{"title":"微-中-大孔通道精细定制,用于高效的水分能量收集","authors":"Chenxing Wang, Peng Duan, Yinpeng Huang, Xulei Lu, Chunqiao Fu, Yong Zhang, Linmao Qian, Tingting Yang","doi":"10.1038/s41467-025-61898-5","DOIUrl":null,"url":null,"abstract":"<p>Water and ion channels are crucial for moisture energy harvesting, requiring precise pore design for mass transfer control. However, the key challenge lies in managing the localized assembly process of membrane materials to arrange them orderly, forming confined mass transfer pathways and stable solid-liquid interfaces. This is essential for exploring the interrelationship among channel morphological characteristics, mass transfer dynamics, and device power generation performance. This work proposes the use of freeze-assisted salting-out to meticulously construct hydrogel bilayer membranes with micro-meso-macroporous oriented channels and asymmetric charge characteristics. The produced polyvinyl alcohol/MXene hydrogel devices achieved a <i>V</i><sub>oc</sub> <i>× J</i><sub>sc</sub> of 11.4 μW cm<sup>−2</sup> (pure hydrovoltaic effect) and 146 μW cm<sup>−2</sup> (with active electrodes) at 25 °C, 45%RH, surpassing most moisture-based generators. In addition, the power generation performance is highly consistent with the Hofmeister series, with stronger salting-out effect to obtain more micropores and mesopores, and ice crystal growth can help obtain ordered macropores. It has faster water transport rate, higher ionic conductivity, better ionic selectivity, and stronger channel stability than traditional moisture-based power generation membranes. This relationship between pore tuning from salt ions and device power generation performance provides a design basis for the development of high-performance moisture-based power generators.</p>","PeriodicalId":19066,"journal":{"name":"Nature Communications","volume":"11 1","pages":""},"PeriodicalIF":14.7000,"publicationDate":"2025-07-16","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Micro-meso-macroporous channels finely tailored for highly efficient moisture energy harvesting\",\"authors\":\"Chenxing Wang, Peng Duan, Yinpeng Huang, Xulei Lu, Chunqiao Fu, Yong Zhang, Linmao Qian, Tingting Yang\",\"doi\":\"10.1038/s41467-025-61898-5\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p>Water and ion channels are crucial for moisture energy harvesting, requiring precise pore design for mass transfer control. However, the key challenge lies in managing the localized assembly process of membrane materials to arrange them orderly, forming confined mass transfer pathways and stable solid-liquid interfaces. This is essential for exploring the interrelationship among channel morphological characteristics, mass transfer dynamics, and device power generation performance. This work proposes the use of freeze-assisted salting-out to meticulously construct hydrogel bilayer membranes with micro-meso-macroporous oriented channels and asymmetric charge characteristics. The produced polyvinyl alcohol/MXene hydrogel devices achieved a <i>V</i><sub>oc</sub> <i>× J</i><sub>sc</sub> of 11.4 μW cm<sup>−2</sup> (pure hydrovoltaic effect) and 146 μW cm<sup>−2</sup> (with active electrodes) at 25 °C, 45%RH, surpassing most moisture-based generators. In addition, the power generation performance is highly consistent with the Hofmeister series, with stronger salting-out effect to obtain more micropores and mesopores, and ice crystal growth can help obtain ordered macropores. It has faster water transport rate, higher ionic conductivity, better ionic selectivity, and stronger channel stability than traditional moisture-based power generation membranes. 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引用次数: 0
摘要
水和离子通道是至关重要的水分能量收集,需要精确的孔设计传质控制。然而,关键的挑战在于管理膜材料的局部组装过程,使其有序排列,形成有限的传质途径和稳定的固液界面。这对于探索通道形态特征、传质动力学和器件发电性能之间的相互关系至关重要。本研究提出利用冷冻辅助盐析技术精心构建具有微-中-大孔定向通道和不对称电荷特征的水凝胶双层膜。所制备的聚乙烯醇/MXene水凝胶装置在25°C, 45%RH下的Voc × Jsc为11.4 μW cm - 2(纯光伏效应)和146 μW cm - 2(有活性电极),超过了大多数湿基发生器。此外,发电性能与Hofmeister系列高度一致,盐析作用更强,可以获得更多的微孔和介孔,冰晶生长有助于获得有序的大孔。与传统的湿基发电膜相比,具有更快的输水速率、更高的离子电导率、更好的离子选择性和更强的通道稳定性。这种盐离子孔径调谐与器件发电性能之间的关系为开发高性能湿基发电机提供了设计依据。
Micro-meso-macroporous channels finely tailored for highly efficient moisture energy harvesting
Water and ion channels are crucial for moisture energy harvesting, requiring precise pore design for mass transfer control. However, the key challenge lies in managing the localized assembly process of membrane materials to arrange them orderly, forming confined mass transfer pathways and stable solid-liquid interfaces. This is essential for exploring the interrelationship among channel morphological characteristics, mass transfer dynamics, and device power generation performance. This work proposes the use of freeze-assisted salting-out to meticulously construct hydrogel bilayer membranes with micro-meso-macroporous oriented channels and asymmetric charge characteristics. The produced polyvinyl alcohol/MXene hydrogel devices achieved a Voc× Jsc of 11.4 μW cm−2 (pure hydrovoltaic effect) and 146 μW cm−2 (with active electrodes) at 25 °C, 45%RH, surpassing most moisture-based generators. In addition, the power generation performance is highly consistent with the Hofmeister series, with stronger salting-out effect to obtain more micropores and mesopores, and ice crystal growth can help obtain ordered macropores. It has faster water transport rate, higher ionic conductivity, better ionic selectivity, and stronger channel stability than traditional moisture-based power generation membranes. This relationship between pore tuning from salt ions and device power generation performance provides a design basis for the development of high-performance moisture-based power generators.
期刊介绍:
Nature Communications, an open-access journal, publishes high-quality research spanning all areas of the natural sciences. Papers featured in the journal showcase significant advances relevant to specialists in each respective field. With a 2-year impact factor of 16.6 (2022) and a median time of 8 days from submission to the first editorial decision, Nature Communications is committed to rapid dissemination of research findings. As a multidisciplinary journal, it welcomes contributions from biological, health, physical, chemical, Earth, social, mathematical, applied, and engineering sciences, aiming to highlight important breakthroughs within each domain.