| Literature DB >> 30175094 |
Jiajie Cui1, Xianwen Wu1,2, Sinian Yang1, Chuanchang Li3, Fang Tang1, Jian Chen3, Ying Chen1, Yanhong Xiang2, Xianming Wu1,2, Zeqiang He2.
Abstract
Aqueous battery has been gained much more interest for large-scale energy storage fields due to its excellent safety, high power density and low cost. Cryptomelane-type KMn8O16 confirmed by X-ray diffraction (XRD) was successfully synthesized by a modified hydrothermal method, followed by annealed at 400°C for 3 h. The morphology and microstructure of as-prepared KMn8O16 investigated by field-emission scanning electron microscopy (FE-SEM) with the energy spectrum analysis (EDS) and transmission electron microscopy (TEM) demonstrate that one-dimensional nano rods with the length of about 500 nm constitute the microspheres with the diameter about 0.5~2 μm. The cyclic voltammetry measurement displays that the abundant intercalation of zinc ions on the cathode takes place during the initial discharge process, indicating that cryptomelane-type KMn8O16 can be used as the potential cathode material for aqueous zinc ion batteries. The electrode shows a good cycling performance with a reversible capacity of up to 77.0 mAh/g even after 100 cycles and a small self-discharge phenomenon.Entities:
Keywords: aqueous rechargeable battery; cathode material; energy storage and conversion; intercalated potassium compound; self-discharge
Year: 2018 PMID: 30175094 PMCID: PMC6108047 DOI: 10.3389/fchem.2018.00352
Source DB: PubMed Journal: Front Chem ISSN: 2296-2646 Impact factor: 5.221
Figure 1The XRD patterns of KMn8O16 sample.
Figure 2The elemental mapping images of KMn8O16 sample.
Figure 3SEM images (A,B), TEM image (C), HRTEM image (D) and SAED (E) of KMn8O16 sample.
Figure 4XPS spectra of the KMn8O16 sample: (A) survey spectrum; (B) K 2p spectrum; (C) Mn 2p spectrum; (D) Mn 3s; (E) O 1s spectrum.
Figure 5The cyclic voltammetry curves of Zn/KMn8O16 based on 1 mol/L ZnSO4 and 0.3 mol/L K2SO4 (A) without and (B) with 0.05 mol/L MnSO4 at a scan rate of 1 mV/s.
Figure 6Schematic illustration of (A) the initial and (B) the subsequent charge/discharge process for Zn/KMn8O16.
Figure 7(A) The cycling performance of Zn/KMn8O16 and the charge/discharge curves based on 1 mol/L ZnSO4 and 0.3 mol/L K2SO4 at 100 mA/g (B) without and (C) with 0.05 mol/L MnSO4.
Figure 8(A) The float charge procedure, (B) the float charge current density and (C) the charge/discharge curve of Zn/Zn/KMn8O16 battery before and after float charge.
Figure 9(A) The self-discharge procedure, (B) the voltage change after standing and (C) the charge/discharge curve of Zn/Zn/KMn8O16 battery before and after self-discharge.