Fully inorganic LLZO-based composite cathodes: the impact of Ga substitution on compatibility with cathode active materials during co-sintering

Christoph Roitzheim , Franziska Hueppe , Yoo Jung Sohn , Yannic Collette , Walter Sebastian Scheld , Doris Sebold , Thomas Demuth , Kerstin Volz , Olivier Guillon , Dina Fattakhova-Rohlfing , Martin Finsterbusch

Energy Materials ›› 2026, Vol. 6 ›› Issue (3) -600028.

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Energy Materials ›› 2026, Vol. 6 ›› Issue (3) -600028. DOI: 10.20517/energymater.2025.174
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Fully inorganic LLZO-based composite cathodes: the impact of Ga substitution on compatibility with cathode active materials during co-sintering
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Abstract

In order to make garnet-based all-solid-state batteries (ASSBs) attractive for industrial applications, their rate capability has to be significantly improved. Recently, cubic Li6.4Ga0.2La3Zr2O12 (LLZO:Ga) was found to have the highest total ionic conductivity of any oxide solid-state electrolyte by far, reaching up to 2 × 10-3 S/cm at room temperature. Since the rate performance of composite cathodes is directly linked to their ionic conductivity, LLZO:Ga is an ideal solid-state electrolyte for high-performance ASSBs. However, careful material selection is required for the fabrication of such ceramic composite cathodes at elevated temperatures in order to avoid incompatibility issues that could lead to low electrochemical performance. We therefore systematically studied the co-sintering behavior of cubic LLZO:Ga in combination with common cathode active materials, including LiCoO2 (LCO), LiNi1/3Mn1/3Co1/3O2 (NCM111), and LiNi0.8Mn0.1Co0.1O2 (NCM811). The analyses were performed using X-ray diffraction, Raman spectroscopy, scanning electron microscopy, and transmission electron microscopy. The experimental conditions were chosen to enable a direct comparison with our previous study on Li6.45La3Zr1.6Ta0.4Al0.05O12 (LLZO:Ta). For the first time, we were thus able to elucidate the impact of different LLZO compositions on material compatibility. While most of the observed secondary phases were similar to those found for LLZO:Ta-based composites, a more severe degradation of the cubic LLZO:Ga structure itself was observed, reducing its conductivity and thus limiting the performance of the final cell. Consequently, the processing window for producing LLZO:Ga-based composite cathodes is even narrower than for LLZO with other dopants, thus requiring careful tailoring and tight control over the processing conditions when manufacturing garnet-based ASSBs.

Keywords

All-solid-state battery / oxide solid-state electrolyte / LLZO:Ga / LCO / NCM111 / NCM811

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Christoph Roitzheim, Franziska Hueppe, Yoo Jung Sohn, Yannic Collette, Walter Sebastian Scheld, Doris Sebold, Thomas Demuth, Kerstin Volz, Olivier Guillon, Dina Fattakhova-Rohlfing, Martin Finsterbusch. Fully inorganic LLZO-based composite cathodes: the impact of Ga substitution on compatibility with cathode active materials during co-sintering. Energy Materials, 2026, 6(3): -600028 DOI:10.20517/energymater.2025.174

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References

[1]

Noh H,Yoon CS.Comparison of the structural and electrochemical properties of layered Li[NixCoyMnz]O2 (x = 1/3, 0.5, 0.6, 0.7, 0.8 and 0.85) cathode material for lithium-ion batteries.J Power Sources2013;233:121-30

[2]

Yao X,Yin J.All-solid-state lithium batteries with inorganic solid electrolytes: Review of fundamental science.Chinese Phys B2016;25:018802

[3]

Sakuda A.Favorable composite electrodes for all-solid-state batteries.J Ceram Soc Jpn2018;126:675-83

[4]

Finsterbusch M,Tsai CL,Latz A.High capacity garnet-based all-solid-state lithium batteries: fabrication and 3D-microstructure resolved modeling.ACS Appl Mater Interfaces2018;10:22329-39

