Edinburgh | May-16 | The Winton Programme for the Physics of Sustainability

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Smart Villages Battery Technology and Recycling Workshop S E Dutton

Transcript of Edinburgh | May-16 | The Winton Programme for the Physics of Sustainability

Page 1: Edinburgh | May-16 | The Winton Programme for the Physics of Sustainability

Smart Villages Battery Technology and Recycling Workshop

S E Dutton

Page 2: Edinburgh | May-16 | The Winton Programme for the Physics of Sustainability

Dutton Group Research Activities

StoichiometryCrystal structure Electronic structure

Physical properties

FUNCTIONAL ENERGY MATERIALS (FEM)

BatteriesMagnetocalorics

PyrochloresHybrid photovoltaics

Multiferroics 

 

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Sample preparation• Solid state synthesis

• Controlled atmosphere to tune O2 partial pressure– Flowing gas (O2, Ar, 5%H2/Ar)– In vacuo– Dynamic vacuum

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Measurement• XRD – crystal structure analysis

• Neutron diffraction – crystal and magnetic structure

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Magnetic and Electronic measurements

• SQUID• PPMS• Battery testing

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Uses of rechargeable batteries

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Construction of a rechargeable battery

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Solid state electrolytes and all solid state batteries

New electrodes for Li-ion and Na-

ion batteries

Mg-ion batteries

F. Lalère, et al., J Power Sources 247, 975 (2014)

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Mg-ion batteries - motivation• Divalent ions

– generate more charge per intercalated ion • Possibility of using Mg anodes

– allows for higher energy densities• Cost and abundance

– Scaleable technology

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Mg-ion batteries

• Reversible Mg-ion battery with MgxMo6S8 as the cathode

• Capacity = 70 mAh/g

• Voltage = 1-1.3 V

Aurbach, Nature 407 (2000) 724

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Mg-ion batteries - practicalities

• Chemistry of Mg2+ is very different to Li+

– Mg2+ is often used as a dopant in electrodes for Li-ion batteries• assumed to be immobile• Often form materials with mixed Mg and transition metal

sites – Inherently lower voltage (by 0.73 V vs. Li)– Higher charge to radius ratio gives slower diffusion

• Whole battery systems not optimised– Current electrolytes are not stable at higher voltages– SEI formed on charge which limits capacity

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TargetsHigh Voltage High Capacity

Reversible Rate capability

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TargetsHigh Voltage High Capacity

Reversible Rate capability

Materials selection criteriaOxide or polyanion groups

Mg-ions on a crystallographically distinct siteRedox active ions

Pathways for Mg-ion diffusionSuitable ratio of Mg to redox active ions

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Analogues of electrodes in Li-ion

batteriesMake electrochemically

Mg-ion exchangeMake directly?

TargetsHigh Voltage High Capacity

Reversible Rate capability

Materials selection criteriaOxide or polyanion groups

Mg-ions on a crystallographically distinct siteRedox active ions

Pathways for Mg-ion diffusionSuitable ratio of Mg to redox active ions

Page 15: Edinburgh | May-16 | The Winton Programme for the Physics of Sustainability

Analogues of electrodes in Li-ion

batteriesMake electrochemically

Mg-ion exchangeMake directly?

Explore Mg-containing materials with no Li-analogue

Identify suitable targets from reported materials

Exploratory synthesis

TargetsHigh Voltage High Capacity

Reversible Rate capability

Materials selection criteriaOxide or polyanion groups

Mg-ions on a crystallographically distinct siteRedox active ions

Pathways for Mg-ion diffusionSuitable ratio of Mg to redox active ions

Page 16: Edinburgh | May-16 | The Winton Programme for the Physics of Sustainability

Analogues of Li-ion batteries

• Preparation can be difficult– Often made electrochemically by removing Li and

then cycling vs. Mg• Intrinsically lower capacity – One Li-ion is replaced by ½ Mg-ion

• Not optimised for Mg-ion transport

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Explore Mg-containing Materials

• High operating voltage• Higher capacities• Versatile structures– Can vary the TM ion• Mn, Fe, Co, V, Ni

– Can vary the oxidation state of the TM• Alter voltage of materials

MgMnB2O5

Theoretical capacity = 296 mAh/gMn2+

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Performance in a Mg-ion battery

vs Mg with TFSI in ACN3.5V cutoff

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Performance in a Mg-ion battery

vs Mg with TFSI in ACN2.5V cutoff

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What is the maximum amount of Li which can be removed?

• Test in a Li-ion cell

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What about putting Li into the structure?

• Reaches full theoretical capacity• There may be some side reactions as not completely reversible

• Though could be Li just occupy different sites

Intercalation of 1.25 Li

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MgMnB2O5 vs. Li – C/25

• Similar discharge capacity to C/100

• Better efficiency• 600 Wh/Kg is good

(LiCoO2 ~240Wh/Kg)

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Le Bail refinements of cycled MgMnB2O5

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• High capacity at high rates (C/2)

• Batteries operate over multiple cycles

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Conclusions

• It is possible to remove Mg ions from MgMnB2O5

• Overpotential is reduced when cycling vs. Li– Need to optimise construction of Mg-ion batteries

• Can reversibly cycle ~1.25 Li in demagnesiated MgMnB2O5

– Reversible over multiple cycles– Can be carried out at high rates

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Acknowledgements

• Hugh Glass• Evan Keyser• Zigeng Lui• Jeongjae Lee• Paul Bayley• Clare Grey• Dominic Wright

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