Department of Physics, Institute of Applied Materials, SARCHI Chair in Carbon Technology and Materials, University of Pretoria, Pretoria 0028, South Africa.
Department of Physics, Institute of Applied Materials, SARCHI Chair in Carbon Technology and Materials, University of Pretoria, Pretoria 0028, South Africa.
J Colloid Interface Sci. 2017 May 15;494:325-337. doi: 10.1016/j.jcis.2017.01.098. Epub 2017 Jan 27.
Manganese phosphate (Mn(PO) hexagonal micro-rods and (Mn(PO) with different graphene foam (GF) mass loading up to 150mg were prepared by facile hydrothermal method. The characterization of the as-prepared samples proved the successful synthesis of Mn(PO) hexagonal micro-rods and Mn(PO)/GF composites. It was observed that the specific capacitance of Mn(PO)/GF composites with different GF mass loading increases with mass loading up to 100mg, and then decreases with increasing mass loading up to 150mg. The specific capacitance of Mn(PO)/100mg GF electrode was calculated to be 270Fg as compared to 41Fg of the pristine sample at a current density of 0.5Ag in a three-electrode cell configuration using 6M KOH. Furthermore, the electrochemical performance of the Mn(PO)/100mg GF electrode was evaluated in a two-electrode asymmetric cell device where Mn(PO)/100mg GF electrode was used as a positive electrode and activated carbon (AC) from coconut shell as a negative electrode. AC//Mn(PO)/100mg GF asymmetric cell device was tested within the potential window of 0.0-1.4V, and showed excellent cycling stability with 96% capacitance retention over 10,000 galvanostatic charge-discharge cycles at a current density of 2Ag.
通过简便的水热法制备了锰磷酸盐(Mn(PO) 六方微棒和 Mn(PO) 与不同石墨烯泡沫(GF)质量负载高达 150mg 的复合材料。所制备样品的表征证明了 Mn(PO) 六方微棒和 Mn(PO)/GF 复合材料的成功合成。观察到,具有不同 GF 质量负载的 Mn(PO)/GF 复合材料的比电容随着质量负载的增加(直至 100mg)而增加,然后随着质量负载的增加(直至 150mg)而降低。在三电极电池配置中,使用 6M KOH,电流密度为 0.5Ag 时,与原始样品的 41Fg 相比,Mn(PO)/100mg GF 电极的比电容计算为 270Fg。此外,在使用椰子壳活性炭(AC)作为负极的二电极不对称电池装置中评估了 Mn(PO)/100mg GF 电极的电化学性能。AC//Mn(PO)/100mg GF 不对称电池装置在 0.0-1.4V 的电位窗口内进行测试,在 2Ag 的电流密度下,经过 10,000 次恒流充放电循环后,电容保持率为 96%,表现出优异的循环稳定性。