SlideShare a Scribd company logo
1 of 23
Download to read offline
Ionic transport in garnet
electrolytes: driving the
performance of solid state batteries
Rowena Brugge
Telford, 10th July 2019
Contents
• Introduction to all solid state batteries
– LLZO garnet-type electrolytes
– Challenges
• Research approach:
– Degradation and moisture reactivity
– Dendrite formation
• Summary and outlook
Energy storage and conversion Battery
during charge:
stores electrical energy as chemical
energy
Reduction at the positive terminal
(cathode)
discharge:
converts chemical energy to electricity
Oxidation at the negative terminal
(anode)
Electrolyte separates the electrodes
and is electronically insulating
Why all-solid-state batteries?
• Next generation batteries:
• Drive towards higher energy and power densities
• Safety requirements
Energy density (W ∙ h ∙ kg-1) – car autonomy/range
Power density (W ∙ kg-1) – charge/discharge rates
Why all-solid-state batteries?
• New chemistries –
– higher voltages (>4 V vs. Li+/Li)
– Li metal
P. Bruce et al. Nat. Mater., 11, 19, 2012
Long-term stable and high energy density batteries
Format of all-solid-state batteries
European Commission, European Battery Alliance, 2018 Report
MRS Bulletin: Frontiers of Solid State Batteries 2018
Lithium- air
Device integration
Improve areal
specific capacity
(mAh cm-2)
Composite
electrodes
Inorganic solid electrolytes
• Development of solid electrolytes
with high ionic mobility
(conductivity), electrochemical
stability and chemical stability
• Mitigate electrolyte
decomposition
• Possibility of miniaturization
Bachman, et al. Chem. Rev. 116, 140, 2016
Inorganic solid electrolytes
• Development of solid electrolytes
with high ionic mobility
(conductivity), electrochemical
stability and chemical stability
• Mitigate electrolyte
decomposition
• Possibility of miniaturization
• Garnet-type Li7La3Zr2O12 (LLZO)
Bachman, et al. Chem. Rev. 116, 140, 2016
1 mS cm-1
Garnet-type electrolytes (“LLZO”)
J. Awaka et al. Chem. Lett. 40, 1, 2011
C. Bernuy-Lopez et al. Chem. Mater. 26, 3610, 2014
Li6.55A0.15□0.3La3Zr2O12 (A: Ga, Al)
Li (Td)
Li (Oh)
vacancy
Ga(b)
x
OLiLi OVAOA 342 /
32 ++= ••
• Cubic symmetry
(space groups Ia̅3d, I4̅3d)
• 6.5 Li per formula unit disordered
between Td and Oh positions
• Flexible Li framework – donor
doping to create vacancies
Motivation - challenges
Janek, et al. Nature Energy, 16141, 2016
Jena et al. ACS Energy Lett. 3, 2775, 2018
Aguesse, et al. ACS Appl. Mater. Interfaces, 9, 2017
Surfaces and interfaces a bottleneck to performance
X Degradation issues:
• Moisture sensitive
• Lithium ‘dendrites’
X Dynamic interfaces
X Chemical and structural variation amongst grains, grain
boundaries and surfaces of polycrystalline pellets - dependent on
processing conditions
Need to optimise ion dynamics to improve power density and block degradation
Our approach
Investigate the local chemical environment in both the electrolyte and
Li metal/electrolyte interface in terms of its impact on the Li-ion
dynamics and cell degradation
0 20 40 60 80 100 120 140 160
0.00
0.05
0.10
0.15
0.20
0.25
0.30
0.35
0.40
0.45
0.50
C(7
Li)
sputter time (s)
6
Li-Ga0.15-LLZO short exchange
through-surface dp
1. Quantify ion transfer processes using trace elements
(2D, 18O, 6Li) and surface analysis
2. Visualise local chemical environments & correlate to
electrochemical performance and degradation
R. H. Brugge, unpublished
Garnet-type electrolytes - synthesis
• Sol-gel synthesis, doping with Ga(III), Al(III) at Li+
site to create V’Li
• 10-500 μm grain sizes
• Liquid phase sintering (Al2O3-Li2O eutectic)
• Thermal treatment in oven coupled to glove box
• Dry processing in Ar glove box <0.1 ppm H2O Fracture surfacePellet surface (thermally etched)
• Reaction with water
• H+/Li+ exchange in the lattice – maintain crystal structure
• LiOH and Li2CO3 formation at surface
➢ Shown to be detrimental to densification
➢ Increased interfacial R with electrodes
• Ionic transport properties of proton-rich LLZO in a cell setup??
(b)
LLTOLLTO
Aguesse et al. Adv. Mater. Interfaces 2014
Cheng, ACS Appl. Mater. Interfaces 2015, 7, 17649; Sharafi, J. Mater Chem. A 2017, 5, 13475; Cheng, Phys. Chem. Phys. Chem. 2014, 16, 18294
Degradation – proton/lithium exchange
Degradation – proton/lithium exchange
Direct relationship between degree of H-Li exchange and degradation of Li mobility:
Formation of a H-rich electrolyte in the surface up to 1.2 𝜇m thick.
Li metal
Brugge et al. Chem. Mater. 30, 3704, 2018
5 10 15 20 25 30
0.0
0.5
1.0
1.5
length(m)
H2
O immersion time (minutes)
H-Ga0.15-LLZO plateau length
H-LLZO
LLZO
Aim: study the role of H-LLZO on the performance, isolated from surface LiOH and Li2CO3 reaction products.
100 °C
5-30 minsH2O
“FIB” SIMS
Degradation – proton/lithium exchange
Brugge et al. Chem. Mater. 30, 3704, 2018
Bulk Grain boundary Li metal interface
1
10
100
1000
10000
100000
Pristine
15 min
30 min
Resistance
R increase > 3 orders
R increase > 3 orders
Li/LLZO/LiDirect relationship between degree of H-Li exchange and degradation of Li mobility:
Surfaces and grain boundaries most affected.
LLZO
Li metal
Li metal
Spacer
Spacer
Spring
Cell Bottom
Cell Cap
Dendritic cell failure
10 μm
X Formation of dendrites limits the practical use of solid electrolytes with Li metal electrodes
• Composition and mechanism of formation remains unclear
• Electrochemo-mechanical models
• Possible link to defects in bulk and at interface/ non-uniform kinetics
• Role of electronic conductivity of electrolyte?
Krauskopf, Joule 2019; Swamy, J. Electrochem. Soc 2018; Tian, J. Power Sources 2018; Xie, ACS Appl. Mater. Interfaces 2018
Dendritic cell failure
F. Pesci et al., J. Mater. Chem A, 2018
• Cell cycling – increasing current density until short circuit reached
(at the “critical current density”, CCD)
• 60% difference in CCD for same thickness, microstructure, cycling
regime
Short circuit CCD:
Ga-LLZO=0.16 mA/cm2
Al-LLZO=0.1 mA/cm2
0.01 to 0.5 mA/cm2
Step 0.01 mA/cm2
Charge/discharge 30 min
OCP 5 min intervals
Dendritic cell failure
After cycling: intra- and inter-grain features
F. Pesci et al., J. Mater. Chem A, 2018
Dendritic cell failure – chemical analysis
After cycling Before cycling
Al, Li- rich
Li- rich
F. Pesci et al., J. Mater. Chem A, 2018
Al-LLZO
Ga-LLZO
10 μm
10 μm
5 m
Al Zr La O
5 m 5 m 5 m 5 m
5 m
Al Zr La O
5 m 5 m 5 m 5 m
Al-LLZO
Grain boundaries
• Isolate grain and grain boundary
transport properties
0 1x105
2x105
3x105
4x105
0.0
-5.0x104
-1.0x105
-1.5x105
-2.0x105
-2.5x105
-3.0x105
Al-LLZO
Fit
Ga-LLZO
Fit
Z''(Ohm)
Z' (Ohm)
Bulk
Al-LLZO: 1.2x10-3 S/cm
Ga-LLZO: 2.3 x10-3 S/cm
Cavallaro et al. work in progress
Summary – tools and approach
Study of ion-dynamics in materials and their effect on performance and degradation in surfaces, bulk and buried
interfaces:
• Correlate chemical analysis of garnet electrolytes and their degradation products to ionic transport and cell
performance, as applied to:
– Li+/H+ exchange processes resulting from moisture degradation
• Bulk, grain boundary and interfacial resistance increases as a result
– Cycling behaviour: dendritic-driven cell failure with Li metal electrodes
• Effect of dopant/local chemistry on propensity for dendrite formation
– Further characterization of grain boundaries and e.g. SEI formation and interface properties in Li/LLZO and
other systems
Outlook
Next-generation batteries, a balance of:
• discharge capacity
• thermal stability
• capacity retention and
• lifespan
• Defects key to transport properties
– Vacancies, grain boundaries,
dislocations
Kim et al. J. Mater. Chem. A, 2019, 7, 2942–2964, Luo et al. Adv. Sci. 2017, 4, 1700104
Next-next-generation?
• Hybrid conversion-storage devices:
photorechargeable batteries?
Thank You
• Dr Ainara Aguadero
• Dr Andrea Cavallaro
• Dr Federico Pesci
• Dr Ola Hekselman
• Dr Richard Chater
• Electroceramic Materials Group
• Professor John Kilner
• Professor Stephen Skinner
EPSRC ICSF “Genesis: garnet electrolytes for new energy storage integrated solutions” EP/R024006/1
EPSRC Supergen Energy Storage Challenge “Next Generation solid state Lithium Batteries” EP/P003532/1

