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Localized lithium plating under mild cycling conditions in high-energy lithium-ion batteries
KTH, School of Engineering Sciences in Chemistry, Biotechnology and Health (CBH), Chemical Engineering, Applied Electrochemistry.ORCID iD: 0000-0003-1321-6639
KTH, School of Engineering Sciences in Chemistry, Biotechnology and Health (CBH), Chemistry, Applied Physical Chemistry. KTH, School of Chemical Science and Engineering (CHE), Centres, Industrial NMR Centre.ORCID iD: 0000-0001-5196-8706
KTH, School of Engineering Sciences in Chemistry, Biotechnology and Health (CBH), Chemical Engineering, Applied Electrochemistry.ORCID iD: 0000-0001-9627-1902
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2023 (English)In: Journal of Power Sources, ISSN 0378-7753, E-ISSN 1873-2755, Vol. 573, p. 233118-, article id 233118Article in journal (Refereed) Published
Abstract [en]

Conditions such as the temperature and pressure experienced by lithium-ion battery components are dependent oncell geometry and can vary widely within a large cell. The resulting uneven degradation is challenging to study at thefull cell level but can be revealed upon disassembly and post mortem analysis. In this work, we report localizedlithium plating in automotive-grade, prismatic lithium-ion cells, also under cycling conditions generally consideredto be mild (e.g., 5–65 %SOC, 23 ◦C, 0.5C cycle rate). Dead lithium content is quantified using 7Li nuclear magneticresonance spectroscopy in both electrode and separator samples, corresponding to substantial capacity fade(26–46%) of the full cells. Severe lithium plating is typically initiated in regions near the positive tab, in which boththe separators and negative electrodes are ultimately deactivated. High pressure arises during cycling, and wepropose a deactivation mechanism based on high local stress due to electrode expansion and external constraint.Further, we develop a model to demonstrate that component deactivation can result in lithium plating even undermild cycling conditions. Notably, components harvested from regions with no detected lithium plating maintainedadequate electrochemical performance.

Place, publisher, year, edition, pages
Elsevier, 2023. Vol. 573, p. 233118-, article id 233118
National Category
Other Chemical Engineering
Identifiers
URN: urn:nbn:se:kth:diva-326604DOI: 10.1016/j.jpowsour.2023.233118ISI: 000999120900001Scopus ID: 2-s2.0-85154565447OAI: oai:DiVA.org:kth-326604DiVA, id: diva2:1755171
Note

QC 20230522

Available from: 2023-05-05 Created: 2023-05-05 Last updated: 2023-07-06Bibliographically approved
In thesis
1. Tools for characterizing performance degradation in lithium-ion batteries
Open this publication in new window or tab >>Tools for characterizing performance degradation in lithium-ion batteries
2023 (English)Doctoral thesis, comprehensive summary (Other academic)
Abstract [en]

Lithium-ion batteries have enabled vast societal changes, ranging in scale from the adoption of personal electronics to electromobility and grid-scale, renewable energy storage. However, all applications face performance fade over time, observed as losses of battery capacity and power. This gradual degradation is most often due to electrochemical aging processes inside the cell, including phenomena causing a loss of cyclable lithium (e.g., lithium plating, growth of the solid­‑electrolyte interphase or SEI), a loss of active material (e.g., particle cracking), and/or a loss of ionic or electronic conductivity. In the compiled works, many individual batteries have been aged and analyzed to better understand the conditions contributing to aging in different cell designs. The cells studied include lab-built pouch cells, commercial cylindrical cells (with electrodes LiNixMnyCo1‑x‑yO2‑LiMn2O4/C6 and LiNixCoyAl1‑x‑yO2/C6‑SiOx), and larger automotive-grade prismatic cells (LiNixMnyCo1‑x‑yO2/C6).

Complementary in situ and post mortem methods are developed, with relevance for both battery research and battery control systems. Excellent characterization can often be achieved by a combination of differential voltage and incremental capacity analyses. Obtained from a simple, slow cycle, the derivatives of the voltage profile reveal many features that can be tracked over aging. This thesis particularly develops these techniques for blended electrodes, deconvoluting the aging of individual components. Dynamic performance is resolved with a novel polarization factor, impedance spectroscopy, and tools based on current pulses/interruptions. Finally, a protocol based on nuclear magnetic resonance spectroscopy is developed, enabling fast and direct quantification of lithium plating and SEI on harvested battery components. With such tools, we can improve how batteries are used and monitored, paving the way for efficient research and safer, more reliable batteries.

Abstract [sv]

Litiumjonbatterier har haft en stor betydelse för samhällsutvecklingen då de möjliggjort allt från bärbar elektronik till elektromobilitet och balansering av elnätet. Tyvärr tappar batterier prestanda över tid, både genom försämrad kapacitet och effekt. Den gradvisa försämringen beror främst på interna elektrokemiska processer, varav förluster av cyklingsbart litium genom plätering av litiummetall eller tillväxt av deponerade skikt av nedbrytningsmaterial, så kallat SEI-skikt, är typiska. Andra mekanismer är degradering av de elektrokemiskt aktiva materialen och/eller förluster i ledningsförmåga. Avhandlingen behandlar ett stort antal battericeller som åldrats och därefter analyserats elektrokemiskt både under och efter cyklingen. Syftet har varit att förbättra förståelsen av degradering av olika batterityper som funktion av hur de har använts. I arbetet ingår labbceller såväl som kommersiellt tillgängliga cylindriska och prismatiska celler med nickelrik cellkemi ämnade för fordons-tillämpningar.

Kompletterande in situ och post mortem metoder har utvecklas med relevans såväl för forskning som för kontrollsystem för batterier. Utförlig identifiering av åldringsprocesser är möjlig med en kombination av differentiella spännings- och kapacitetsanalyser. Derivatan av en långsam upp- eller urladdningscykel ger nyttig information om åldrings-processerna som pågår. Arbetet i den här avhandlingen syftar till att förbättra metoderna särskilt gällande elektroder med fler än en aktiv komponent. Dynamiska driftegenskaper påvisades med mätningar av polarisering och impedans, samt strömpulsmetoder. Slutligen har en metodik utvecklats för att kvantitativt bestämma förekomsten av litiumplätering och SEI i post mortem analys med kärnmagnetisk resonansspektroskopi. Med dessa metoder kan vi förbättra kontrollen av batterier för att förlänga deras livslängd, vilket gynnar såväl fortsatt forskning som en säkrare och mer tillförlitlig användning av batterier i framtiden.

Place, publisher, year, edition, pages
KTH Royal Institute of Technology, 2023. p. 66
Series
TRITA-CBH-FOU ; 2023:21
National Category
Other Chemical Engineering
Research subject
Chemical Engineering
Identifiers
urn:nbn:se:kth:diva-326611 (URN)978-91-8040-577-5 (ISBN)
Public defence
2023-06-09, K1, Teknikringen 56, via Zoom: https://kth-se.zoom.us/meeting/register/u5Etce6sqTstE9Y4nbFlbiRT1GFpb5apYS_f, Stockholm, 10:00 (English)
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Note

QC 2023-05-11

Available from: 2023-05-11 Created: 2023-05-11 Last updated: 2023-05-26Bibliographically approved

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Smith, Alexander J.Fang, YuanEkström, HenrikSvens, PontusLindbergh, GöranFuro, IstvanLindström, Rakel Wreland

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