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  Li iontronics in single-crystalline T-Nb2O5 thin films with vertical ionic transport channels

Han, H., Jacquet, Q., Jiang, Z., Sayed, F. N., Jeon, J.-C., Sharma, A., et al. (2023). Li iontronics in single-crystalline T-Nb2O5 thin films with vertical ionic transport channels. Nature Materials, 22, 1128-1135. doi:10.1038/s41563-023-01612-2.

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Han, Hyeon1, Author                 
Jacquet, Quentin2, Author
Jiang, Zhen2, Author
Sayed, Farheen N.2, Author
Jeon, Jae-Chun1, Author                 
Sharma, Arpit1, Author           
Schankler, Aaron M.2, Author
Kakekhani, Arvin2, Author
Meyerheim, Holger L.3, Author           
Park, Jucheol2, Author
Nam, Sang Yeol2, Author
Griffith, Kent J.2, Author
Simonelli, Laura2, Author
Rappe, Andrew M.2, Author
Grey, Clare P.2, Author
Parkin, Stuart S. P.1, Author                 
Affiliations:
1Nano-Systems from Ions, Spins and Electrons, Max Planck Institute of Microstructure Physics, Max Planck Society, ou_3287476              
2External Organizations, ou_persistent22              
3Department of Synthetic Materials and Functional Devices (SMFD), Max Planck Institute of Microstructure Physics, Max Planck Society, ou_3316580              

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 Abstract: The niobium oxide polymorph T-Nb2O5 has been extensively investigated in its bulk form especially for applications in fast-charging batteries and electrochemical (pseudo)capacitors. Its crystal structure, which has two-dimensional (2D) layers with very low steric hindrance, allows for fast Li-ion migration. However, since its discovery in 1941, the growth of single-crystalline thin films and its electronic applications have not yet been realized, probably due to its large orthorhombic unit cell along with the existence of many polymorphs. Here we demonstrate the epitaxial growth of single-crystalline T-Nb2O5 thin films, critically with the ionic transport channels oriented perpendicular to the film’s surface. These vertical 2D channels enable fast Li-ion migration, which we show gives rise to a colossal insulator–metal transition, where the resistivity drops by 11 orders of magnitude due to the population of the initially empty Nb 4d0 states by electrons. Moreover, we reveal multiple unexplored phase transitions with distinct crystal and electronic structures over a wide range of Li-ion concentrations by comprehensive in situ experiments and theoretical calculations, which allow for the reversible and repeatable manipulation of these phases and their distinct electronic properties. This work paves the way for the exploration of novel thin films with ionic channels and their potential applications.

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 Dates: 2023-07-272023-09
 Publication Status: Issued
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 Identifiers: DOI: 10.1038/s41563-023-01612-2
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Title: Nature Materials
  Abbreviation : Nat. Mater.
Source Genre: Journal
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Publ. Info: London, UK : Nature Pub. Group
Pages: - Volume / Issue: 22 Sequence Number: - Start / End Page: 1128 - 1135 Identifier: ISSN: 1476-1122
CoNE: https://pure.mpg.de/cone/journals/resource/111054835734000