More Related Content

What's hot

The Materials Science of Lithium-Ion Batteries (Sept 2014)
The Materials Science of Lithium-Ion Batteries (Sept 2014)The Materials Science of Lithium-Ion Batteries (Sept 2014)
The Materials Science of Lithium-Ion Batteries (Sept 2014)Andrew Gelston
 
Lithium ion silicon anode batteries
Lithium ion   silicon anode batteriesLithium ion   silicon anode batteries
Lithium ion silicon anode batteriesASHIMA GUPTA
 
NASA Presentation
NASA PresentationNASA Presentation
NASA PresentationGerry Flood
 
Electrochemistry of Lithium ion Battery
Electrochemistry of Lithium ion BatteryElectrochemistry of Lithium ion Battery
Electrochemistry of Lithium ion BatterySaiful Islam
 
The Lithium Battery Explorer Part 1 - Introduction to Lithium-ion Batteries
The Lithium Battery Explorer Part 1 - Introduction to Lithium-ion BatteriesThe Lithium Battery Explorer Part 1 - Introduction to Lithium-ion Batteries
The Lithium Battery Explorer Part 1 - Introduction to Lithium-ion BatteriesUniversity of California, San Diego
 
Status of Rechargeable Li-ion Battery Industry 2019 by Yole Développement
Status of Rechargeable Li-ion Battery Industry 2019 by Yole DéveloppementStatus of Rechargeable Li-ion Battery Industry 2019 by Yole Développement
Status of Rechargeable Li-ion Battery Industry 2019 by Yole DéveloppementYole Developpement
 
Silicon Photonics Market & Technology 2020
Silicon Photonics Market & Technology 2020Silicon Photonics Market & Technology 2020
Silicon Photonics Market & Technology 2020Yole Developpement
 
ALL-SOLID STATE BATTERIES: AN OVERVIEW FOR BIO APPLICATIONS
ALL-SOLID STATE BATTERIES: AN OVERVIEW FOR  BIO APPLICATIONSALL-SOLID STATE BATTERIES: AN OVERVIEW FOR  BIO APPLICATIONS
ALL-SOLID STATE BATTERIES: AN OVERVIEW FOR BIO APPLICATIONSGururaj B Rawoor
 
Poster on Recycling of spent batteries
Poster on Recycling of spent batteriesPoster on Recycling of spent batteries
Poster on Recycling of spent batteriesbmeshram
 
Lithium ion battery recycling market sample extract (with data) | IndustryARC
Lithium ion battery recycling market sample extract (with data) | IndustryARCLithium ion battery recycling market sample extract (with data) | IndustryARC
Lithium ion battery recycling market sample extract (with data) | IndustryARCvijay vardhan Bejjam
 
