| Literature DB >> 25984925 |
Saad Gomaa Mohamed1,2, Yuan-Quei Tsai1, Chih-Jung Chen1, Yi-Ting Tsai1, Tai-Feng Hung, Wen-Sheng Chang, Ru-Shi Liu1,3.
Abstract
The development of Li-O2 battery electrocatalysts has been extensively explored recently. The Co3O4 oxide has attracted much attention because of its bifunctional activity and high abundance. In the present study, toxic Co(2+) has been replaced through the substitution on the tetrahedral spinel A site ions with environmental friendly metals (Mn(2+), Fe(2+), Ni(2+), and Zn(2+)), and porous nanorod structure are formed. Among these spinel MCo2O4 cathodes, the FeCo2O4 surface has the highest Co(3+) ratio. Thus, oxygen can be easily adsorbed onto the active sites. In addition, Fe(2+) in the tetrahedral site can easily release electrons to reduce oxygen and oxidize to half electron filled Fe(3+). The FeCo2O4 cathode exhibits the highest discharging plateau and lowest charging plateau as shown by the charge-discharge profile. Moreover, the porous FeCo2O4 nanorods can also facilitate achieving high capacity and good cycling performance, which are beneficial for O2 diffusion channels and Li2O2 formation/decomposition pathways.Entities:
Keywords: MCo2O4; cathode materials; lithium−O2 batteries; porous nanorods; ternary metal oxides
Year: 2015 PMID: 25984925 DOI: 10.1021/acsami.5b02180
Source DB: PubMed Journal: ACS Appl Mater Interfaces ISSN: 1944-8244 Impact factor: 9.229