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Intercalation of Ce(III) and PANI in Interlayer Spacing of V2O5 to Improve Electrochemical Salinity Gradient Energy
Nan-Sen Zhou1, Xin-Yu Liu1, Wei-Bin Zhang1
1College of Materials and Chemistry & Chemical Engineering, Chengdu University of Technology, Chengdu, China.
Abstract:
Salinity gradient energy is a promising marine renewable source that requires high-performance electrode materials for efficient harvesting. While polyaniline (PANI)-intercalated V2O5 enhances ion transport through an expanded interlayer spacing, its practical application is hampered by inherently low electrical conductivity and structural instability. In order to solve the structural stability problem, we co-intercalate Ce3+ and PANI into V2O5 layers Ce@PANI@V2O5 (CPVO), to stabilize the interlayer structure for improving the electrochemical conversion of salinity gradient energy. The results show that the Ce-N and Ce-O bonds formed by the co-intercalation of Ce3+ and PANI stabilized the interlayer structure, and brought a larger pore area, which improves the electrochemical performance of the electrode material. The CPVO has a specific capacitance of 238.0 F g-1 at a current density of 0.2 A g-1. After 1000 cycles, the capacity retention rate is 90.36%. The AC//(0.083 M Na2SO4, 0.5 M Na2SO4)//CPVO salinity gradient energy conversion device successfully converted an energy density of 9.10 J g-1, paving the way for high-efficiency salinity gradient energy conversion systems.
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