SOLID-STATE BATTERY PERFORMANCE FOR THE EV INDUSTRY - COMMERCIAL TO PASSENGER
SOLID-STATE BATTERY PERFORMANCE FOR THE EV INDUSTRY - COMMERCIAL TO PASSENGERSOLID-STATE BATTERY PERFORMANCE FOR THE EV INDUSTRY - COMMERCIAL TO PASSENGER
SOLID-STATE BATTERY PERFORMANCE FOR THE EV INDUSTRY - COMMERCIAL TO PASSENGERiQHub
 
Lithium-ion battery - Challenges for renewable energy solutions - InnoVentum ...
Lithium-ion battery - Challenges for renewable energy solutions - InnoVentum ...Lithium-ion battery - Challenges for renewable energy solutions - InnoVentum ...
Lithium-ion battery - Challenges for renewable energy solutions - InnoVentum ...Jeff Gallagher
 
Lithium ion batteries and latest innovation
Lithium ion batteries and latest innovationLithium ion batteries and latest innovation
Lithium ion batteries and latest innovationDheeraj Kumar Soni
 
EV BATTERY RECYCLING TECHNOLOGY AND THE PRIMARY DRIVERS
EV BATTERY RECYCLING TECHNOLOGY AND THE PRIMARY DRIVERSEV BATTERY RECYCLING TECHNOLOGY AND THE PRIMARY DRIVERS
EV BATTERY RECYCLING TECHNOLOGY AND THE PRIMARY DRIVERSDesignTeam8
 
solid state batteries
solid state batteriessolid state batteries
solid state batteriesM. Raja Reddy
 

What's hot (20)

The Materials Science of Lithium-Ion Batteries (Sept 2014)
The Materials Science of Lithium-Ion Batteries (Sept 2014)The Materials Science of Lithium-Ion Batteries (Sept 2014)
The Materials Science of Lithium-Ion Batteries (Sept 2014)
 
Lithium ion silicon anode batteries
Lithium ion   silicon anode batteriesLithium ion   silicon anode batteries
Lithium ion silicon anode batteries
 
NASA Presentation
NASA PresentationNASA Presentation
NASA Presentation
 
Electrochemistry of Lithium ion Battery
Electrochemistry of Lithium ion BatteryElectrochemistry of Lithium ion Battery
Electrochemistry of Lithium ion Battery
 
The Lithium Battery Explorer Part 1 - Introduction to Lithium-ion Batteries
The Lithium Battery Explorer Part 1 - Introduction to Lithium-ion BatteriesThe Lithium Battery Explorer Part 1 - Introduction to Lithium-ion Batteries
The Lithium Battery Explorer Part 1 - Introduction to Lithium-ion Batteries
 
Status of Rechargeable Li-ion Battery Industry 2019 by Yole Développement
Status of Rechargeable Li-ion Battery Industry 2019 by Yole DéveloppementStatus of Rechargeable Li-ion Battery Industry 2019 by Yole Développement
Status of Rechargeable Li-ion Battery Industry 2019 by Yole Développement
 
Silicon Photonics Market & Technology 2020
Silicon Photonics Market & Technology 2020Silicon Photonics Market & Technology 2020
Silicon Photonics Market & Technology 2020
 
SOFC perovskite- DFT work
SOFC perovskite- DFT workSOFC perovskite- DFT work
SOFC perovskite- DFT work
 
ALL-SOLID STATE BATTERIES: AN OVERVIEW FOR BIO APPLICATIONS
ALL-SOLID STATE BATTERIES: AN OVERVIEW FOR  BIO APPLICATIONSALL-SOLID STATE BATTERIES: AN OVERVIEW FOR  BIO APPLICATIONS
ALL-SOLID STATE BATTERIES: AN OVERVIEW FOR BIO APPLICATIONS
 
Poster on Recycling of spent batteries
Poster on Recycling of spent batteriesPoster on Recycling of spent batteries
Poster on Recycling of spent batteries
 
Batteries ppt
Batteries pptBatteries ppt
Batteries ppt
 
Lithium ion battery recycling market sample extract (with data) | IndustryARC
Lithium ion battery recycling market sample extract (with data) | IndustryARCLithium ion battery recycling market sample extract (with data) | IndustryARC
Lithium ion battery recycling market sample extract (with data) | IndustryARC
 
SOLID-STATE BATTERY PERFORMANCE FOR THE EV INDUSTRY - COMMERCIAL TO PASSENGER
SOLID-STATE BATTERY PERFORMANCE FOR THE EV INDUSTRY - COMMERCIAL TO PASSENGERSOLID-STATE BATTERY PERFORMANCE FOR THE EV INDUSTRY - COMMERCIAL TO PASSENGER
SOLID-STATE BATTERY PERFORMANCE FOR THE EV INDUSTRY - COMMERCIAL TO PASSENGER
 
Lithium-ion battery - Challenges for renewable energy solutions - InnoVentum ...
Lithium-ion battery - Challenges for renewable energy solutions - InnoVentum ...Lithium-ion battery - Challenges for renewable energy solutions - InnoVentum ...
Lithium-ion battery - Challenges for renewable energy solutions - InnoVentum ...
 
Lithium ion batteries and latest innovation
Lithium ion batteries and latest innovationLithium ion batteries and latest innovation
Lithium ion batteries and latest innovation
 
Li ion-battery
Li ion-batteryLi ion-battery
Li ion-battery
 
EV BATTERY RECYCLING TECHNOLOGY AND THE PRIMARY DRIVERS
EV BATTERY RECYCLING TECHNOLOGY AND THE PRIMARY DRIVERSEV BATTERY RECYCLING TECHNOLOGY AND THE PRIMARY DRIVERS
EV BATTERY RECYCLING TECHNOLOGY AND THE PRIMARY DRIVERS
 
Solid-state Battery
Solid-state BatterySolid-state Battery
Solid-state Battery
 
solid state batteries
solid state batteriessolid state batteries
solid state batteries
 
First principles design of lithium superionic conductors
First principles design of lithium superionic conductorsFirst principles design of lithium superionic conductors
First principles design of lithium superionic conductors
 

