Title :
Electrode materials for sodium ion batteries: A cheaper solution for the energy storage
Author :
Saadoune, Ismael ; Difi, Siham ; Doubaji, Siham ; Edstrom, Kristina ; Lippens, Pierre Emmanuel
Author_Institution :
Lab. de Chim. des Mater. et de l´Environ., Univ. Cadi Ayyad, Marrakech, Morocco
Abstract :
The high abundance of sodium and its low cost compared to lithium renewed the high interest on sodium ion batteries as cheaper solution for electrochemical energy storage. Indeed, sodium ion batteries have recently proposed as possible candidates for stationary and mobile energy storage devices. Herein, we present two new intercalation materials, which shown excellent electrochemical features in terms of charge-discharge, reversibility, coulombic efficiency and high specific discharge capacity. The first one is the lamellar oxide material Na0.67Co2/3Ni1/9Mn2/9O2, prepared by a soft chemistry route (SolGel) crystallizes in the rhombohedral system with layered type structure. This compound offers a specific capacity of 110 mAhg-1 when cycled between 2.0 and 4.2 V vs. Na+/Na. The electrodes exhibited a good capacity retention and a coulombic efficiency exceeding 99.4%, as well as a reversible discharge capacity of 140 mAhg-1 when cycled between 2.0 and 4.5 V. The second investigated electrode material is the phosphate Na1.5Ti1.5Fe0.5(PO4)3. In addition to its benign effect on the environment, this material delivers a specific discharge capacity of 120 mAh-1 with two extraction/insertion plateaus at 2.3 V and 2.2 V. The open framework of this sample leads a high structural stability during cycling making this material a good candidate for long-term energy storage material.
Keywords :
cobalt compounds; crystallisation; electrochemical electrodes; manganese compounds; nickel compounds; secondary cells; sodium compounds; Coulombic efficiency; Na0.67Co0.67Ni0.11Mn0.22O2; Na1.5Ti1.5Fe0.5; capacity retention; charge-discharge; electrochemical energy storage; electrode materials; high specific discharge capacity; high structural stability; intercalation materials; lamellar oxide material; layered type structure; long-term energy storage material; mobile energy storage devices; reversible discharge capacity; rhombohedral system; sodium ion batteries; soft chemistry route crystallization; sol-gel crystallization; stationary energy storage devices; voltage 2.0 V to 4.5 V; Batteries; Compounds; Discharges (electric); Electrodes; Ions; Materials;
Conference_Titel :
Optimization of Electrical and Electronic Equipment (OPTIM), 2014 International Conference on
Conference_Location :
Bran
DOI :
10.1109/OPTIM.2014.6851038