Pseudocapacitive oxide materials for high-rate electrochemical energy storage
Псевдоёмкостные оксидные материалы для высокоскоростного электрохимического хранения энергии
2014-01-01
SCID: 54.1/awvyy3t8
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electrochemical energy storagehigh-rate charge–dischargepseudocapacitancepseudocapacitive oxide materialstransition metal oxides
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Abstract (AI)
Electrochemical energy storage technology is based on devices capable of exhibiting high energy density (batteries) or high power density (electrochemical capacitors). There is a growing need, for current and near-future applications, where both high energy and high power densities are required in the same material. Pseudocapacitance, a faradaic process involving surface or near surface redox reactions, offers a means of achieving high energy density at high charge–discharge rates. Here, we focus on the pseudocapacitive properties of transition metal oxides. First, we introduce pseudocapacitance and describe its electrochemical features. Then, we review the most relevant pseudocapacitive materials in aqueous and non-aqueous electrolytes. The major challenges for pseudocapacitive materials along with a future outlook are detailed at the end.
Key Findings
1
Major challenges limiting pseudocapacitive materials and prospective research directions are highlighted.
2
Pseudocapacitance uses rapid surface or near-surface faradaic redox reactions to combine high energy density with high charge–discharge rates.
3
The review examines pseudocapacitive behavior in both aqueous and non-aqueous electrolytes.
4
Transition metal oxides are identified as important pseudocapacitive materials for high-rate electrochemical energy storage.
Research Object
transition metal oxides for electrochemical energy storage
Research Subject
pseudocapacitive properties enabling high energy density at high charge–discharge rates
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2014-01-01
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