| Literature DB >> 30213933 |
Jaechan Ryu1, Haeseong Jang1, Joohyuk Park1,2, Youngshin Yoo1, Minjoon Park3, Jaephil Cho4.
Abstract
Aluminum-air batteriesEntities:
Year: 2018 PMID: 30213933 PMCID: PMC6137061 DOI: 10.1038/s41467-018-06211-3
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919
Fig. 1Formation of the stripe pattern and dislocation. a, b Schematic of the synthesis process (a) of the bulk manganese oxides (BM), polyhedron manganese oxide (PM), and silver manganate nanoplate (SMNp), and the summary of the catalytic effects (b) of the SMNp. c–e Scanning electronic microscopy (SEM) images of the BM (c), PM (d), and SMNp (e) showing plate-like structures with silver nanoparticles. f, g High-resolution transmission electron microscopy (HR-TEM) images of the SMNp (f) and high-magnified image (g) of the box in f, which shows zigzag atomic arrangements with intragranular cracking. Fast Fourier transform (FFT) image of g presents the lattice planes of (–100) and (001) along the [010] zone, indicating the orthorhombic structure of Ag2MnO4. h, i Inverse FFT images of applied masks at the blue circle (h) and red circle (i) in g, showing a wide range of dislocations with defects. The dislocations are shown by circles and edge dislocations are represented by a T-shaped symbol. The upper right insets in h and i indicate the applied masks and the lattice spacing of the (101) plane is denoted as the left inset in h. Scale bars, 5 μm (c), 500 nm (d), 200 nm (e), 100 nm (f), 4 nm (g), and 1 nm (h, i)
Fig. 2Atomically resolved electron microscopy and electron energy loss spectra. a Filtered high-angle annular dark-field-scanning transmission electron microscopy (HAADF-STEM) and energy-dispersive X-ray spectroscopy (EDX) mapping image of the silver manganate nanoplate (SMNp) along the [010] zone axis with its fast Fourier transform (FFT) pattern, showing continuous arrangements of silver and manganese atoms. b Line-scanning profile showing distinct distributions of silver and manganese elements. c, d Simulated HAADF-STEM image (c), indicating the highest electron density with red color and the lowest with black, and annular bright-field (ABF)–STEM image (d) showing the Ag2MnO4 orthorhombic structure with silver (blue), manganese (red), and oxygen (purple) elements. e Corresponding ABF intensity profiles of the white box in d present the peaks of the silver and manganese atomic columns. f, g A HAADF-STEM image (f) and the corresponding electron energy loss spectroscopy (EELS) profiles (g) at the marked sites, showing Ag M4,5-edge, O K-edge, and Mn L2,3-edge. Scale bars, 1 nm (a), 0.2 nm (c, d), and 50 nm (f)
Fig. 3Electrocatalytic activities for oxygen reduction reaction. a Linear scan voltammogram (LSV) curves for the Ag nanoparticle, bulk manganese oxides (BM), polyhedron manganese oxide (PM), silver manganate nanoplate (SMNp), and a commercial Pt/C catalyst at a rotating ring–disk electrode (1600 r.p.m) in O2-saturated 0.1 M KOH solution with a scan rate of 5 mV s–1. All data have been calibrated by using Ar-saturated 0.1 M KOH solution. b, c The corresponding number of transferred electrons (b) and Tafel plots (c) of the Ag, BM, PM, SMNp, and Pt/C. Id represents the limiting current density obtained at a potential of 0.30 V in a. d Chronoamperometric response of the SMNp and 20 wt% Pt/C in O2-saturated 0.1 M KOH electrolytes at 0.85 V (vs. RHE) with 1600 r.p.m showing good stability of SMNp compared with Pt/C
Fig. 4Electrochemical performance of aluminum–air flow batteries. a Schematic of the aluminum–air flow battery (AAFB) system, which includes a single stack cell, one electrolyte tank, and circulation pump. ORR indicates oxygen reduction reaction. b Power density curves of flow cells using the pristine air electrode, silver manganate nanoplate (SMNp), and Pt/C with 6 M KOH electrolyte (scan rate of 0.1 mA s−1). c Discharge curves using the pristine air electrode, SMNp, and Pt/C at 100 mA cm−2. d Mechanical charge and discharge tests using the SMNp and Pt/C at 25 mA cm−2, where the aluminum and electrolyte were replaced every cycle
Fig. 5Comparison of electrode properties and battery performance. a Electrical conductivity of the Ag nanoparticle, bulk manganese oxides (BM), polyhedron manganese oxide (PM), silver manganate nanoplate (SMNp), and Pt/C-loaded air electrodes. b Precious metal dissolution tests in aluminum–air flow batteries (AAFBs) using the SMNp and Pt/C with 6 M KOH electrolyte after 6 h of discharging at 50 mA cm−2. c, d Comparison of the gravimetric energy density (c) among gasoline with theoretical and practical value, AAFBs with Pt/C and SMNp (at 50 mA cm−2), and comparison of the gravimetric energy density (d) between zinc–air flow batteries (ZAFBs) and AAFBs with the SMNp at 100 mA cm−2