[5]

Janek J.A solid future for battery development.Nat Energy2016;1:16141

[6]

Janek J.Challenges in speeding up solid-state battery development.Nat Energy2023;8:230-40

[7]

Schmaltz T,Wicke T,Neef C.A roadmap for solid-state batteries.Adv Energy Mater2023;13:2301886

[8]

Thangadurai V,Pinzaru D.Garnet-type solid-state fast Li ion conductors for Li batteries: critical review.Chem Soc Rev2014;43:4714-27

[9]

Sand SC,Yildiz B.A critical review on Li-ion transport, chemistry and structure of ceramic-polymer composite electrolytes for solid state batteries.Chem Soc Rev2025;54:178-200

[10]

Xue Z,Xie X.Poly(ethylene oxide)-based electrolytes for lithium-ion batteries.J Mater Chem A2015;3:19218-53

[11]

Li S,Shen L.Progress and perspective of ceramic/polymer composite solid electrolytes for lithium batteries.Adv Sci2020;7:1903088 PMCID:PMC7055568

[12]

Chen L,Li S,Nan C.PEO/garnet composite electrolytes for solid-state lithium batteries: From “ceramic-in-polymer” to “polymer-in-ceramic”.Nano Energy2018;46:176-84

[13]

Roitzheim C,Kuo L.All-solid-state Li batteries with NCM-garnet-based composite cathodes: the impact of NCM composition on material compatibility.ACS Appl Energy Mater2022;5:6913-26

[14]

Murugan R,Weppner W.Fast lithium ion conduction in garnet-type Li7La3Zr2O12.Angew Chem Int Ed2007;46:7778-81

[15]

Buschmann H,Berendts S.Structure and dynamics of the fast lithium ion conductor “Li7La3Zr2O12”.Phys Chem Chem Phys2011;13:19378-92

[16]

Buannic L,López Del Amo J.Dual substitution strategy to enhance Li+ ionic conductivity in Li7La3Zr2O12 solid electrolyte.Chem Mater2017;29:1769-78

[17]

Ren Y,Moy A.Oxide‐based solid‐state batteries: a perspective on composite cathode architecture.Adv Energy Mater2022;13:2201939

[18]

Xiao Y,Bo S,Miara LJ.Understanding interface stability in solid-state batteries.Nat Rev Mater2019;5:105-26

[19]

Ren Y,Shen Y,Nan C.Chemical compatibility between garnet-like solid state electrolyte Li6.75La3Zr1.75Ta0.25O12 and major commercial lithium battery cathode materials.J Materiomics2016;2:256-64

[20]

Demuth T,Walther F.Influence of the sintering temperature on LLZO-NCM cathode composites for solid-state batteries studied by transmission electron microscopy.Matter2023;6:2324-39

[21]

Bauer A,Lobe S.Impact of Ni-Mn-Co-Al-based cathode material composition on the sintering with garnet solid electrolytes for all-solid-state batteries.Chem Mater2023;35:8958-68

[22]

Wakasugi J,Kanamura K.Thermal stability of various cathode materials against Li6.25Al0.25La3Zr2O12 electrolyte.Electrochemistry2017;85:77-81

[23]

Miara LJ,Wang YE.First-principles studies on cation dopants and electrolyte|cathode interphases for lithium garnets.Chem Mater2015;27:4040-7

[24]

Han S,Lee S.A full oxide-based solid-state lithium battery and its unexpected cathode degradation mechanism.ACS Energy Lett2023;8:4794-805

[25]

Han F,Chen C.Interphase engineering enabled all-ceramic lithium battery.Joule2018;2:497-508

[26]

Ohta S,Seki J,Morishita S.All-solid-state lithium ion battery using garnet-type oxide and Li3BO3 solid electrolytes fabricated by screen-printing.J Power Sources2013;238:53-6

