Chernysheva Daria, Pudova Ludmila, Popov Yuri, Smirnova Nina, Maslova Olga, Allix Mathieu, Rakhmatullin Aydar, Leontyev Nikolay, Nikolaev Andrey, Leontyev Igor
Platov South-Russian State Polytechnic University (NPI), 346428 Novocherkassk, Russia.
Southern Federal University, 344090 Rostov-on-Don, Russia.
Nanomaterials (Basel). 2021 Jan 13;11(1):187. doi: 10.3390/nano11010187.
A series of NiO/C nanocomposites with NiO concentrations ranging from 10 to 90 wt% was synthesized using a simple and efficient two-step method based on non-isothermal decomposition of Nickel(II) bis(acetylacetonate). X-ray diffraction (XRD) measurements of these NiO/C nanocomposites demonstrate the presence of β-NiO. NiO/C nanocomposites are composed of spherical particles distributed over the carbon support surface. The average diameter of nickel oxide spheres increases with the NiO content and are estimated as 36, 50 and 205 nm for nanocomposites with 10, 50 and 80 wt% NiO concentrations, respectively. In turn, each NiO sphere contains several nickel oxide nanoparticles, whose average sizes are 7-8 nm. According to the tests performed using a three-electrode cell, specific capacitance (SC) of NiO/C nanocomposites increases from 200 to 400 F/g as the NiO content achieves a maximum of 60 wt% concentration, after which the SC decreases. The study of the NiO/C composite showing the highest SC in three- and two-electrode cells reveals that its SC remains almost unchanged while increasing the current density, and the sample demonstrates excellent cycling stability properties. Finally, NiO/C (60% NiO) composites are shown to be promising materials for charging quartz clocks with a power rating of 1.5 V (30 min).
采用基于双(乙酰丙酮)镍(II)非等温分解的简单高效两步法合成了一系列氧化镍(NiO)浓度范围为10至90 wt%的NiO/C纳米复合材料。对这些NiO/C纳米复合材料进行的X射线衍射(XRD)测量表明存在β-NiO。NiO/C纳米复合材料由分布在碳载体表面的球形颗粒组成。氧化镍球的平均直径随NiO含量增加而增大,对于NiO浓度为10 wt%、50 wt%和80 wt%的纳米复合材料,其平均直径分别估计为36 nm、50 nm和205 nm。反过来,每个NiO球包含几个氧化镍纳米颗粒,其平均尺寸为7 - 8 nm。根据使用三电极电池进行的测试,当NiO含量达到最大浓度60 wt%时,NiO/C纳米复合材料的比电容(SC)从200 F/g增加到400 F/g,之后SC下降。对在三电极和两电极电池中显示出最高SC的NiO/C复合材料的研究表明,其SC在增加电流密度时几乎保持不变,并且该样品表现出优异的循环稳定性。最后,NiO/C(60% NiO)复合材料被证明是用于为额定功率为1.5 V(30分钟)的石英钟充电的有前景的材料。