| Literature DB >> 28869496 |
Fuxing Yin1, Zhengjun Liu2, Yan Zhao3, Yuting Feng4, Yongguang Zhang5.
Abstract
An aqueous sodium ion battery (ASIB) with metal Zn as anode and Na₄Mn₉O18-reduced graphene oxide (Na₄Mn₉O18-RGO) as cathode has been developed. In this work, spherical Na₄Mn₉O18-RGO composite particles were prepared via spray drying. The aqueous battery exhibits stable cyclability and high specific capacities. Typically, a high initial discharge capacity of 61.7 mAh·g-1 is attained at a high current rate of 4 C, and a stabilizing reversible capacity of 58.9 mAh·g-1 was obtained after 150 cycles. The network interlaced by RGO sheets provided fast electron conduction paths and structural stability to accommodate the mechanical stresses induced by sodium insertion and extraction, so the Na₄Mn₉O18-RGO electrode displayed superior electrochemical performance in the ASIB.Entities:
Keywords: Na4Mn9O18; aqueous sodium-ion battery; cathode; energy storage materials
Year: 2017 PMID: 28869496 PMCID: PMC5618364 DOI: 10.3390/nano7090253
Source DB: PubMed Journal: Nanomaterials (Basel) ISSN: 2079-4991 Impact factor: 5.076
Figure 1The schematic diagram of Na4Mn9O18-RGO composite by spray drying.
Figure 2XRD patterns of Na4Mn9O18, Na4Mn9O18-RGO, and RGO.
Figure 3Raman spectrum of Na4Mn9O18, Na4Mn9O18-RGO, and RGO.
Figure 4TG-DTG curves of Na4Mn9O18-RGO under an air atmosphere.
Figure 5The morphology and structure of the Na4Mn9O18-RGO. (a) SEM image; (b) TEM image; (c) HRTEM image; (d) SAED pattern.
Figure 6Electrochemical performance of the Na4Mn9O18-RGO electrode (vs. Zn/Zn2+). (a) CV curves at a rate of 0.1 mV·s−1. (b) Charge and discharge curves at 4 C.
Figure 7(a) Cycling performance of the Na4Mn9O18-RGO and Na4Mn9O18 electrodes at 4 C and coulombic efficiency of the Na4Mn9O18-RGO electrode. (b) Rate capability of the Na4Mn9O18-RGO and Na4Mn9O18 electrodes.
Figure 8EIS of the Na4Mn9O18-RGO and Na4Mn9O18 electrodes and the equivalent circuit model of plot fitting (inset).