Zhang Yuxin, Li Yong, Yin Pengchong, Han Weizhong
School of Materials Science and Engineering, North China University of Water Resources and Electric Power Zhengzhou 450045 China
School of Materials Science and Engineering, Xi'an Jiaotong University Xi'an 710049 China.
RSC Adv. 2023 Jul 3;13(29):19803-19812. doi: 10.1039/d3ra03025c. eCollection 2023 Jun 29.
In this study, we successfully synthesized Ag@CuO@rGO (rGO wrapped around Ag/CuO) nanocomposites using AgNO, Cu(NO), and NaOH as raw materials and particularly treated CTAB as a template by chemical precipitation, hydrothermal synthesis, and subsequent high-temperature calcination processes. In addition, transmission electron microscopy (TEM) images revealed that the prepared products appeared to have a mixed structure. The results indicated that the best choice was CuO wrapped around Ag nanoparticles to form a core-shell crystal structure, and the crystal particles were arranged similarly to form an icing sugar block structure and were tightly wrapped by rGO. Moreover, the electrochemical test results demonstrated that Ag@CuO@rGO composite electrode material exhibited high pseudocapacitance performance; the material had a high specific capacity of 1453 F g at a current density of 2.5 mA cm, and the charging and discharging cycles remained constant up to 2000 times, indicating that the introduction of Ag improved the cycling stability and reversibility of the CuO@rGO electrode material and increased its specific capacitance, leading to the increase in the specific capacitance of supercapacitors. Therefore, the above results strongly support the application of Ag@CuO@rGO in optotronic devices.
在本研究中,我们以硝酸银、硝酸铜和氢氧化钠为原料,特别使用经过处理的十六烷基三甲基溴化铵作为模板,通过化学沉淀、水热合成及随后的高温煅烧过程,成功合成了Ag@CuO@rGO(rGO包裹在Ag/CuO周围)纳米复合材料。此外,透射电子显微镜(TEM)图像显示,所制备的产物呈现出混合结构。结果表明,最佳结构是Ag纳米颗粒被CuO包裹形成核壳晶体结构,且晶体颗粒以类似方式排列形成糖粉块状结构,并被rGO紧密包裹。此外,电化学测试结果表明,Ag@CuO@rGO复合电极材料表现出高赝电容性能;在电流密度为2.5 mA cm时,该材料具有1453 F g的高比容量,且充放电循环次数在2000次时仍保持稳定,这表明Ag的引入提高了CuO@rGO电极材料的循环稳定性和可逆性,并增加了其比电容,从而导致超级电容器的比电容增加。因此,上述结果有力地支持了Ag@CuO@rGO在光电器件中的应用。