Ho Hsiao-Yun, Chu Hsuan-I, Huang Yi-June, Tsai Dung-Sheng, Lee Chuan-Pei
Department of Applied Physics and Chemistry, University of Taipei, Taipei 10048, Taiwan.
Department of Chemical Engineering, Stanford University, Stanford, CA, 94305, United States of America.
Nanotechnology. 2023 Jan 13;34(12). doi: 10.1088/1361-6528/acad87.
The performance of supercapacitors strongly depends on the electrochemical characterizations of electrode materials. Herein, a composite material consisted of polypyrrole (PPy) and multilayer graphene-wrapped copper nanoparticles (PPy/MLG-Cu NPs) is fabricated on a flexible carbon cloth (CC) substrate via two-step synthesis process for supercapacitor application. Where, MLG-Cu NPs are prepared on CC by one-step chemical vapor deposition synthesis approach; thereafter, the PPy is further deposited on the MLG-Cu NPs/CC via electropolymerization. The related material characterizations of PPy/MLG-Cu NPs are well investigated by scanning electron microscopic, high resolution transmission electron microscopy, Raman spectrometer and x-ray photoelectron spectroscopy; the electrochemical behaviors of the pertinent electrodes are studied by cyclic voltammogram, galvanostatic charge/discharge and electrochemical impedance spectroscopy measurements. The flexible electrode with PPy/MLG-Cu NPs composites exhibits the best specific capacitance of 845.38 F gat 1 A g, which is much higher than those of electrodes with PPy (214.30 F g), MLG-Cu NPs (6.34 F g), multilayer graphene hollow balls (MLGHBs; 52.72 F g), and PPy/MLGHBs (237.84 F g). Finally, a supercapacitor system consisted of four PPy/MLG-Cu NPs/CC electrodes can efficiently power various light-emitting diodes (i.e. red, yellow, green and blue lighs), demonstrating the practical application of PPy/MLG-Cu NPs/CC electrode.
超级电容器的性能在很大程度上取决于电极材料的电化学特性。在此,通过两步合成法在柔性碳布(CC)基底上制备了一种由聚吡咯(PPy)和多层石墨烯包裹的铜纳米颗粒(PPy/MLG-Cu NPs)组成的复合材料,用于超级电容器应用。其中,通过一步化学气相沉积合成法在CC上制备MLG-Cu NPs;此后,通过电聚合将PPy进一步沉积在MLG-Cu NPs/CC上。通过扫描电子显微镜、高分辨率透射电子显微镜、拉曼光谱仪和X射线光电子能谱对PPy/MLG-Cu NPs的相关材料特性进行了充分研究;通过循环伏安法、恒电流充放电和电化学阻抗谱测量研究了相关电极的电化学行为。具有PPy/MLG-Cu NPs复合材料的柔性电极在1 A g时表现出最佳比电容845.38 F g,远高于具有PPy(214.30 F g)、MLG-Cu NPs(6.34 F g)、多层石墨烯空心球(MLGHBs;52.72 F g)和PPy/MLGHBs(237.84 F g)的电极。最后,由四个PPy/MLG-Cu NPs/CC电极组成的超级电容器系统可以有效地为各种发光二极管(即红色、黄色、绿色和蓝色灯)供电,证明了PPy/MLG-Cu NPs/CC电极的实际应用。