Hao Yong, Wang Chunlei
Department of Mechanical and Materials Engineering, Florida International University, 10555 W. Flagler St., Miami, FL 33174, USA.
Center for the Study of Matter at Extreme Conditions, Florida International University, University Park, Miami, FL 33199, USA.
Molecules. 2020 Feb 24;25(4):1014. doi: 10.3390/molecules25041014.
We propose a flexible, binder-free and free-standing carbonaceous paper fabricated via electrostatic spray deposition using reduced graphene oxide/carbon nanotube (rGO/CNT) as a promising electrode material for flexible sodium-ion batteries (NIBs). The as-prepared rGO/CNT paper exhibits a three-dimensional (3D) layered structure by employing rGO as conductive frameworks to provide sodium-storage active sites and CNT as spacer to increase rGO interlayer distance and benefit the diffusion kinetics of sodium ions. Consequently, the rGO/CNT paper delivers an enhanced sodium ion storage capacity of 166.8 mAh g at 50 mA g, retaining an average capacity of 101.4 mAh g when current density sets back 100 mA g after cycling at various current rates. An average capacity of 50 mAh g at 200 mA g was stabilized when cycling up to 300 cycles. The well-maintained electrochemical performance of free-standing rGO/CNT paper is due to the well-established hybrid 3D nanostructures, which demonstrates our carbon based material fabricated by a facile approach can be applied as one of the high-performance and low-cost electrode materials for applications in flexible energy storage devices.
我们提出了一种通过静电喷雾沉积法制备的柔性、无粘结剂且独立的碳质纸,该碳质纸使用还原氧化石墨烯/碳纳米管(rGO/CNT)作为柔性钠离子电池(NIBs)的一种有前景的电极材料。所制备的rGO/CNT纸呈现出三维(3D)层状结构,通过采用rGO作为导电框架来提供储钠活性位点,并使用CNT作为间隔物来增加rGO层间距离并有利于钠离子的扩散动力学。因此,rGO/CNT纸在50 mA g下具有增强的钠离子存储容量,为166.8 mAh g,在以各种电流速率循环后,当电流密度恢复到100 mA g时,平均容量保持在101.4 mAh g。在200 mA g下循环300次时,平均容量稳定在50 mAh g。独立的rGO/CNT纸良好的电化学性能归因于其良好建立的混合3D纳米结构,这表明我们通过简便方法制备的碳基材料可作为高性能、低成本电极材料之一应用于柔性储能器件。