Similar to Rowena brugge imperial college

Review-on-solid-electrolytes-for-all-solid-state-lith_2018_Journal-of-Power-.pdf
Review-on-solid-electrolytes-for-all-solid-state-lith_2018_Journal-of-Power-.pdfReview-on-solid-electrolytes-for-all-solid-state-lith_2018_Journal-of-Power-.pdf
Review-on-solid-electrolytes-for-all-solid-state-lith_2018_Journal-of-Power-.pdfssuser05c0421
 
Understanding of thermal stability of lithium ion batteries
Understanding of thermal stability of lithium ion batteriesUnderstanding of thermal stability of lithium ion batteries
Understanding of thermal stability of lithium ion batteriesKhue Luu
 
Jaya-National Science Day talk.pptx
Jaya-National Science Day talk.pptxJaya-National Science Day talk.pptx
Jaya-National Science Day talk.pptxRetheesh Raj
 
Research plan 2
Research plan 2Research plan 2
Research plan 2Toru Hara
 
President Undergraduate Research Awards
President Undergraduate Research AwardsPresident Undergraduate Research Awards
President Undergraduate Research AwardsJiankun Pu
 
Edinburgh | May-16 | Future Battery Chemistries – The Rôle of Sodium
 Edinburgh | May-16 | Future Battery Chemistries – The Rôle of Sodium Edinburgh | May-16 | Future Battery Chemistries – The Rôle of Sodium
Edinburgh | May-16 | Future Battery Chemistries – The Rôle of SodiumSmart Villages
 
Pidaparthy 2021 j._electrochem._soc._168_100509
Pidaparthy 2021 j._electrochem._soc._168_100509Pidaparthy 2021 j._electrochem._soc._168_100509
Pidaparthy 2021 j._electrochem._soc._168_100509Ary Assuncao
 
DavidLaFehrEEResearchProject
DavidLaFehrEEResearchProjectDavidLaFehrEEResearchProject
DavidLaFehrEEResearchProjectDavid LaFehr
 
An introduction to electrocoagulation
An introduction to electrocoagulationAn introduction to electrocoagulation
An introduction to electrocoagulationChristos Charisiadis
 
Acs 2009 3 22 Final
Acs 2009 3 22 FinalAcs 2009 3 22 Final
Acs 2009 3 22 Finaljihuac
 
IRJET- Black Phosphorous as an Alternative to Current Semiconductor Materials
IRJET- Black Phosphorous as an Alternative to Current Semiconductor MaterialsIRJET- Black Phosphorous as an Alternative to Current Semiconductor Materials
IRJET- Black Phosphorous as an Alternative to Current Semiconductor MaterialsIRJET Journal
 
Walker Electrochemical Paper
Walker Electrochemical PaperWalker Electrochemical Paper
Walker Electrochemical PaperPatrick Walker
 
Understanding ionic structure and dynamics in novel electrolytes; Paving the ...
Understanding ionic structure and dynamics in novel electrolytes; Paving the ...Understanding ionic structure and dynamics in novel electrolytes; Paving the ...
Understanding ionic structure and dynamics in novel electrolytes; Paving the ...Trinity College Dublin
 
Electrochemical Investigation of Electrolyte & Anodic Materials for Sodium Io...
Electrochemical Investigation of Electrolyte & Anodic Materials for Sodium Io...Electrochemical Investigation of Electrolyte & Anodic Materials for Sodium Io...
Electrochemical Investigation of Electrolyte & Anodic Materials for Sodium Io...CrimsonPublishersRDMS
 
Organic Field Effect Transistor
Organic Field Effect TransistorOrganic Field Effect Transistor
Organic Field Effect Transistorsantosh meena
 

Similar to Rowena brugge imperial college (20)

Review-on-solid-electrolytes-for-all-solid-state-lith_2018_Journal-of-Power-.pdf
Review-on-solid-electrolytes-for-all-solid-state-lith_2018_Journal-of-Power-.pdfReview-on-solid-electrolytes-for-all-solid-state-lith_2018_Journal-of-Power-.pdf
Review-on-solid-electrolytes-for-all-solid-state-lith_2018_Journal-of-Power-.pdf
 
Understanding of thermal stability of lithium ion batteries
Understanding of thermal stability of lithium ion batteriesUnderstanding of thermal stability of lithium ion batteries
Understanding of thermal stability of lithium ion batteries
 
Jaya-National Science Day talk.pptx
Jaya-National Science Day talk.pptxJaya-National Science Day talk.pptx
Jaya-National Science Day talk.pptx
 
Research plan 2
Research plan 2Research plan 2
Research plan 2
 
President Undergraduate Research Awards
President Undergraduate Research AwardsPresident Undergraduate Research Awards
President Undergraduate Research Awards
 
Edinburgh | May-16 | Future Battery Chemistries – The Rôle of Sodium
 Edinburgh | May-16 | Future Battery Chemistries – The Rôle of Sodium Edinburgh | May-16 | Future Battery Chemistries – The Rôle of Sodium
Edinburgh | May-16 | Future Battery Chemistries – The Rôle of Sodium
 
Pidaparthy 2021 j._electrochem._soc._168_100509
Pidaparthy 2021 j._electrochem._soc._168_100509Pidaparthy 2021 j._electrochem._soc._168_100509
Pidaparthy 2021 j._electrochem._soc._168_100509
 
DavidLaFehrEEResearchProject
DavidLaFehrEEResearchProjectDavidLaFehrEEResearchProject
DavidLaFehrEEResearchProject
 
An introduction to electrocoagulation
An introduction to electrocoagulationAn introduction to electrocoagulation
An introduction to electrocoagulation
 
Acs 2009 3 22 Final
Acs 2009 3 22 FinalAcs 2009 3 22 Final
Acs 2009 3 22 Final
 
IRJET- Black Phosphorous as an Alternative to Current Semiconductor Materials
IRJET- Black Phosphorous as an Alternative to Current Semiconductor MaterialsIRJET- Black Phosphorous as an Alternative to Current Semiconductor Materials
IRJET- Black Phosphorous as an Alternative to Current Semiconductor Materials
 
Walker Electrochemical Paper
Walker Electrochemical PaperWalker Electrochemical Paper
Walker Electrochemical Paper
 
1-s2.0-S1369800114000055-main
1-s2.0-S1369800114000055-main1-s2.0-S1369800114000055-main
1-s2.0-S1369800114000055-main
 
Baterias LIB.ppt
Baterias LIB.pptBaterias LIB.ppt
Baterias LIB.ppt
 
Understanding ionic structure and dynamics in novel electrolytes; Paving the ...
Understanding ionic structure and dynamics in novel electrolytes; Paving the ...Understanding ionic structure and dynamics in novel electrolytes; Paving the ...
Understanding ionic structure and dynamics in novel electrolytes; Paving the ...
 
