannel. Under illumination, the separation of photoexcited charge carriers in nanofluidic channels directly prompted spontaneous ion migration. Furthermore, benefiting from the light-to-heat conversion of Ti
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channels, the temperature field further reinforced the transport motivation. On this basis, effective modulation of ionic diffusion was achieved even under natural sunlight. In this regime, not only osmotic power in traditional salinity-gradient systems could be efficiently harvested with the help of light irradiation, but also the ionic energy could be successfully converted into electricity in a symmetric solution system. Our work opens up an avenue for the design of intelligent light-triggered nanochannels for solar energy conversion and storage.
High-efficient light-responsive ion transport in heterogenous 2D Ti
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T
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g-C
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/chitosan nanochannels based on a photo-electric/thermal synergic mechanism promote the possibility of practical ionic/solar/electricity energy conversion applications. |
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ISSN: | 1754-5692 1754-5706 |
DOI: | 10.1039/d3ee00720k |