Qiang Xinrui, Jia Bingzhe, Wu Xinming
School of Materials Science and Chemical Engineering, Xi'an Technological University, Weiyang University Park, No.2 Xuefu Middle Road, Xi'an, Shaanxi, 710021, China.
Small. 2024 Nov;20(44):e2404557. doi: 10.1002/smll.202404557. Epub 2024 Jul 10.
Doping of metal ions shows promising potential in optimizing and modulating the electrical conductivity of layered double hydroxides (LDHs). However, there is still much room for improvement in common metal ions and conventional doping methods. In contrast to previous methodologies, a hollow triangular nanoflower structure of CoFeV-LDHs is devised, which is enriched with a greater number of oxygen vacancies. This resulted in a significant enhancement in the conductivity of the LDHs, leading to an increase in energy density following the appropriate doping of V. To investigate the impact of V-doping on the energy density of the LDHs, in situ XPS and in situ X-ray spectroscopy is employed. Regarding electrochemical performance, the CoFeV-LDHs/NF electrode with optimal doping ratio exhibited a specific capacitance of 881 F g at a current density of 1 A g. The capacitance remained at 90.53% after 3000 cycles. In addition, the constructed battery-type supercapacitor CoFeV-LDHs/NF-2//AC exhibited an impressive energy density of 124.7 Wh kg at a power density of 850 W kg and capacitance remained almost unchanged at 95.2% after 3000 cycles. All the above demonstrates the great potential of V-doped LDHs and brings a new way for the subsequent research of LDHs.
金属离子掺杂在优化和调节层状双氢氧化物(LDHs)的电导率方面显示出有前景的潜力。然而,常见金属离子和传统掺杂方法仍有很大的改进空间。与先前的方法不同,设计了一种富含更多氧空位的CoFeV-LDHs空心三角形纳米花结构。这导致LDHs的电导率显著提高,在适当掺杂V后能量密度增加。为了研究V掺杂对LDHs能量密度的影响,采用了原位XPS和原位X射线光谱。关于电化学性能,具有最佳掺杂比的CoFeV-LDHs/NF电极在电流密度为1 A g时表现出881 F g的比电容。3000次循环后电容保持在90.53%。此外,构建的电池型超级电容器CoFeV-LDHs/NF-2//AC在功率密度为850 W kg时表现出令人印象深刻的124.7 Wh kg的能量密度,3000次循环后电容几乎保持不变,为95.2%。以上所有都证明了V掺杂LDHs的巨大潜力,并为LDHs的后续研究带来了新途径。