Electrochemical Investigation of Electrolyte & Anodic Materials for Sodium Io...
Electrochemical Investigation of Electrolyte & Anodic Materials for Sodium Io...Electrochemical Investigation of Electrolyte & Anodic Materials for Sodium Io...
Electrochemical Investigation of Electrolyte & Anodic Materials for Sodium Io...
 
Organic Field Effect Transistor
Organic Field Effect TransistorOrganic Field Effect Transistor
Organic Field Effect Transistor
 
Lithium and Lithium-ion Batteries: Challenges and Prospects
Lithium and Lithium-ion Batteries: Challenges and ProspectsLithium and Lithium-ion Batteries: Challenges and Prospects
Lithium and Lithium-ion Batteries: Challenges and Prospects
 
Ss jana
Ss jana Ss jana
Ss jana
 
Plastic electronics
Plastic electronicsPlastic electronics
Plastic electronics
 

More from The Advanced Materials Show

More from The Advanced Materials Show (20)

John robinson university of wolverhampton
John robinson   university of wolverhamptonJohn robinson   university of wolverhampton
John robinson university of wolverhampton
 
Mark gee npl
Mark gee   nplMark gee   npl
Mark gee npl
 
Nishil Malde - Anton Paar
Nishil Malde  - Anton PaarNishil Malde  - Anton Paar
Nishil Malde - Anton Paar
 
Bryan allcock trl9 ready
Bryan allcock   trl9 readyBryan allcock   trl9 ready
Bryan allcock trl9 ready
 
Allan matthews bp icam
Allan matthews   bp icamAllan matthews   bp icam
Allan matthews bp icam
 
Terrance barkan graphene council
Terrance barkan   graphene councilTerrance barkan   graphene council
Terrance barkan graphene council
 
Michael enotiades oc si-al
Michael enotiades   oc si-alMichael enotiades   oc si-al
Michael enotiades oc si-al
 
Michael edwards thomas swan
Michael edwards   thomas swanMichael edwards   thomas swan
Michael edwards thomas swan
 
Bernhard muenzing the sixth element
Bernhard muenzing   the sixth elementBernhard muenzing   the sixth element
Bernhard muenzing the sixth element
 
Robert quarshie ktn
Robert quarshie   ktnRobert quarshie   ktn
Robert quarshie ktn
 
Brian mc carthy - innovate uk
Brian mc carthy - innovate ukBrian mc carthy - innovate uk
Brian mc carthy - innovate uk
 
Sally beken uk circular plastics
Sally beken   uk circular plasticsSally beken   uk circular plastics
Sally beken uk circular plastics
 
Sam troughton hexigone
Sam troughton   hexigoneSam troughton   hexigone
Sam troughton hexigone
 
Paul braun university of illinois
Paul braun   university of illinoisPaul braun   university of illinois
Paul braun university of illinois
 
Bernhard muenzing the sixth element
Bernhard muenzing   the sixth elementBernhard muenzing   the sixth element
Bernhard muenzing the sixth element
 
Anna wojdyla cieslak twi
Anna wojdyla cieslak   twiAnna wojdyla cieslak   twi
Anna wojdyla cieslak twi
 
John lutton creative composites
John lutton   creative composites  John lutton   creative composites
John lutton creative composites
 
Dominic hopwood bitrez
Dominic hopwood   bitrezDominic hopwood   bitrez
Dominic hopwood bitrez
 
Stephen hodge versarien
Stephen hodge   versarienStephen hodge   versarien
Stephen hodge versarien
 
Friedrich wolff 3 m
Friedrich wolff   3 mFriedrich wolff   3 m
Friedrich wolff 3 m
 

Recently uploaded

A relative description on Sonoporation.pdf
A relative description on Sonoporation.pdfA relative description on Sonoporation.pdf
A relative description on Sonoporation.pdfnehabiju2046
 
Call Girls in Mayapuri Delhi 💯Call Us 🔝9953322196🔝 💯Escort.
Call Girls in Mayapuri Delhi 💯Call Us 🔝9953322196🔝 💯Escort.Call Girls in Mayapuri Delhi 💯Call Us 🔝9953322196🔝 💯Escort.
Call Girls in Mayapuri Delhi 💯Call Us 🔝9953322196🔝 💯Escort.aasikanpl
 
CALL ON ➥8923113531 🔝Call Girls Kesar Bagh Lucknow best Night Fun service 🪡
CALL ON ➥8923113531 🔝Call Girls Kesar Bagh Lucknow best Night Fun service  🪡CALL ON ➥8923113531 🔝Call Girls Kesar Bagh Lucknow best Night Fun service  🪡
CALL ON ➥8923113531 🔝Call Girls Kesar Bagh Lucknow best Night Fun service 🪡anilsa9823
 
Traditional Agroforestry System in India- Shifting Cultivation, Taungya, Home...
Traditional Agroforestry System in India- Shifting Cultivation, Taungya, Home...Traditional Agroforestry System in India- Shifting Cultivation, Taungya, Home...
Traditional Agroforestry System in India- Shifting Cultivation, Taungya, Home...jana861314
 
Botany 4th semester file By Sumit Kumar yadav.pdf
Botany 4th semester file By Sumit Kumar yadav.pdfBotany 4th semester file By Sumit Kumar yadav.pdf
Botany 4th semester file By Sumit Kumar yadav.pdfSumit Kumar yadav
 
