A conversion-based highly energy dense Cu2+ intercalated Bi-birnessite/Zn alkaline battery. Issue 30 (24th July 2017)
- Record Type:
- Journal Article
- Title:
- A conversion-based highly energy dense Cu2+ intercalated Bi-birnessite/Zn alkaline battery. Issue 30 (24th July 2017)
- Main Title:
- A conversion-based highly energy dense Cu2+ intercalated Bi-birnessite/Zn alkaline battery
- Authors:
- Yadav, Gautam G.
Wei, Xia
Huang, Jinchao
Gallaway, Joshua W.
Turney, Damon E.
Nyce, Michael
Secor, Jeff
Banerjee, Sanjoy - Abstract:
- Abstract : A conversion-based highly energy dense Cu 2+ intercalated Bi-birnessite/Zn battery with a cycle life of 900 cycles is reported. Abstract : Manganese dioxide (MnO2 )–zinc (Zn) batteries are cheap and environmentally benign and have sufficient theoretical energy density to be used as an energy storage device for the grid; however, they have been relegated to primary systems, where the complete energy is delivered in a single discharge, due to the irreversibility of their active materials. Until recently, rechargeable MnO2 –Zn batteries have only been able to cycle ∼10% of MnO2 's theoretical 2-electron capacity (617 mA h g −1 ), thus delivering significantly reduced energy density. In a recent paper from our group, we reversibly accessed the full theoretical 2-electron capacity of MnO2 for >6000 cycles by using a layered polymorph of MnO2 mixed with bismuth oxide (Bi2 O3 ) called Bi-birnessite (Bi–δ-MnO2 ) intercalated with Cu 2+ ions. This discovery highlighted the possibility of achieving very high energy densities from inexpensive aqueous batteries; however, a full-cell demonstration with Zn as the anode was not studied. Here we report for the first time the effect of Zn anodes on the cycle life and energy density of a full cell, where we observe that 15% depth-of-discharge (DOD) of the Zn's theoretical capacity (820 mA h g −1 ) creates a cell energy density of ∼160 W h L −1 ; however, this causes a drastic shape change and formation of irreversible zinc oxideAbstract : A conversion-based highly energy dense Cu 2+ intercalated Bi-birnessite/Zn battery with a cycle life of 900 cycles is reported. Abstract : Manganese dioxide (MnO2 )–zinc (Zn) batteries are cheap and environmentally benign and have sufficient theoretical energy density to be used as an energy storage device for the grid; however, they have been relegated to primary systems, where the complete energy is delivered in a single discharge, due to the irreversibility of their active materials. Until recently, rechargeable MnO2 –Zn batteries have only been able to cycle ∼10% of MnO2 's theoretical 2-electron capacity (617 mA h g −1 ), thus delivering significantly reduced energy density. In a recent paper from our group, we reversibly accessed the full theoretical 2-electron capacity of MnO2 for >6000 cycles by using a layered polymorph of MnO2 mixed with bismuth oxide (Bi2 O3 ) called Bi-birnessite (Bi–δ-MnO2 ) intercalated with Cu 2+ ions. This discovery highlighted the possibility of achieving very high energy densities from inexpensive aqueous batteries; however, a full-cell demonstration with Zn as the anode was not studied. Here we report for the first time the effect of Zn anodes on the cycle life and energy density of a full cell, where we observe that 15% depth-of-discharge (DOD) of the Zn's theoretical capacity (820 mA h g −1 ) creates a cell energy density of ∼160 W h L −1 ; however, this causes a drastic shape change and formation of irreversible zinc oxide (ZnO) at the anode, which ultimately causes cell failure after ∼100 cycles. A drop in energy density is also observed as a result of the interaction of dissolved Zn ions with the cathode, which forms a resistive Zn-birnessite compound in the early cycles, and then forms a highly resistive haeterolite (ZnMn2 O4 ) in the later cycles, and ultimately causes cathode failure. A possible solution using a calcium hydroxide layer as a separator is presented, where the layer blocks the interaction of zinc ions through a complexing mechanism to obtain >900 cycles with >80% retention of MnO2 DOD. … (more)
- Is Part Of:
- Journal of materials chemistry. Volume 5:Issue 30(2017)
- Journal:
- Journal of materials chemistry
- Issue:
- Volume 5:Issue 30(2017)
- Issue Display:
- Volume 5, Issue 30 (2017)
- Year:
- 2017
- Volume:
- 5
- Issue:
- 30
- Issue Sort Value:
- 2017-0005-0030-0000
- Page Start:
- 15845
- Page End:
- 15854
- Publication Date:
- 2017-07-24
- Subjects:
- Materials -- Research -- Periodicals
Chemistry, Analytic -- Periodicals
Environmental sciences -- Research -- Periodicals
543.0284 - Journal URLs:
- http://pubs.rsc.org/en/journals/journalissues/ta ↗
http://www.rsc.org/ ↗ - DOI:
- 10.1039/c7ta05347a ↗
- Languages:
- English
- ISSNs:
- 2050-7488
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - 5012.205100
British Library DSC - BLDSS-3PM
British Library STI - ELD Digital store - Ingest File:
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