Safaei Javad, Gao Yifu, Hosseinpour Mostafa, Zhang Xiuyun, Sun Yi, Tang Xiao, Zhang Zhijia, Wang Shijian, Guo Xin, Wang Yao, Chen Zhen, Zhou Dong, Kang Feiyu, Jiang Lei, Wang Guoxiu
Centre for Clean Energy Technology, School of Mathematical and Physical Sciences, Faculty of Science, University of Technology Sydney, Sydney, New South Wales2007, Australia.
Tsinghua Shenzhen International Graduate School, Tsinghua University, Shenzhen, Guangdong518055, People's Republic of China.
J Am Chem Soc. 2023 Feb 1;145(4):2669-2678. doi: 10.1021/jacs.2c12936. Epub 2023 Jan 18.
Two-dimensional (2D) nanofluidic membranes have shown great promise in harvesting osmotic energy from the salinity difference between seawater and fresh water. However, the output power densities are strongly hampered by insufficient membrane permselectivity. Herein, we demonstrate that vacancy engineering is an effective strategy to enhance the permselectivity of 2D nanofluidic membranes to achieve high-efficiency osmotic energy generation. Phosphorus vacancies were facilely created on NbOPO (NbP) nanosheets, which remarkably enlarged their negative surface charge. As verified by both experimental and theoretical investigations, the vacancy-introduced NbP (V-NbP) exhibited fast transmembrane ion migration and high ionic selectivity originating from the improved electrostatic affinity of cations. When applied in a natural river water|seawater osmotic power generator, the macroscopic-scale V-NbP membrane delivered a record-high power density of 10.7 W m, far exceeding the commercial benchmark of 5.0 W m. This work endows the remarkable potential of vacancy engineering for 2D materials in nanofluidic energy devices.
二维(2D)纳米流体膜在从海水和淡水之间的盐度差中获取渗透能方面显示出巨大的潜力。然而,膜的选择透过性不足严重阻碍了输出功率密度。在此,我们证明空位工程是一种提高二维纳米流体膜选择透过性以实现高效渗透能产生的有效策略。在NbOPO(NbP)纳米片上轻松创造出磷空位,这显著增加了它们的负表面电荷。实验和理论研究均证实,引入空位的NbP(V-NbP)表现出快速的跨膜离子迁移和高离子选择性,这源于阳离子静电亲和力的提高。当应用于天然河水|海水渗透发电机时,宏观尺度的V-NbP膜提供了创纪录的高功率密度10.7 W m,远远超过了5.0 W m的商业基准。这项工作赋予了空位工程在纳米流体能量装置中的二维材料显著潜力。