Raman spectroscopy.pptx M Pharm, M Sc, Advanced Spectral Analysis
Raman spectroscopy.pptx M Pharm, M Sc, Advanced Spectral AnalysisRaman spectroscopy.pptx M Pharm, M Sc, Advanced Spectral Analysis
Raman spectroscopy.pptx M Pharm, M Sc, Advanced Spectral AnalysisDiwakar Mishra
 
STERILITY TESTING OF PHARMACEUTICALS ppt by DR.C.P.PRINCE
STERILITY TESTING OF PHARMACEUTICALS ppt by DR.C.P.PRINCESTERILITY TESTING OF PHARMACEUTICALS ppt by DR.C.P.PRINCE
STERILITY TESTING OF PHARMACEUTICALS ppt by DR.C.P.PRINCEPRINCE C P
 
Grafana in space: Monitoring Japan's SLIM moon lander in real time
Grafana in space: Monitoring Japan's SLIM moon lander  in real timeGrafana in space: Monitoring Japan's SLIM moon lander  in real time
Grafana in space: Monitoring Japan's SLIM moon lander in real timeSatoshi NAKAHIRA
 
Types of different blotting techniques.pptx
Types of different blotting techniques.pptxTypes of different blotting techniques.pptx
Types of different blotting techniques.pptxkhadijarafiq2012
 
Formation of low mass protostars and their circumstellar disks
Formation of low mass protostars and their circumstellar disksFormation of low mass protostars and their circumstellar disks
Formation of low mass protostars and their circumstellar disksSérgio Sacani
 
Boyles law module in the grade 10 science
Boyles law module in the grade 10 scienceBoyles law module in the grade 10 science
Boyles law module in the grade 10 sciencefloriejanemacaya1
 
Work, Energy and Power for class 10 ICSE Physics
Work, Energy and Power for class 10 ICSE PhysicsWork, Energy and Power for class 10 ICSE Physics
Work, Energy and Power for class 10 ICSE Physicsvishikhakeshava1
 
Analytical Profile of Coleus Forskohlii | Forskolin .pptx
Analytical Profile of Coleus Forskohlii | Forskolin .pptxAnalytical Profile of Coleus Forskohlii | Forskolin .pptx
Analytical Profile of Coleus Forskohlii | Forskolin .pptxSwapnil Therkar
 
PossibleEoarcheanRecordsoftheGeomagneticFieldPreservedintheIsuaSupracrustalBe...
PossibleEoarcheanRecordsoftheGeomagneticFieldPreservedintheIsuaSupracrustalBe...PossibleEoarcheanRecordsoftheGeomagneticFieldPreservedintheIsuaSupracrustalBe...
PossibleEoarcheanRecordsoftheGeomagneticFieldPreservedintheIsuaSupracrustalBe...Sérgio Sacani
 
Recombinant DNA technology (Immunological screening)
Recombinant DNA technology (Immunological screening)Recombinant DNA technology (Immunological screening)
Recombinant DNA technology (Immunological screening)PraveenaKalaiselvan1
 
Recombination DNA Technology (Nucleic Acid Hybridization )
Recombination DNA Technology (Nucleic Acid Hybridization )Recombination DNA Technology (Nucleic Acid Hybridization )
Recombination DNA Technology (Nucleic Acid Hybridization )aarthirajkumar25
 
Unlocking the Potential: Deep dive into ocean of Ceramic Magnets.pptx
Unlocking  the Potential: Deep dive into ocean of Ceramic Magnets.pptxUnlocking  the Potential: Deep dive into ocean of Ceramic Magnets.pptx
Unlocking the Potential: Deep dive into ocean of Ceramic Magnets.pptxanandsmhk
 

Recently uploaded (20)

A relative description on Sonoporation.pdf
A relative description on Sonoporation.pdfA relative description on Sonoporation.pdf
A relative description on Sonoporation.pdf
 
Call Girls in Mayapuri Delhi 💯Call Us 🔝9953322196🔝 💯Escort.
Call Girls in Mayapuri Delhi 💯Call Us 🔝9953322196🔝 💯Escort.Call Girls in Mayapuri Delhi 💯Call Us 🔝9953322196🔝 💯Escort.
Call Girls in Mayapuri Delhi 💯Call Us 🔝9953322196🔝 💯Escort.
 
CALL ON ➥8923113531 🔝Call Girls Kesar Bagh Lucknow best Night Fun service 🪡
CALL ON ➥8923113531 🔝Call Girls Kesar Bagh Lucknow best Night Fun service  🪡CALL ON ➥8923113531 🔝Call Girls Kesar Bagh Lucknow best Night Fun service  🪡
CALL ON ➥8923113531 🔝Call Girls Kesar Bagh Lucknow best Night Fun service 🪡
 
The Philosophy of Science
The Philosophy of ScienceThe Philosophy of Science
The Philosophy of Science
 
Traditional Agroforestry System in India- Shifting Cultivation, Taungya, Home...
Traditional Agroforestry System in India- Shifting Cultivation, Taungya, Home...Traditional Agroforestry System in India- Shifting Cultivation, Taungya, Home...
Traditional Agroforestry System in India- Shifting Cultivation, Taungya, Home...
 
Engler and Prantl system of classification in plant taxonomy
Engler and Prantl system of classification in plant taxonomyEngler and Prantl system of classification in plant taxonomy
Engler and Prantl system of classification in plant taxonomy
 
Botany 4th semester file By Sumit Kumar yadav.pdf
Botany 4th semester file By Sumit Kumar yadav.pdfBotany 4th semester file By Sumit Kumar yadav.pdf
Botany 4th semester file By Sumit Kumar yadav.pdf
 
Raman spectroscopy.pptx M Pharm, M Sc, Advanced Spectral Analysis
Raman spectroscopy.pptx M Pharm, M Sc, Advanced Spectral AnalysisRaman spectroscopy.pptx M Pharm, M Sc, Advanced Spectral Analysis
Raman spectroscopy.pptx M Pharm, M Sc, Advanced Spectral Analysis
 
STERILITY TESTING OF PHARMACEUTICALS ppt by DR.C.P.PRINCE
STERILITY TESTING OF PHARMACEUTICALS ppt by DR.C.P.PRINCESTERILITY TESTING OF PHARMACEUTICALS ppt by DR.C.P.PRINCE
STERILITY TESTING OF PHARMACEUTICALS ppt by DR.C.P.PRINCE
 
