School of Materials Science and Engineering, Nanyang Technological University, Singapore, 639798, Singapore; Key Laboratory for Ultrafine Materials of Ministry of Education, East China University of Science and Technology, Shanghai, 200237, China.
Small. 2015 May 6;11(17):2044-50. doi: 10.1002/smll.201402603. Epub 2014 Dec 15.
Monometallic Ni(2+) -Ni(3+) layered double hydroxide (LDH) is prepared using a simple oxidative intercalation process and may be further exfoliated into positively charged Ni(OH)2 unilamellar sheets. The superior capacitive behavior of the unilamellar sheets stranded in carbon nanotubes (CNTs) networks is achieved because of the complete interfacial charge storage arising from the confined Faradaic reactions at the interfacial region. 3D nanosheet/CNT composites are prepared using an in situ electrostatic assembly of positive charged sheets with CNTs bearing negative charges. The restacking of active nanosheets during electrochemical cycling is effectively prohibited. Consequently, the outstanding specific capacitance and remarkable rate capability of the nanosheet/CNT hybrid electrodes are demonstrated, making them promising candidates for high performance supercapacitors, combining high-energy storage densities with high levels of power delivery.
采用简单的氧化插层法制备了单金属 Ni(2+)-Ni(3+)层状双氢氧化物 (LDH),并可进一步剥离成带正电荷的 Ni(OH)2 单层片。由于在界面区域受限的法拉第反应引起的完全界面电荷存储,在碳纳米管 (CNT) 网络中交错的单层片具有优异的电容行为。通过带负电荷的 CNT 与带正电荷的片材的原位静电组装制备了 3D 纳米片/CNT 复合材料。在电化学循环过程中有效阻止了活性纳米片的堆叠。因此,纳米片/CNT 杂化电极表现出优异的比电容和显著的倍率性能,使其成为高性能超级电容器的有前途的候选材料,兼具高能量存储密度和高功率输送水平。