纳米流体学
光电子学
异质结
等离子体子
材料科学
表面等离子共振
表面等离子体子
吸收(声学)
离子键合
离子
化学物理
共振(粒子物理)
扩散
化学
局域表面等离子体子
电子
表面等离子体激元
离子运输机
载流子
能量转换效率
纳米技术
能量收集
电场
磷烯
光热治疗
图层(电子)
电子迁移率
作者
Shixuan Xia,Weiwen Xin,N. Wang,Jingyi Guo,George Zhang,Chungui Tian,Liping Wen,Liping Jiang,Honggang Fu
标识
DOI:10.1002/anie.202522625
摘要
Photoresponsive nanofluidics hold great promise for osmotic energy conversion, leveraging the photo-electro-ion transport conversion process. However, conventional semiconductor-based nanofluidics, which only rely on intrinsic interband transition, constrain the absorption range of light for performance enhancements. Here, we have developed a plasmonic semiconductive heterojunction nanofluidics (PSH-NFs) by integrating a W18O49 layer exhibiting strong localized surface plasmon resonance (LSPR), with a hole-trapping Co(OH)2 layer. The synergy forms a type-II heterojunction, specifically designed for near-full-spectrum light absorption. Under simulated standard sunlight irradiation, the synergistic effect of LSPR-generated hot electrons and separated photogenerated carriers at the heterojunction interface creates a significantly enhanced surface potential gradient, ensuring a high ion selectivity of 0.93. Furthermore, the directional alignment of these photogenerated carrier transport with the diffusion of cation markedly improves interfacial ion transport efficiency, leading to a substantially increased ionic flux, in agreement with theoretical calculations. Consequently, the PSH-NFs deliver a power density of 36.4 W m-2, which is a 58.3% increase over non-irradiated conditions and surpasses the performance of reported photoresponsive nanofluidics. The generated electricity can be effectively used to power electronic devices via a photoregulated procedure.
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