Literature DB >> 33284622

Evidence for a Solid-Electrolyte Inductive Effect in the Superionic Conductor Li10Ge1-xSnxP2S12.

Sean P Culver1,2, Alexander G Squires3,4, Nicolò Minafra5, Callum W F Armstrong3, Thorben Krauskopf1,2, Felix Böcher1,2, Cheng Li6, Benjamin J Morgan3,4, Wolfgang G Zeier5.   

Abstract

Strategies to enhance ionic conductivities in solid electrolytes typically focus on the effects of modifying their crystal structures or of tuning mobile-ion stoichiometries. A less-explored approach is to modulate the chemical bonding interactions within a material to promote fast lithium-ion diffusion. Recently, the idea of a solid-electrolyte inductive effect has been proposed, whereby changes in bonding within the solid-electrolyte host framework modify the potential energy landscape for the mobile ions, resulting in an enhanced ionic conductivity. Direct evidence for a solid-electrolyte inductive effect, however, is lacking-in part because of the challenge of quantifying changes in local bonding interactions within a solid-electrolyte host framework. Here, we consider the evidence for a solid-electrolyte inductive effect in the archetypal superionic lithium-ion conductor Li10Ge1-xSnxP2S12. Substituting Ge for Sn weakens the {Ge,Sn}-S bonding interactions and increases the charge density associated with the S2- ions. This charge redistribution modifies the Li+ substructure causing Li+ ions to bind more strongly to the host framework S2- anions, which in turn modulates the Li+ ion potential energy surface, increasing local barriers for Li+ ion diffusion. Each of these effects is consistent with the predictions of the solid-electrolyte inductive effect model. Density functional theory calculations predict that this inductive effect occurs even in the absence of changes to the host framework geometry due to GeSn substitution. These results provide direct evidence in support of a measurable solid-electrolyte inductive effect and demonstrate its application as a practical strategy for tuning ionic conductivities in superionic lithium-ion conductors.

Entities:  

Year:  2020        PMID: 33284622      PMCID: PMC8016198          DOI: 10.1021/jacs.0c10735

Source DB:  PubMed          Journal:  J Am Chem Soc        ISSN: 0002-7863            Impact factor:   15.419


  28 in total

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Journal:  Phys Rev B Condens Matter       Date:  1996-10-15

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Journal:  Phys Rev B Condens Matter       Date:  1994-12-15

4.  Competing Structural Influences in the Li Superionic Conducting Argyrodites Li6PS5- xSe xBr (0 ≤ x ≤ 1) upon Se Substitution.

Authors:  Tim Bernges; Sean P Culver; Nicolò Minafra; Raimund Koerver; Wolfgang G Zeier
Journal:  Inorg Chem       Date:  2018-10-22       Impact factor: 5.165

5.  Electronegativity Seen as the Ground-State Average Valence Electron Binding Energy.

Authors:  Martin Rahm; Tao Zeng; Roald Hoffmann
Journal:  J Am Chem Soc       Date:  2018-12-17       Impact factor: 15.419

6.  Design and preparation of materials for advanced electrochemical storage.

Authors:  Brent C Melot; J-M Tarascon
Journal:  Acc Chem Res       Date:  2013-01-02       Impact factor: 22.384

7.  New Family of Argyrodite Thioantimonate Lithium Superionic Conductors.

Authors:  Laidong Zhou; Abdeljalil Assoud; Qiang Zhang; Xiaohan Wu; Linda F Nazar
Journal:  J Am Chem Soc       Date:  2019-11-19       Impact factor: 15.419

8.  Li10SnP2S12: an affordable lithium superionic conductor.

Authors:  Philipp Bron; Sebastian Johansson; Klaus Zick; Jörn Schmedt auf der Günne; Stefanie Dehnen; Bernhard Roling
Journal:  J Am Chem Soc       Date:  2013-10-09       Impact factor: 15.419

9.  LOBSTER: A tool to extract chemical bonding from plane-wave based DFT.

Authors:  Stefan Maintz; Volker L Deringer; Andrei L Tchougréeff; Richard Dronskowski
Journal:  J Comput Chem       Date:  2016-02-24       Impact factor: 3.376

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Authors:  Ashfia Huq; Melanie Kirkham; Peter F Peterson; Jason P Hodges; Pamela S Whitfield; Katharine Page; Thomas Hűgle; Erik B Iverson; Andre Parizzi; George Rennich
Journal:  J Appl Crystallogr       Date:  2019-10-01       Impact factor: 3.304

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  6 in total

1.  Evidence for a Solid-Electrolyte Inductive Effect in the Superionic Conductor Li10Ge1-xSnxP2S12.

Authors:  Sean P Culver; Alexander G Squires; Nicolò Minafra; Callum W F Armstrong; Thorben Krauskopf; Felix Böcher; Cheng Li; Benjamin J Morgan; Wolfgang G Zeier
Journal:  J Am Chem Soc       Date:  2020-12-07       Impact factor: 15.419

2.  Mechanistic Origin of Superionic Lithium Diffusion in Anion-Disordered Li6PS5 X Argyrodites.

Authors:  Benjamin J Morgan
Journal:  Chem Mater       Date:  2021-03-03       Impact factor: 9.811

3.  Understanding fast-ion conduction in solid electrolytes.

Authors:  Benjamin J Morgan
Journal:  Philos Trans A Math Phys Eng Sci       Date:  2021-10-11       Impact factor: 4.226

4.  Paradigms of frustration in superionic solid electrolytes.

Authors:  Brandon C Wood; Joel B Varley; Kyoung E Kweon; Patrick Shea; Alex T Hall; Andrew Grieder; Michaele Ward; Vincent P Aguirre; Dylan Rigling; Eduardoe Lopez Ventura; Chimara Stancill; Nicole Adelstein
Journal:  Philos Trans A Math Phys Eng Sci       Date:  2021-10-11       Impact factor: 4.226

5.  Fundamental investigations on the sodium-ion transport properties of mixed polyanion solid-state battery electrolytes.

Authors:  Zeyu Deng; Tara P Mishra; Eunike Mahayoni; Qianli Ma; Aaron Jue Kang Tieu; Olivier Guillon; Jean-Noël Chotard; Vincent Seznec; Anthony K Cheetham; Christian Masquelier; Gopalakrishnan Sai Gautam; Pieremanuele Canepa
Journal:  Nat Commun       Date:  2022-08-02       Impact factor: 17.694

6.  Opening Diffusion Pathways through Site Disorder: The Interplay of Local Structure and Ion Dynamics in the Solid Electrolyte Li6+xP1-xGexS5I as Probed by Neutron Diffraction and NMR.

Authors:  Katharina Hogrefe; Nicolò Minafra; Isabel Hanghofer; Ananya Banik; Wolfgang G Zeier; H Martin R Wilkening
Journal:  J Am Chem Soc       Date:  2022-01-20       Impact factor: 15.419

  6 in total

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