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Photo-Enhanced Magnesium-Ion Capacitors Using Photoactive Electrodes.

Accepted version
Peer-reviewed

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Article

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Authors

Boruah, Buddha Deka 
Pujari, Arvind 
Kim, Byung-Man 

Abstract

Off-grid power sources are becoming increasingly important for applications ranging from autonomous sensor networks to fighting energy poverty. Interactions of light with certain classes of battery and capacitor materials have recently gained attention to enhance the rate performance or to even charge energy storage devices directly with light. Interestingly, these devices have the potential to reduce the volume and cost of autonomous power sources. Here, a light-enhanced magnesium (Mg)-ion capacitor is shown. The latter is interesting because of the large natural abundance of Mg and its ability to operate in low cost and non-flammable aqueous electrolytes. Photoelectrodes using a combination of vanadium dioxide and reduced graphene oxide can achieve capacitance enhancements of up to 56% under light exposure alongside a 21% higher energy density of 20.5 mAh kg-1 .

Description

Off-grid power sources are becoming increasingly important for applications ranging from autonomous sensor networks to fighting energy poverty. Interactions of light with certain classes of battery and capacitor materials have recently gained attention to enhance the rate performance or to even charge energy storage devices directly with light. Interestingly, these devices have the potential to reduce the volume and cost of autonomous power sources. Here, we show the first report of a light-enhanced magnesium (Mg)-ion capacitor. The latter is interesting because of the large natural abundance of Mg and their ability to operate in low cost and non-flammable aqueous electrolytes. We show that photoelectrodes using a combination of vanadium dioxide and reduced graphene oxide can achieve capacitance enhancements of up to 56% under light exposure alongside a 21% higher energy density of 20.5 mAh kg-1.

Keywords

Magnesium-ion capacitors, VO2, light-enhanced capacitors, photoactive electrode

Journal Title

Small

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Journal ISSN

1613-6810
1613-6829

Volume Title

Publisher

Wiley
Sponsorship
Engineering and Physical Sciences Research Council (EP/S022953/1)
European Commission Horizon 2020 (H2020) ERC (866005)
This project was supported by funding from an ERC Consolidator Grant MIGHTY – 866005, as well as the EPSRC project EP/T015233/1 and NanoDTCNanoDTC Cambridge EP/S022953/1.
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