CAS Key Laboratory of Bio-inspired Materials and Interfacial Science, Technical Institute of Physics and Chemistry, Chinese Academy of Sciences, Beijing, 100190, P. R. China.
University of Chinese Academy of Sciences, Beijing, 100049, P. R. China.
Adv Mater. 2023 Jun;35(24):e2301285. doi: 10.1002/adma.202301285. Epub 2023 Apr 25.
Ion-selective membranes act as the core components in osmotic energy harvesting, but remain with deficiencies such as low ion selectivity and a tendency to swell. 2D nanofluidic membranes as competitive candidates are still subjected to limited mass transport brought by insufficient wetting and poor stability in water. Here, an ionic-liquid-infused graphene oxide (GO@IL) membrane with ultrafast ion transport ability is reported, and how the confined ionic liquid mediates selective cation diffusion is revealed. The infusion of ionic liquids endows the 2D membrane with excellent mechanical strength, anti-swelling properties, and good stability in aqueous electrolytes. Importantly, immiscible ionic liquids also provide a medium, allowing partial dehydration for ultrafast ion transport. Through molecular dynamics simulation and finite element modeling, that GO nanosheets induce ionic liquids to rearrange, bringing in additional space charges, which can be coupled with GO synergistically, is proved. By mixing 0.5/0.01 m NaCl solution, the power density can achieve a record value of ≈6.7 W m , outperforming state-of-art GO-based membranes. This work opens up a new route for boosting nanofluidic energy conversion because of the diversity of the ILs and 2D materials.
离子选择性膜作为渗透能收集的核心组件,但仍存在离子选择性低和容易膨胀等缺陷。二维纳米流道膜作为有竞争力的候选者,仍然受到润湿不足和在水中稳定性差带来的有限传质的限制。在这里,报道了一种具有超快离子传输能力的离子液体注入氧化石墨烯(GO@IL)膜,并揭示了受限离子液体如何介导选择性阳离子扩散。离子液体的注入赋予二维膜优异的机械强度、抗肿胀性能和在水基电解质中的良好稳定性。重要的是,不混溶的离子液体还提供了一种介质,允许部分去水合以实现超快离子传输。通过分子动力学模拟和有限元建模,证明 GO 纳米片诱导离子液体重新排列,引入额外的空间电荷,这可以与 GO 协同作用。通过混合 0.5/0.01 m NaCl 溶液,功率密度可达到约 6.7 W m 的创纪录值,超过了最先进的基于 GO 的膜。由于离子液体和二维材料的多样性,这项工作为促进纳米流道能量转换开辟了新途径。