State Key Laboratory of Analytical Chemistry for Life Science, School of Chemistry and Chemical Engineering, Nanjing University, Nanjing 210023, China.
School of Public Health, Nantong University, Nantong 226019, China.
ACS Appl Mater Interfaces. 2023 May 17;15(19):23922-23930. doi: 10.1021/acsami.3c01936. Epub 2023 May 5.
The unique ion-transport properties in nanoconfined pores enable nanofluidic devices with great potential in harvesting osmotic energy. The energy conversion performance could be significantly improved by the precise regulation of the "permeability-selectivity" trade-off and the ion concentration polarization effect. Here, we take the advantage of electrodeposition technique to fabricate a Janus metal-organic framework (J-MOF) membrane that possesses rapid ion-transport capability and impeccable ion selectivity. The asymmetric structure and asymmetric surface charge distribution of the J-MOF device can suppress the ion concentration polarization effect and enhance the ion charge separation, exhibiting an improved energy harvesting performance. An output power density of 3.44 W/m has been achieved with the J-MOF membrane at a 1000-fold concentration gradient. This work provides a new strategy for fabricating high-performance energy-harvesting devices.
在纳米受限孔中独特的离子输运特性使纳米流道装置在获取渗透能方面具有巨大的潜力。通过精确调节“渗透性-选择性”权衡和离子浓度极化效应,可以显著提高能量转换性能。在这里,我们利用电沉积技术制备了具有快速离子输运能力和完美离子选择性的Janus 金属有机骨架(J-MOF)膜。J-MOF 器件的不对称结构和不对称表面电荷分布可以抑制离子浓度极化效应,增强离子电荷分离,从而提高能量收集性能。在 1000 倍浓度梯度下,J-MOF 膜的输出功率密度达到 3.44 W/m。这项工作为制造高性能能量收集器件提供了新的策略。