共 55 条
Unlocking osmotic energy harvesting potential in challenging real-world hypersaline environments through vermiculite-based hetero-nanochannels
被引:55
作者:
Wang, Jin
[1
]
Cui, Zheng
[1
]
Li, Shangzhen
[1
]
Song, Zeyuan
[1
]
He, Miaolu
[1
]
Huang, Danxi
[1
]
Feng, Yuan
[1
]
Liu, Yanzheng
[1
]
Zhou, Ke
[2
]
Wang, Xudong
[1
]
Wang, Lei
[1
]
机构:
[1] Xian Univ Architecture & Technol, Res Inst Membrane Separat Technol Shaanxi Prov, Sch Environm & Municipal Engn, Key Lab Membrane Separat Shaanxi Prov, Xian, Peoples R China
[2] Soochow Univ, Soochow Inst Energy & Mat Innovat SIEMIS, Coll Energy, Jiangsu Prov Key Lab Adv Carbon Mat & Wearable Ene, Suzhou, Peoples R China
基金:
国家重点研发计划;
中国国家自然科学基金;
关键词:
GRAPHENE OXIDE;
ION-TRANSPORT;
NANOFLUIDIC CHANNELS;
MEMBRANE;
PERFORMANCE;
ULTRATHIN;
WATER;
D O I:
10.1038/s41467-023-44434-1
中图分类号:
O [数理科学和化学];
P [天文学、地球科学];
Q [生物科学];
N [自然科学总论];
学科分类号:
07 ;
0710 ;
09 ;
摘要:
Nanochannel membranes have demonstrated remarkable potential for osmotic energy harvesting; however, their efficiency in practical high-salinity systems is hindered by reduced ion selectivity. Here, we propose a dual-separation transport strategy by constructing a two-dimensional (2D) vermiculite (VMT)-based heterogeneous nanofluidic system via an eco-friendly and scalable method. The cations are initially separated and enriched in micropores of substrates during the transmembrane diffusion, followed by secondary precise sieving in ultra-thin VMT laminates with high ion flux. Resultantly, our nanofluidic system demonstrates efficient osmotic energy harvesting performance, especially in hypersaline environment. Notably, we achieve a maximum power density of 33.76 W m-2, a 6.2-fold improvement with a ten-fold increase in salinity gradient, surpassing state-of-the-art nanochannel membranes under challenging conditions. Additionally, we confirm practical hypersaline osmotic power generation using various natural salt-lake brines, achieving a power density of 25.9 W m-2. This work triggers the hopes for practical blue energy conversion using advanced nanoarchitecture. Harvesting osmotic energy in real world high-salinity solutions poses great challenges, authors propose nanofluidic membranes with a dual separation mechanism based on vermiculite nanosheets with an isomorphic substitution structure, showing excellent energy conversion in hypersaline environments.
引用
收藏
页数:12
相关论文