Influence of alkali metal cations on the rate of oxygen evolution from a mixed Mg-LiCoO2 oxide

被引:2
作者
Formaro, L [1 ]
Longhi, M [1 ]
机构
[1] Univ Milan, Dept Phys Chem & Electrochem, I-20133 Milan, Italy
关键词
D O I
10.1021/jp027704a
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
O-2 evolution from a mixed Mg-LiCoO2 oxide is investigated in base solutions of alkali metal cations (0.1-2 M LiOH, KOH, or CsOH) without added supporting electrolytes. Tafel slopes range 30-50 mV/decade, scarcely related to the used alkali. However, Tafel lines are displaced to more positive potentials in passing from CsOH to KOH and LiOH at the same concentration, and moreover, reaction orders with respect to OH- decrease from similar to3 to similar to1 along the same alkali sequence with fractional rather than integer values. The reaction mechanism is examined on the assumption that Temkin-type adsorption conditions apply to the many reacting intermediates possibly involved. Analytical equations representing Tafel slope and reaction order in Temkin conditions are derived and reported for many frequently adopted O-2 evolution pathways, most of them for the first time. From these equations, the experimental behavior is reconciled with a constant mechanism (Kobussen's path) in which the rate-determining step varies depending on the alkali cation, shifting forward in the sequence of elementary steps from early positions in CsOH and KOH to the last one in which molecular O-2 is released in LiOH. Cation interactions with reacting surface sites apparently intervene to modify the reaction activation free energy profile, stronger for Li+ than K+ and Cs+. Structural relations with Li+ (and Mg2+) sites in the oxide lattice may be involved. However, the interaction sequence, Li+ > K+ > Cs+, is similar to that observed at the interface of many structurally and chemically unrelated oxides suspended in water and is attributed to entropic contributions from interactions of water molecules bonded in the hydration ion cosphere and at the oxide-solution interface.
引用
收藏
页码:6425 / 6430
页数:6
相关论文
共 35 条
[1]  
[Anonymous], RUSS J PHYS CHEM
[2]   ADSORPTION AT RUTILE-SOLUTION INTERFACE .2. MODEL OF ELECTROCHEMICAL DOUBLE LAYER [J].
BERUBE, YG ;
DEBRUYN, PL .
JOURNAL OF COLLOID AND INTERFACE SCIENCE, 1968, 28 (01) :92-&
[4]   MECHANISM OF OXYGEN EVOLUTION ON PEROVSKITES [J].
BOCKRIS, JO ;
OTAGAWA, T .
JOURNAL OF PHYSICAL CHEMISTRY, 1983, 87 (15) :2960-2971
[5]  
BOCKRIS JO, 1954, MOD ASPECT ELECTROC, V1, P180
[6]   Ion pair formation and primary charging behavior of titanium oxide (anatase and rutile) [J].
Bourikas, K ;
Hiemstra, T ;
Van Riemsdijk, WH .
LANGMUIR, 2001, 17 (03) :749-756
[7]  
BREEUWSMA A, 1971, DISCUSS FARADAY SOC, P324
[8]   MECHANISM OF OXYGEN EVOLUTION IN BASIC-MEDIUM AT A NICKEL ELECTRODE [J].
BRONOEL, G ;
REBY, J .
ELECTROCHIMICA ACTA, 1980, 25 (07) :973-976
[9]   Electrochemical behavior of novel Ti/IrOx-Sb2O5-SnO2 anodes [J].
Chen, GH ;
Chen, XM ;
Yue, PL .
JOURNAL OF PHYSICAL CHEMISTRY B, 2002, 106 (17) :4364-4369
[10]   THERMOCHEMICAL CHARACTERISTICS AND ELECTROACTIVITY RANGES OF WATER-LITHIUM HYDROXIDE MIXTURES AT 298K [J].
CHOUAIB, F ;
DELGADOPANIAGUA, G ;
PICARD, G .
JOURNAL DE CHIMIE PHYSIQUE ET DE PHYSICO-CHIMIE BIOLOGIQUE, 1988, 85 (05) :627-632