Home > Publications database > Low temperature sintering of fully inorganic all-solid-state batteries – Impact of interfaces on full cell performance > print |
001 | 891126 | ||
005 | 20240711085558.0 | ||
024 | 7 | _ | |a 10.1016/j.jpowsour.2020.228905 |2 doi |
024 | 7 | _ | |a 0378-7753 |2 ISSN |
024 | 7 | _ | |a 1873-2755 |2 ISSN |
024 | 7 | _ | |a 2128/27441 |2 Handle |
024 | 7 | _ | |a altmetric:90591434 |2 altmetric |
024 | 7 | _ | |a WOS:000597272900007 |2 WOS |
037 | _ | _ | |a FZJ-2021-01378 |
082 | _ | _ | |a 620 |
100 | 1 | _ | |a Ihrig, Martin |0 P:(DE-Juel1)174298 |b 0 |e Corresponding author |
245 | _ | _ | |a Low temperature sintering of fully inorganic all-solid-state batteries – Impact of interfaces on full cell performance |
260 | _ | _ | |a New York, NY [u.a.] |c 2021 |b Elsevier |
336 | 7 | _ | |a article |2 DRIVER |
336 | 7 | _ | |a Output Types/Journal article |2 DataCite |
336 | 7 | _ | |a Journal Article |b journal |m journal |0 PUB:(DE-HGF)16 |s 1615995639_7844 |2 PUB:(DE-HGF) |
336 | 7 | _ | |a ARTICLE |2 BibTeX |
336 | 7 | _ | |a JOURNAL_ARTICLE |2 ORCID |
336 | 7 | _ | |a Journal Article |0 0 |2 EndNote |
520 | _ | _ | |a One of the necessary prerequisites to advance the electrochemical performance of Li7La3Zr2O12 (LLZ) based all-solid-state lithium batteries is the manufacturing of dense composite cathodes from cathode active material (CAM) and the LLZ ceramic solid electrolyte. However, free co-sintering of LLZ and CAM mixtures requires temperatures above 1000 °C which often leads to decomposition and secondary phase formation, especially for high energy CAMs. In our study we present a completely dry processing route which is fast, free of any sintering additives and coatings and suitable to fabricate dense mixed cathodes, pure LLZ separators and multilayers of the two. Through application of high mechanical pressure during Field-Assisted Sintering we were able to reduce the sintering temperature down to 675–750 °C with dwell times as low as 10 min, while still obtaining 95% theoretical density for LCO/LLZ mixtures. The low sintering temperature is suitable for high energy CAMs, but leads to a significant effect of surface impurities, especially from powder handling in air, and affects the crystallinity of the CAM/LLZ interface. In the present paper we investigate the impact of resulting interfaces on the ionic conductivity, the interfacial impedance and the cycling stability of produced cells and propose the optimization strategy. |
536 | _ | _ | |a 122 - Elektrochemische Energiespeicherung (POF4-122) |0 G:(DE-HGF)POF4-122 |c POF4-122 |x 0 |f POF IV |
588 | _ | _ | |a Dataset connected to CrossRef |
700 | 1 | _ | |a Finsterbusch, Martin |0 P:(DE-Juel1)145623 |b 1 |
700 | 1 | _ | |a Tsai, Chih-Long |0 P:(DE-Juel1)156244 |b 2 |u fzj |
700 | 1 | _ | |a Laptev, Alexander |0 P:(DE-Juel1)164315 |b 3 |u fzj |
700 | 1 | _ | |a Tu, Chia-hao |0 0000-0002-1977-2794 |b 4 |
700 | 1 | _ | |a Bram, Martin |0 P:(DE-Juel1)129591 |b 5 |u fzj |
700 | 1 | _ | |a Sohn, Yoo Jung |0 P:(DE-Juel1)159368 |b 6 |u fzj |
700 | 1 | _ | |a Ye, Ruijie |0 P:(DE-Juel1)176118 |b 7 |
700 | 1 | _ | |a Sevinc, Serkan |0 P:(DE-Juel1)176429 |b 8 |u fzj |
700 | 1 | _ | |a Lin, Shih-kang |0 P:(DE-HGF)0 |b 9 |
700 | 1 | _ | |a Fattakhova-Rohlfing, Dina |0 P:(DE-Juel1)171780 |b 10 |
700 | 1 | _ | |a Guillon, Olivier |0 P:(DE-Juel1)161591 |b 11 |u fzj |
773 | _ | _ | |a 10.1016/j.jpowsour.2020.228905 |g Vol. 482, p. 228905 - |0 PERI:(DE-600)1491915-1 |p 228905 |t Journal of power sources |v 482 |y 2021 |x 0378-7753 |
856 | 4 | _ | |u https://juser.fz-juelich.de/record/891126/files/Ihrig_Low_temp_sintering-1.pdf |y Restricted |