[27]

Liu T,Shen Y,Lin Y.Achieving high capacity in bulk-type solid-state lithium ion battery based on Li6.75La3Zr1.75Ta0.25O12 electrolyte: interfacial resistance.J Power Sources2016;324:349-57

[28]

Ihrig M,Laptev AM.Study of LiCoO2/Li7La3Zr2O12:Ta interface degradation in all-solid-state lithium batteries.ACS Appl Mater Interfaces2022;14:11288-99

[29]

Zhao H,Mao P,Zhou W.Tape-casting fabrication techniques for garnet-based membranes in solid-state lithium-metal batteries: a comprehensive review.ACS Appl Mater Interfaces2024;16:68772-93

[30]

Weinmann S,Quincke L.Stabilizing interfaces of all‐ceramic composite cathodes for Li‐garnet batteries.Adv Energy Mater2025;15:2502280

[31]

Li J,Weng M.Structural origin of the high-voltage instability of lithium cobalt oxide.Nat Nanotechnol2021;16:599-605

[32]

Oh P,Choi JH.New ion substitution method to enhance electrochemical reversibility of Co‐rich layered materials for Li-ion batteries.Adv Energy Mater2022;13:2202237

[33]

Yin X,Hao L.A high-energy all-solid-state lithium metal battery with "single-crystal" lithium-rich layered oxides.Chem Commun2023;59:639-42

[34]

Wang D,Luo J.Mitigating the interfacial degradation in cathodes for high-performance oxide-based solid-state lithium batteries.ACS Appl Mater Interfaces2019;11:4954-61

[35]

Hayashi N.Reaction suppression between a high-Ni cathode material (NMC622) and Li7La3Zr2O12 on co-sintering for manufacturing bulk-type all-solid-state batteries: a new method and its mechanism.Adv Sci2025;12:e12219 PMCID:PMC12631915

[36]

Ma Z,Salazar KA,Kong L.Thermal stability and electrochemical behavior of commercial polycrystalline and single-crystalline cathodes integrated with cubic Li6.4La3Zr1.4Ta0.6O12 for all-solid-state lithium batteries.J Mater Chem A2025;13:26647-59

[37]

Kim Y,Hunt A.Avoiding CO2 Improves thermal stability at the interface of Li7La3Zr2O12 electrolyte with layered oxide cathodes.Adv Energy Mater2022;12:2102741

[38]

Schwab C,Mann M.Towards economic processing of high performance garnets - case study on zero Li excess Ga-substituted LLZO.J Mater Chem A2023;11:5670-80

[39]

Qin S,Jiang Y,Hu Z.Growth of self-textured Ga3+-substituted Li7La3Zr2O12 ceramics by solid state reaction and their significant enhancement in ionic conductivity.Appl Phys Lett2018;112:113901

[40]

Degen T,Bron E,Nénert G.The HighScore suite.Powder Diffr2014;29 Suppl:S13-8

[41]

Bruker AXS. Topas V4: General profile and structure analysis software for powder diffraction data. Karlsruhe, Germany; 2008.

[42]

Larraz G,Sanjuán ML.Cubic phases of garnet-type Li7La3Zr2O12: the role of hydration.J Mater Chem A2013;1:11419

[43]

Matsui M,Takahashi K.Phase transformation of the garnet structured lithium ion conductor: Li7La3Zr2O12.Solid State Ion2014;262:155-9

[44]

Choi Y.Effects of cation mixing on the electrochemical lithium intercalation reaction into porous Li1-δNi1-yCoyO2 electrodes.Solid State Ion1996;89:43-52

[45]

Hua W,Knapp M.(De)Lithiation mechanism of hierarchically layered LiNi1/3Co1/3Mn1/3O2 cathodes during high-voltage cycling.J Electrochem Soc2018;166:A5025-32

[46]

