Lee Na Eun, Cheon Seung Uk, Lee Jaewoo, Cho Sung Oh
Department of Nuclear and Quantum Engineering, Korea Advanced Institute of Science and Technology (KAIST), 34141 Daejeon, Republic of Korea.
ACS Omega. 2023 Feb 8;8(7):6621-6631. doi: 10.1021/acsomega.2c07075. eCollection 2023 Feb 21.
Hybrid electrodes comprising metal oxides and vertically aligned graphene (VAG) are promising for high-performance supercapacitor applications because they enhance the synergistic effect owing to the large contact area between the two constituent materials. However, it is difficult to form metal oxides (MOs) up to the inner surface of a VAG electrode with a narrow inlet using conventional synthesis methods. Herein, we report a facile approach to fabricate SnO nanoparticle-decorated VAG electrodes (SnO@VAG) with excellent areal capacitance and cyclic stability using sonication-assisted sequential chemical bath deposition (S-SCBD). The sonication treatment during the MO decoration process induced a cavitation effect at the narrow inlet of the VAG electrode, allowing the precursor solution to reach the inside of the VAG surface. Furthermore, the sonication treatment promoted MO nucleation on the entire VAG surface. Thus, the SnO nanoparticles uniformly covered the entire electrode surface after the S-SCBD process. SnO@VAG exhibited an outstanding areal capacitance (4.40 F cm) up to 58% higher than that of VAG electrodes. The symmetric supercapacitor with SnO@VAG electrodes showed an excellent areal capacitance (2.13 F cm) and a cyclic stability of 90% after 2000 cycles. These results suggest a new avenue for sonication-assisted fabrication of hybrid electrodes in the field of energy storage.
由金属氧化物和垂直排列的石墨烯(VAG)组成的混合电极在高性能超级电容器应用中具有广阔前景,因为两种组成材料之间的大接触面积增强了协同效应。然而,使用传统合成方法难以在入口狭窄的VAG电极内表面形成金属氧化物(MOs)。在此,我们报告了一种简便的方法,通过超声辅助顺序化学浴沉积(S-SCBD)制备具有优异面积电容和循环稳定性的SnO纳米颗粒修饰的VAG电极(SnO@VAG)。在MO修饰过程中的超声处理在VAG电极的狭窄入口处产生了空化效应,使前驱体溶液能够到达VAG表面内部。此外,超声处理促进了MO在整个VAG表面的成核。因此,在S-SCBD过程之后,SnO纳米颗粒均匀地覆盖了整个电极表面。SnO@VAG表现出出色的面积电容(4.40 F/cm²),比VAG电极高出58%。具有SnO@VAG电极的对称超级电容器表现出优异的面积电容(2.13 F/cm²),并且在2000次循环后循环稳定性为90%。这些结果为储能领域中超声辅助制备混合电极提供了一条新途径。