856 | 4 | _ | |y Published on 2020-09-17. Available in OpenAccess from 2022-09-17. |u https://juser.fz-juelich.de/record/891126/files/Manuscript_Final_AL_R2_wo_highlights-2.pdf |
909 | C | O | |o oai:juser.fz-juelich.de:891126 |p openaire |p open_access |p VDB |p driver |p dnbdelivery |
910 | 1 | _ | |a Forschungszentrum Jülich |0 I:(DE-588b)5008462-8 |k FZJ |b 0 |6 P:(DE-Juel1)174298 |
910 | 1 | _ | |a Forschungszentrum Jülich |0 I:(DE-588b)5008462-8 |k FZJ |b 1 |6 P:(DE-Juel1)145623 |
910 | 1 | _ | |a Forschungszentrum Jülich |0 I:(DE-588b)5008462-8 |k FZJ |b 2 |6 P:(DE-Juel1)156244 |
910 | 1 | _ | |a Forschungszentrum Jülich |0 I:(DE-588b)5008462-8 |k FZJ |b 3 |6 P:(DE-Juel1)164315 |
910 | 1 | _ | |a Forschungszentrum Jülich |0 I:(DE-588b)5008462-8 |k FZJ |b 5 |6 P:(DE-Juel1)129591 |
910 | 1 | _ | |a Forschungszentrum Jülich |0 I:(DE-588b)5008462-8 |k FZJ |b 6 |6 P:(DE-Juel1)159368 |
910 | 1 | _ | |a Forschungszentrum Jülich |0 I:(DE-588b)5008462-8 |k FZJ |b 7 |6 P:(DE-Juel1)176118 |
910 | 1 | _ | |a Forschungszentrum Jülich |0 I:(DE-588b)5008462-8 |k FZJ |b 8 |6 P:(DE-Juel1)176429 |
910 | 1 | _ | |a Forschungszentrum Jülich |0 I:(DE-588b)5008462-8 |k FZJ |b 10 |6 P:(DE-Juel1)171780 |
910 | 1 | _ | |a Forschungszentrum Jülich |0 I:(DE-588b)5008462-8 |k FZJ |b 11 |6 P:(DE-Juel1)161591 |
913 | 0 | _ | |a DE-HGF |b Energie |l Speicher und vernetzte Infrastrukturen |1 G:(DE-HGF)POF3-130 |0 G:(DE-HGF)POF3-131 |3 G:(DE-HGF)POF3 |2 G:(DE-HGF)POF3-100 |4 G:(DE-HGF)POF |v Electrochemical Storage |x 0 |
913 | 1 | _ | |a DE-HGF |b Forschungsbereich Energie |l Materialien und Technologien für die Energiewende (MTET) |1 G:(DE-HGF)POF4-120 |0 G:(DE-HGF)POF4-122 |3 G:(DE-HGF)POF4 |2 G:(DE-HGF)POF4-100 |4 G:(DE-HGF)POF |v Elektrochemische Energiespeicherung |x 0 |
914 | 1 | _ | |y 2021 |
915 | _ | _ | |a DBCoverage |0 StatID:(DE-HGF)0200 |2 StatID |b SCOPUS |d 2021-01-28 |
915 | _ | _ | |a DBCoverage |0 StatID:(DE-HGF)0160 |2 StatID |b Essential Science Indicators |d 2021-01-28 |
915 | _ | _ | |a DBCoverage |0 StatID:(DE-HGF)1160 |2 StatID |b Current Contents - Engineering, Computing and Technology |d 2021-01-28 |
915 | _ | _ | |a DBCoverage |0 StatID:(DE-HGF)0600 |2 StatID |b Ebsco Academic Search |d 2021-01-28 |
915 | _ | _ | |a Creative Commons Attribution-NonCommercial-NoDerivs CC BY-NC-ND 4.0 |0 LIC:(DE-HGF)CCBYNCND4 |2 HGFVOC |
915 | _ | _ | |a Embargoed OpenAccess |0 StatID:(DE-HGF)0530 |2 StatID |
915 | _ | _ | |a JCR |0 StatID:(DE-HGF)0100 |2 StatID |b J POWER SOURCES : 2019 |d 2021-01-28 |
915 | _ | _ | |a IF >= 5 |0 StatID:(DE-HGF)9905 |2 StatID |b J POWER SOURCES : 2019 |d 2021-01-28 |
915 | _ | _ | |a WoS |0 StatID:(DE-HGF)0113 |2 StatID |b Science Citation Index Expanded |d 2021-01-28 |
915 | _ | _ | |a DBCoverage |0 StatID:(DE-HGF)0150 |2 StatID |b Web of Science Core Collection |d 2021-01-28 |
915 | _ | _ | |a Peer Review |0 StatID:(DE-HGF)0030 |2 StatID |b ASC |d 2021-01-28 |
915 | _ | _ | |a DBCoverage |0 StatID:(DE-HGF)1150 |2 StatID |b Current Contents - Physical, Chemical and Earth Sciences |d 2021-01-28 |
915 | _ | _ | |a DBCoverage |0 StatID:(DE-HGF)0300 |2 StatID |b Medline |d 2021-01-28 |
915 | _ | _ | |a DBCoverage |0 StatID:(DE-HGF)0199 |2 StatID |b Clarivate Analytics Master Journal List |d 2021-01-28 |
920 | _ | _ | |l yes |
920 | 1 | _ | |0 I:(DE-Juel1)IEK-1-20101013 |k IEK-1 |l Werkstoffsynthese und Herstellungsverfahren |x 0 |
920 | 1 | _ | |0 I:(DE-82)080011_20140620 |k JARA-ENERGY |l JARA-ENERGY |x 1 |
980 | 1 | _ | |a FullTexts |
980 | _ | _ | |a journal |
980 | _ | _ | |a VDB |
980 | _ | _ | |a UNRESTRICTED |
980 | _ | _ | |a I:(DE-Juel1)IEK-1-20101013 |
980 | _ | _ | |a I:(DE-82)080011_20140620 |
981 | _ | _ | |a I:(DE-Juel1)IMD-2-20101013 |
Library | Collection | CLSMajor | CLSMinor | Language | Author |
---|