Grafana in space: Monitoring Japan's SLIM moon lander in real time
Grafana in space: Monitoring Japan's SLIM moon lander  in real timeGrafana in space: Monitoring Japan's SLIM moon lander  in real time
Grafana in space: Monitoring Japan's SLIM moon lander in real time
 
Types of different blotting techniques.pptx
Types of different blotting techniques.pptxTypes of different blotting techniques.pptx
Types of different blotting techniques.pptx
 
Formation of low mass protostars and their circumstellar disks
Formation of low mass protostars and their circumstellar disksFormation of low mass protostars and their circumstellar disks
Formation of low mass protostars and their circumstellar disks
 
CELL -Structural and Functional unit of life.pdf
CELL -Structural and Functional unit of life.pdfCELL -Structural and Functional unit of life.pdf
CELL -Structural and Functional unit of life.pdf
 
Boyles law module in the grade 10 science
Boyles law module in the grade 10 scienceBoyles law module in the grade 10 science
Boyles law module in the grade 10 science
 
Work, Energy and Power for class 10 ICSE Physics
Work, Energy and Power for class 10 ICSE PhysicsWork, Energy and Power for class 10 ICSE Physics
Work, Energy and Power for class 10 ICSE Physics
 
Analytical Profile of Coleus Forskohlii | Forskolin .pptx
Analytical Profile of Coleus Forskohlii | Forskolin .pptxAnalytical Profile of Coleus Forskohlii | Forskolin .pptx
Analytical Profile of Coleus Forskohlii | Forskolin .pptx
 
PossibleEoarcheanRecordsoftheGeomagneticFieldPreservedintheIsuaSupracrustalBe...
PossibleEoarcheanRecordsoftheGeomagneticFieldPreservedintheIsuaSupracrustalBe...PossibleEoarcheanRecordsoftheGeomagneticFieldPreservedintheIsuaSupracrustalBe...
PossibleEoarcheanRecordsoftheGeomagneticFieldPreservedintheIsuaSupracrustalBe...
 
Recombinant DNA technology (Immunological screening)
Recombinant DNA technology (Immunological screening)Recombinant DNA technology (Immunological screening)
Recombinant DNA technology (Immunological screening)
 
Recombination DNA Technology (Nucleic Acid Hybridization )
Recombination DNA Technology (Nucleic Acid Hybridization )Recombination DNA Technology (Nucleic Acid Hybridization )
Recombination DNA Technology (Nucleic Acid Hybridization )
 
Unlocking the Potential: Deep dive into ocean of Ceramic Magnets.pptx
Unlocking  the Potential: Deep dive into ocean of Ceramic Magnets.pptxUnlocking  the Potential: Deep dive into ocean of Ceramic Magnets.pptx
Unlocking the Potential: Deep dive into ocean of Ceramic Magnets.pptx
 

