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On the Durability of Protective Titania Coatings on High‐Voltage Spinel Cathodes

Østli, Elise R. (author)
Department of Materials Science and Engineering NTNU Norwegian University of Science and Technology 7491 Trondheim Norway
Ebadi, Mahsa (author)
Department of Materials Science and Engineering NTNU Norwegian University of Science and Technology 7491 Trondheim Norway
Tesfamhret, Yonas (author)
Uppsala universitet,Strukturkemi
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Mahmoodinia, Mehdi (author)
Department of Chemical Engineering NTNU Norwegian University of Science and Technology 7491 Trondheim Norway
Lacey, Matthew J. (author)
Scania CV AB 151 32 Södertälje Sweden
Brandell, Daniel, 1975- (author)
Uppsala universitet,Strukturkemi
Svensson, Ann Mari (author)
Department of Materials Science and Engineering NTNU Norwegian University of Science and Technology 7491 Trondheim Norway
Selbach, Sverre M. (author)
Department of Materials Science and Engineering NTNU Norwegian University of Science and Technology 7491 Trondheim Norway
Wagner, Nils P. (author)
Department of Materials Science and Engineering NTNU Norwegian University of Science and Technology 7491 Trondheim Norway;SINTEF Industry 7491 Trondheim Norway
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 (creator_code:org_t)
2022-05-12
2022
English.
In: ChemSusChem. - : John Wiley & Sons. - 1864-5631 .- 1864-564X. ; 15:12
  • Journal article (peer-reviewed)
Abstract Subject headings
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  • TiO2-coating of LiNi0.5-xMn1.5+xO4 (LNMO) by atomic layer deposition (ALD) has been studied as a strategy to stabilize the cathode/electrolyte interface and mitigate transition metal (TM) ion dissolution. The TiO2 coatings were found to be uniform, with thicknesses estimated to 0.2, 0.3, and 0.6 nm for the LNMO powders exposed to 5, 10, and 20 ALD cycles, respectively. While electrochemical characterization in half-cells revealed little to no improvement in the capacity retention neither at 20 nor at 50 °C, improved capacity retention and coulombic efficiencies were demonstrated for the TiO2-coated LNMO in LNMO||graphite full-cells at 20 °C. This improvement in cycling stability could partly be attributed to thinner cathode electrolyte interphase on the TiO2-coated samples. Additionally, energy-dispersive X-ray spectroscopy revealed a thinner solid electrolyte interphase on the graphite electrode cycled against TiO2-coated LNMO, indicating retardation of TM dissolution by the TiO2-coating.

Subject headings

NATURVETENSKAP  -- Kemi -- Materialkemi (hsv//swe)
NATURAL SCIENCES  -- Chemical Sciences -- Materials Chemistry (hsv//eng)

Keyword

Kemi med inriktning mot materialkemi
Chemistry with specialization in Materials Chemistry
Social Pharmacy
Samhällsfarmaci

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