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Robust Sandwich‐Structured Nanofluidic Diodes Modulating Ionic Transport for an Enhanced Electrochromic Performance

机译:坚固的三明治结构纳米流体二极管可调节离子传输增强电致变色性能

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摘要

Biomimetic solid‐state nanofluidic diodes have attracted extensive research interest due to the possible applications in various fields, such as biosensing, energy conversion, and nanofluidic circuits. However, contributions of exterior surface to the transmembrane ionic transport are often ignored, which can be a crucial factor for ion rectification behavior. Herein, a rational design of robust sandwich‐structured nanofluidic diode is shown by creating opposite charges on the exterior surfaces of a nanoporous membrane using inorganic oxides with distinct isoelectric points. Potential‐induced changes in ion concentration within the nanopores lead to a current rectification; the results are subsequently supported by a theoretical simulation. Except for providing surface charges, functional inorganic oxides used in this work are complementary electrochromic materials. Hence, the sandwich‐structured nanofluidic diode is further developed into an electrochromic membrane exhibiting a visual color change in response to redox potentials. The results show that the surface‐charge‐governed ionic transport and the nanoporous structure facilitate the migration of Li+ ions, which in turn enhance the electrochromic performance. It is envisioned that this work will create new avenues to design and optimize nanofluidic diodes and electrochromic devices.
机译:仿生固态纳米流体二极管由于在生物传感,能量转换和纳米流体电路等各个领域的可能应用而引起了广泛的研究兴趣。但是,外表面对跨膜离子迁移的贡献通常被忽略,这可能是离子整流行为的关键因素。在这里,通过使用具有不同等电点的无机氧化物在纳米多孔膜的外表面产生相反的电荷,可以显示出鲁棒的三明治结构纳米流体二极管的合理设计。纳米孔中离子浓度的潜在诱导变化导致电流整流;随后的结果得到了理论模拟的支持。除提供表面电荷外,用于这项工作的功能性无机氧化物是互补的电致变色材料。因此,夹层结构的纳米流体二极管进一步发展成为电致变色膜,该膜响应于氧化还原电势而呈现出可见的颜色变化。结果表明,表面电荷控制的离子迁移和纳米孔结构促进了Li + 离子的迁移,从而增强了电致变色性能。可以预见,这项工作将为设计和优化纳米流体二极管和电致变色器件创造新的途径。

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