Rowena brugge imperial college

  • 1. Ionic transport in garnet electrolytes: driving the performance of solid state batteries Rowena Brugge Telford, 10th July 2019
  • 2. Contents • Introduction to all solid state batteries – LLZO garnet-type electrolytes – Challenges • Research approach: – Degradation and moisture reactivity – Dendrite formation • Summary and outlook
  • 3. Energy storage and conversion Battery during charge: stores electrical energy as chemical energy Reduction at the positive terminal (cathode) discharge: converts chemical energy to electricity Oxidation at the negative terminal (anode) Electrolyte separates the electrodes and is electronically insulating
  • 4. Why all-solid-state batteries? • Next generation batteries: • Drive towards higher energy and power densities • Safety requirements Energy density (W ∙ h ∙ kg-1) – car autonomy/range Power density (W ∙ kg-1) – charge/discharge rates
  • 5. Why all-solid-state batteries? • New chemistries – – higher voltages (>4 V vs. Li+/Li) – Li metal P. Bruce et al. Nat. Mater., 11, 19, 2012 Long-term stable and high energy density batteries
  • 6. Format of all-solid-state batteries European Commission, European Battery Alliance, 2018 Report MRS Bulletin: Frontiers of Solid State Batteries 2018 Lithium- air Device integration Improve areal specific capacity (mAh cm-2) Composite electrodes
  • 7. Inorganic solid electrolytes • Development of solid electrolytes with high ionic mobility (conductivity), electrochemical stability and chemical stability • Mitigate electrolyte decomposition • Possibility of miniaturization Bachman, et al. Chem. Rev. 116, 140, 2016
  • 8. Inorganic solid electrolytes • Development of solid electrolytes with high ionic mobility (conductivity), electrochemical stability and chemical stability • Mitigate electrolyte decomposition • Possibility of miniaturization • Garnet-type Li7La3Zr2O12 (LLZO) Bachman, et al. Chem. Rev. 116, 140, 2016 1 mS cm-1
  • 9. Garnet-type electrolytes (“LLZO”) J. Awaka et al. Chem. Lett. 40, 1, 2011 C. Bernuy-Lopez et al. Chem. Mater. 26, 3610, 2014 Li6.55A0.15□0.3La3Zr2O12 (A: Ga, Al) Li (Td) Li (Oh) vacancy Ga(b) x OLiLi OVAOA 342 / 32 ++= •• • Cubic symmetry (space groups Ia̅3d, I4̅3d) • 6.5 Li per formula unit disordered between Td and Oh positions • Flexible Li framework – donor doping to create vacancies
  • 10. Motivation - challenges Janek, et al. Nature Energy, 16141, 2016 Jena et al. ACS Energy Lett. 3, 2775, 2018 Aguesse, et al. ACS Appl. Mater. Interfaces, 9, 2017 Surfaces and interfaces a bottleneck to performance X Degradation issues: • Moisture sensitive • Lithium ‘dendrites’ X Dynamic interfaces X Chemical and structural variation amongst grains, grain boundaries and surfaces of polycrystalline pellets - dependent on processing conditions Need to optimise ion dynamics to improve power density and block degradation
  • 11. Our approach Investigate the local chemical environment in both the electrolyte and Li metal/electrolyte interface in terms of its impact on the Li-ion dynamics and cell degradation 0 20 40 60 80 100 120 140 160 0.00 0.05 0.10 0.15 0.20 0.25 0.30 0.35 0.40 0.45 0.50 C(7 Li) sputter time (s) 6 Li-Ga0.15-LLZO short exchange through-surface dp 1. Quantify ion transfer processes using trace elements (2D, 18O, 6Li) and surface analysis 2. Visualise local chemical environments & correlate to electrochemical performance and degradation R. H. Brugge, unpublished
  • 12. Garnet-type electrolytes - synthesis • Sol-gel synthesis, doping with Ga(III), Al(III) at Li+ site to create V’Li • 10-500 μm grain sizes • Liquid phase sintering (Al2O3-Li2O eutectic) • Thermal treatment in oven coupled to glove box • Dry processing in Ar glove box <0.1 ppm H2O Fracture surfacePellet surface (thermally etched)
  • 13. • Reaction with water • H+/Li+ exchange in the lattice – maintain crystal structure • LiOH and Li2CO3 formation at surface ➢ Shown to be detrimental to densification ➢ Increased interfacial R with electrodes • Ionic transport properties of proton-rich LLZO in a cell setup?? (b) LLTOLLTO Aguesse et al. Adv. Mater. Interfaces 2014 Cheng, ACS Appl. Mater. Interfaces 2015, 7, 17649; Sharafi, J. Mater Chem. A 2017, 5, 13475; Cheng, Phys. Chem. Phys. Chem. 2014, 16, 18294 Degradation – proton/lithium exchange
  • 14. Degradation – proton/lithium exchange Direct relationship between degree of H-Li exchange and degradation of Li mobility: Formation of a H-rich electrolyte in the surface up to 1.2 𝜇m thick. Li metal Brugge et al. Chem. Mater. 30, 3704, 2018 5 10 15 20 25 30 0.0 0.5 1.0 1.5 length(m) H2 O immersion time (minutes) H-Ga0.15-LLZO plateau length H-LLZO LLZO Aim: study the role of H-LLZO on the performance, isolated from surface LiOH and Li2CO3 reaction products. 100 °C 5-30 minsH2O “FIB” SIMS
  • 15. Degradation – proton/lithium exchange Brugge et al. Chem. Mater. 30, 3704, 2018 Bulk Grain boundary Li metal interface 1 10 100 1000 10000 100000 Pristine 15 min 30 min Resistance R increase > 3 orders R increase > 3 orders Li/LLZO/LiDirect relationship between degree of H-Li exchange and degradation of Li mobility: Surfaces and grain boundaries most affected. LLZO Li metal Li metal Spacer Spacer Spring Cell Bottom Cell Cap
  • 16. Dendritic cell failure 10 μm X Formation of dendrites limits the practical use of solid electrolytes with Li metal electrodes • Composition and mechanism of formation remains unclear • Electrochemo-mechanical models • Possible link to defects in bulk and at interface/ non-uniform kinetics • Role of electronic conductivity of electrolyte? Krauskopf, Joule 2019; Swamy, J. Electrochem. Soc 2018; Tian, J. Power Sources 2018; Xie, ACS Appl. Mater. Interfaces 2018
  • 17. Dendritic cell failure F. Pesci et al., J. Mater. Chem A, 2018 • Cell cycling – increasing current density until short circuit reached (at the “critical current density”, CCD) • 60% difference in CCD for same thickness, microstructure, cycling regime Short circuit CCD: Ga-LLZO=0.16 mA/cm2 Al-LLZO=0.1 mA/cm2 0.01 to 0.5 mA/cm2 Step 0.01 mA/cm2 Charge/discharge 30 min OCP 5 min intervals
  • 18. Dendritic cell failure After cycling: intra- and inter-grain features F. Pesci et al., J. Mater. Chem A, 2018
  • 19. Dendritic cell failure – chemical analysis After cycling Before cycling Al, Li- rich Li- rich F. Pesci et al., J. Mater. Chem A, 2018 Al-LLZO Ga-LLZO 10 μm 10 μm 5 m Al Zr La O 5 m 5 m 5 m 5 m 5 m Al Zr La O 5 m 5 m 5 m 5 m Al-LLZO
  • 20. Grain boundaries • Isolate grain and grain boundary transport properties 0 1x105 2x105 3x105 4x105 0.0 -5.0x104 -1.0x105 -1.5x105 -2.0x105 -2.5x105 -3.0x105 Al-LLZO Fit Ga-LLZO Fit Z''(Ohm) Z' (Ohm) Bulk Al-LLZO: 1.2x10-3 S/cm Ga-LLZO: 2.3 x10-3 S/cm Cavallaro et al. work in progress
  • 21. Summary – tools and approach Study of ion-dynamics in materials and their effect on performance and degradation in surfaces, bulk and buried interfaces: • Correlate chemical analysis of garnet electrolytes and their degradation products to ionic transport and cell performance, as applied to: – Li+/H+ exchange processes resulting from moisture degradation • Bulk, grain boundary and interfacial resistance increases as a result – Cycling behaviour: dendritic-driven cell failure with Li metal electrodes • Effect of dopant/local chemistry on propensity for dendrite formation – Further characterization of grain boundaries and e.g. SEI formation and interface properties in Li/LLZO and other systems
  • 22. Outlook Next-generation batteries, a balance of: • discharge capacity • thermal stability • capacity retention and • lifespan • Defects key to transport properties – Vacancies, grain boundaries, dislocations Kim et al. J. Mater. Chem. A, 2019, 7, 2942–2964, Luo et al. Adv. Sci. 2017, 4, 1700104 Next-next-generation? • Hybrid conversion-storage devices: photorechargeable batteries?
  • 23. Thank You • Dr Ainara Aguadero • Dr Andrea Cavallaro • Dr Federico Pesci • Dr Ola Hekselman • Dr Richard Chater • Electroceramic Materials Group • Professor John Kilner • Professor Stephen Skinner EPSRC ICSF “Genesis: garnet electrolytes for new energy storage integrated solutions” EP/R024006/1 EPSRC Supergen Energy Storage Challenge “Next Generation solid state Lithium Batteries” EP/P003532/1