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High Voltage Magnesium-ion Battery Enabled by Nanocluster MgBi Alloy Anode in Noncorrosive Electrolyte. | LitMetric

High Voltage Magnesium-ion Battery Enabled by Nanocluster MgBi Alloy Anode in Noncorrosive Electrolyte.

ACS Nano

Division of Nanomaterials & Chemistry, Hefei National Research Center for Physical Sciences at the Microscale, CAS Center for Excellence in Nanoscience, Hefei Science Center of CAS, Collaborative Innovation Center of Suzhou Nano Science and Technology, Department of Chemistry , University of Science and Technology of China, Hefei 230026 , China.

Published: June 2018

Currently, developing high voltage (beyond 2 V) rechargeable Mg-ion batteries still remains a great challenge owing to the limit of corrosive electrolyte and low compatibility of anode material. Here we report a facile one step solid state alloying route to synthesize nanoclustered MgBi alloy as a high-performance anode to build up a 2 V Mg-ion battery using noncorrosive electrolyte. The fabricated nanoclustered MgBi anode delivers a high reversible specific capacity (360 mAh g) with excellent stability (90.7% capacity retention over 200 cycles) and high Coulombic efficiency (average 98%) at 0.1 A g. The good performance is attributed to the stable nanostructures, which effectively accommodate the reversible Mg ion insertion/deinsertion without losing electric contact among clusters. Significantly, the nanoclustered MgBi anode can be coupled with high voltage cathode Prussian Blue to assemble a full cell using noncorrosive electrolyte, showing a stable cycling (88% capacity retention over 200 cycles at 0.2 A g) and good rate capability (103 mAh g at 0.1 A g and 58 mAh g at 2 A g). The energy and power density of the as-fabricated full cell can reach up to 81 Wh kg and 2850 W kg, respectively, which are both the highest values among the reported Mg-ion batteries using noncorrosive electrolytes. This study demonstrates a cost-effective route to fabricate stable and high voltage rechargeable Mg-ion battery potentially for grid-scale energy storage.

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Source
http://dx.doi.org/10.1021/acsnano.8b01847DOI Listing

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