CO2 capture (post-combustion CO2 absorbents)electrolytes for batteries and supercapacitorsionic liquidsprotic ionic liquidswater splitting / water oxidation catalysts
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Abstract (AI)
Ionic liquids offer a unique suite of properties that make them important candidates for a number of energy related applications. Cation–anion combinations that exhibit low volatility coupled with high electrochemical and thermal stability, as well as ionic conductivity, create the possibility of designing ideal electrolytes for batteries, super-capacitors, actuators, dye sensitised solar cells and thermo-electrochemical cells. In the field of water splitting to produce hydrogen they have been used to synthesize some of the best performing water oxidation catalysts and some members of the protic ionic liquid family co-catalyse an unusual, very high energy efficiency water oxidation process. As fuel cell electrolytes, the high proton conductivity of some of the protic ionic liquid family offers the potential of fuel cells operating in the optimum temperature region above 100 °C. Beyond electrochemical applications, the low vapour pressure of these liquids, along with their ability to offer tuneable functionality, also makes them ideal as CO2 absorbents for post-combustion CO2 capture. Similarly, the tuneable phase properties of the many members of this large family of salts are also allowing the creation of phase-change thermal energy storage materials having melting points tuned to the application. This perspective article provides an overview of these developing energy related applications of ionic liquids and offers some thoughts on the emerging challenges and opportunities.
Key Findings
1
High proton conductivity of certain protic ionic liquids enables potential fuel cell operation in the optimum temperature region above 100 °C.
2
Ionic liquids have been used to synthesize some of the best performing water oxidation catalysts for water splitting to produce hydrogen.
3
Ionic liquids have low volatility, high electrochemical and thermal stability, and ionic conductivity making them strong candidates for battery and supercapacitor electrolytes.
4
Low vapour pressure and tunable functionality make ionic liquids ideal CO2 absorbents for post-combustion CO2 capture.
5
Some protic ionic liquids co-catalyse a very high energy efficiency water oxidation process.
6
Tailored cation–anion combinations enable design of ideal electrolytes for actuators, dye-sensitized solar cells, and thermo-electrochemical cells.
7
The field presents emerging challenges and opportunities across multiple energy-related applications, as discussed in this perspective.
8
Tunable phase properties of ionic liquids allow creation of phase-change thermal energy storage materials with melting points adjusted to applications.
Research Object
Ionic liquids
Research Subject
Their applications in energy technologies, including use as electrolytes (for batteries, supercapacitors, actuators, dye-sensitised and thermo-electrochemical cells, fuel cells), catalysts/co-catalysts for water oxidation in hydrogen production, CO2 absorbents for post-combustion capture, and phase-change thermal energy storage materials, emphasizing properties like low volatility, electrochemical/thermal stability, ionic/proton conductivity and tunable phase/functionality
Publication Details
Publication Date
2013-08-15
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