Light-enhanced osmotic energy generation with an aramid nanofiber membrane

被引:3
作者
Chen, Cheng [1 ,2 ]
Lin, Yunxiao [3 ]
Lei, Weiwei [2 ]
Yang, Guoliang [2 ]
Liu, Yuchen [2 ]
Xu, Mao [1 ]
Li, Xinhao [3 ]
Liu, Dan [2 ]
机构
[1] Anhui Agr Univ, Sch Resources & Environm, 130 Changjiang West Rd, Hefei 230036, Anhui, Peoples R China
[2] Deakin Univ, Inst Frontier Mat, Locked Bag 2000, Geelong, Vic 3220, Australia
[3] Shanghai Jiao Tong Univ, Sch Chem & Chem Engn, Shanghai, Peoples R China
基金
澳大利亚研究理事会; 中国国家自然科学基金;
关键词
SOLAR; GRADIENTS; WATER;
D O I
10.1038/s41427-023-00507-7
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Osmotic energy generation with reverse electrodialysis through membranes provides a worldwide free energy resource. Photo-driven proton transport in photosynthesis supplies basal energy for plants and living organisms on the planet. Here, we utilized aramid nanofiber (ANF) semiconductor-based membranes to enable light-driven proton transport for osmotic energy generation. Under unilateral illumination, the light-driven proton transport system converted light energy into electrical energy and showed wavelength- and intensity-dependent transmembrane potentials and currents. Interestingly, the synergistic effects of simultaneous illumination and pressure provided a five-fold increase in the voltage and a three-fold increase in the current relative to pressure alone. Density functional theory calculations and spectroscopic measurements demonstrated that the ANF and photoinduced electrons enabled proton transport during illumination and generated a transmembrane potential and current. The light-driven proton transport system supports the development of devices with flexible and stable ANF membranes. Osmotic energy generation, using aramid nanofiber (ANF) semiconductor membranes for light-driven proton transport, displayed wavelength and intensity-dependent potential and current under unilateral illumination. The simultaneous application of illumination and pressure led to a five-fold voltage increase and a three-fold current increase. Density functional theory calculations and spectroscopic measurements confirmed ANF's role in photoinduced proton transport. This research has significant implications for developing flexible, stable ANF membrane-based energy devices.
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页数:9
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