Epitaxial Growth of Nanostructured Li2Se on Lithium Metal for All Solid‐State Batteries

Abstract Lithium is considered to be the ultimate anode material for high energy‐density rechargeable batteries. Recent emerging technologies of all solid‐state batteries based on sulfide‐based electrolytes raise hope for the practical use of lithium, as it is likely to suppress lithium dendrite gro...

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Main Authors: Hyunjung Park, Jeongheon Kim, Dongsoo Lee, Joonhyeok Park, Seonghan Jo, Jaeik Kim, Taeseup Song, Ungyu Paik
Format: Article
Language:English
Published: Wiley 2021-06-01
Series:Advanced Science
Subjects:
Online Access:https://doi.org/10.1002/advs.202004204
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spelling doaj-a8725139de7e43ba9686a8bacde7cc8b2021-06-09T08:04:52ZengWileyAdvanced Science2198-38442021-06-01811n/an/a10.1002/advs.202004204Epitaxial Growth of Nanostructured Li2Se on Lithium Metal for All Solid‐State BatteriesHyunjung Park0Jeongheon Kim1Dongsoo Lee2Joonhyeok Park3Seonghan Jo4Jaeik Kim5Taeseup Song6Ungyu Paik7Department of Materials Science and Engineering Chosun University Gwangju 61452 KoreaDepartment of Energy Engineering Hanyang University Seoul 133‐791 KoreaDepartment of Energy Engineering Hanyang University Seoul 133‐791 KoreaDepartment of Energy Engineering Hanyang University Seoul 133‐791 KoreaDepartment of Energy Engineering Hanyang University Seoul 133‐791 KoreaDepartment of Energy Engineering Hanyang University Seoul 133‐791 KoreaDepartment of Energy Engineering Hanyang University Seoul 133‐791 KoreaDepartment of Energy Engineering Hanyang University Seoul 133‐791 KoreaAbstract Lithium is considered to be the ultimate anode material for high energy‐density rechargeable batteries. Recent emerging technologies of all solid‐state batteries based on sulfide‐based electrolytes raise hope for the practical use of lithium, as it is likely to suppress lithium dendrite growth. However, such devices suffer from undesirable side reactions and a degradation of electrochemical performance. In this work, nanostructured Li2Se epitaxially grown on Li metal by chemical vapor deposition are investigated as a protective layer. By adjusting reaction time and cooling rate, a morphology of as‐prepared Li2Se is controlled, resulting in nanoparticles, nanorods, or nanowalls with a dominant (220) plane parallel to the (110) plane of the Li metal substrate. Uniaxial pressing the layers under a pressure of 50 MPa for a cell preparation transforms more compact and denser. Dual compatibility of the Li2Se layers with strong chemical bonds to Li metal and uniform physical contact to a Li6PS5Csulfide electrolyte prevents undesirable side reactions and enables a homogeneous charge transfer at the interface upon cycling. As a result, a full cell coupled with a LiCoO2‐based cathode shows significantly enhanced electrochemical performance and demonstrates the practical use of Li anodes with Li2Se layers for all solid‐state battery applications.https://doi.org/10.1002/advs.202004204all solid‐state batterieslithium metallithium selenideprotective layersulfide‐based electrolyte
collection DOAJ
language English
format Article
sources DOAJ
author Hyunjung Park
Jeongheon Kim
Dongsoo Lee
Joonhyeok Park
Seonghan Jo
Jaeik Kim
Taeseup Song
Ungyu Paik
spellingShingle Hyunjung Park
Jeongheon Kim
Dongsoo Lee
Joonhyeok Park
Seonghan Jo
Jaeik Kim
Taeseup Song
Ungyu Paik
Epitaxial Growth of Nanostructured Li2Se on Lithium Metal for All Solid‐State Batteries
Advanced Science
all solid‐state batteries
lithium metal
lithium selenide
protective layer
sulfide‐based electrolyte
author_facet Hyunjung Park
Jeongheon Kim
Dongsoo Lee
Joonhyeok Park
Seonghan Jo
Jaeik Kim
Taeseup Song
Ungyu Paik
author_sort Hyunjung Park
title Epitaxial Growth of Nanostructured Li2Se on Lithium Metal for All Solid‐State Batteries
title_short Epitaxial Growth of Nanostructured Li2Se on Lithium Metal for All Solid‐State Batteries
title_full Epitaxial Growth of Nanostructured Li2Se on Lithium Metal for All Solid‐State Batteries
title_fullStr Epitaxial Growth of Nanostructured Li2Se on Lithium Metal for All Solid‐State Batteries
title_full_unstemmed Epitaxial Growth of Nanostructured Li2Se on Lithium Metal for All Solid‐State Batteries
title_sort epitaxial growth of nanostructured li2se on lithium metal for all solid‐state batteries
publisher Wiley
series Advanced Science
issn 2198-3844
publishDate 2021-06-01
description Abstract Lithium is considered to be the ultimate anode material for high energy‐density rechargeable batteries. Recent emerging technologies of all solid‐state batteries based on sulfide‐based electrolytes raise hope for the practical use of lithium, as it is likely to suppress lithium dendrite growth. However, such devices suffer from undesirable side reactions and a degradation of electrochemical performance. In this work, nanostructured Li2Se epitaxially grown on Li metal by chemical vapor deposition are investigated as a protective layer. By adjusting reaction time and cooling rate, a morphology of as‐prepared Li2Se is controlled, resulting in nanoparticles, nanorods, or nanowalls with a dominant (220) plane parallel to the (110) plane of the Li metal substrate. Uniaxial pressing the layers under a pressure of 50 MPa for a cell preparation transforms more compact and denser. Dual compatibility of the Li2Se layers with strong chemical bonds to Li metal and uniform physical contact to a Li6PS5Csulfide electrolyte prevents undesirable side reactions and enables a homogeneous charge transfer at the interface upon cycling. As a result, a full cell coupled with a LiCoO2‐based cathode shows significantly enhanced electrochemical performance and demonstrates the practical use of Li anodes with Li2Se layers for all solid‐state battery applications.
topic all solid‐state batteries
lithium metal
lithium selenide
protective layer
sulfide‐based electrolyte
url https://doi.org/10.1002/advs.202004204
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