Sun G,Yang W.The effect of cation mixing controlled by thermal treatment duration on the electrochemical stability of lithium transition-metal oxides.Phys Chem Chem Phys2017;19:29886-94

[47]

Scheld WS,Schwab C.Ga-ion migration during co-sintering of heterogeneous Ta- and Ga-substituted LLZO solid-state electrolytes.J Eur Ceram Soc2025;45:116936

[48]

Gross T.Raman diagnostics of LiCoO2 electrodes for lithium-ion batteries.J Power Sources2014;256:220-5

[49]

Yuan K,Xu C.Fabrication of dense and porous Li2ZrO3 nanofibers with electrospinning method.Appl Phys A2018;124:403

[50]

Tietz F,Gerhards M,Mariotto G.Synthesis and Raman micro-spectroscopy investigation of Li7La3Zr2O12.Solid State Ion2013;230:77-82

[51]

Flores E,Aschauer U.Cation ordering and redox chemistry of layered Ni-rich LixNi1-2yCoyMnyO2: an operando Raman spectroscopy study.Chem Mater2019;32:186-94

[52]

Gnezdilov V,Yeremenko AV.Low-temperature mixed spin state of Co3+ in LaCoO3 evidenced from Jahn-Teller lattice distortions.Low Temp Phys2006;32:162-8

[53]

Abrashev MV,Iliev MN.Comparative study of optical phonons in the rhombohedrally distorted perovskitesLaAlO3 and LaMnO3.Phys Rev B1999;59:4146-53

[54]

Chaban N,Pignard S.Phonon Raman scattering of perovskite LaNiO3 thin films.Appl Phys Lett2010;97:031915

[55]

Ren Y.All solid-state Li/LLZO/LCO battery enabled by alumina interfacial coating.J Electrochem Soc2022;169:040529

[56]

Park K,Jung J.Electrochemical nature of the cathode interface for a solid-state lithium-ion battery: interface between LiCoO2 and garnet-Li7La3Zr2O12.Chem Mater2016;28:8051-9

[57]

Sun W,Yang J.Multi-element synergistic doping enhances high-voltage performance of LiCoO2 via stabilizing internal and surface structures.Electrochim Acta2024;504:144927

[58]

Jamil S,Li C.Significance of gallium doping for high Ni, low Co/Mn layered oxide cathode material.Chem Eng J2022;441:135821

[59]

Vardar G,Lu Q.Structure, chemistry, and charge transfer resistance of the interface between Li7La3Zr2O12 electrolyte and LiCoO2 cathode.Chem Mater2018;30:6259-76

[60]

Bitzer M,Uhlenbruck S.Sol-gel synthesis of thin solid Li7La3Zr2O12 electrolyte films for Li-ion batteries.Thin Solid Films2016;615:128-34

[61]

Rebohle L,Skorupa W.A review of thermal processing in the subsecond range: semiconductors and beyond.Semicond Sci Technol2016;31:103001

[62]

Ping W,Wang R.Printable, high-performance solid-state electrolyte films.Sci Adv2020;6:eabc8641 PMCID:PMC7673806

[63]

Ramos E,Roehling J.CO2 laser sintering of garnet-type solid-state electrolytes.ACS Energy Lett2022;7:3392-400

[64]

Acord KA,Scipioni Bertoli U.Morphology, microstructure, and phase states in selective laser sintered lithium ion battery cathodes.J Mater Proc Technol2021;288:116827

[65]

Zhu H.Emerging applications of spark plasma sintering in all solid-state lithium-ion batteries and beyond.J Power Sources2018;391:10-25

[66]

Li L,Mitchell R,Sinclair DC.Aqueous cold sintering of Li-based compounds.ACS Appl Mater Interfaces2023;15:20228-39 PMCID:PMC10141261

[67]

Waetzig K,Kusnezoff M.Reduced sintering temperatures of Li+ conductive Li1.3Al0.3Ti1.7(PO4)3 ceramics.Crystals2020;10:408

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