Chemically Evolved Composite Lithium-Ion Conductors with Lithium Thiophosphates and Nickel Sulfides

Authors
Park, MansooJung, Hun-GiJung, Wo DumCho, Soo YoungYun, Bin-NaLee, Yoon SungChoi, SungjunAhn, JunsungLim, JaeminSung, Ju YoungJang, Yong-JunAhn, Jae-PyoungLee, Jong-HoKim, Hyoungchul
Issue Date
2017-08
Publisher
AMER CHEMICAL SOC
Citation
ACS ENERGY LETTERS, v.2, no.8, pp.1740 - 1745
Abstract
The development and application of all-solid-state batteries with a fast lithium-ionic conductor are hampered by structural instability and rigid stoichiometry restrictions. Here, we present a family of lithium thiophosphate prototypes with a novel principle, controlling sulfur deficiencies with the addition of nickel sulfide-based additives, for fast lithium-ion conduction and distinct electrochemical stability under the extended material constituent. Well-controlled sulfur deficiency of the Li3PS4 framework accompanied by nickel sulfide additive offers the notable increase of lithium-ion conductivity (2 X 10(-3) S cm(-1) at 25 degrees C) and high electrochemical stability (up to 10 V vs Li/Li+) in a wide composition range. We further confirm the potential application of our fast composite lithium-ion conductor as an electrolyte for the all-solid-state battery with 117 mAh g(-1) capacity delivery and stable cycle life.
Keywords
GLASS-CERAMIC ELECTROLYTES; SOLID-STATE BATTERIES; SUPERIONIC CONDUCTOR; LI2S-P2S5 GLASSES; CRYSTAL-STRUCTURE; LI7P3S11; LI3PS4; GLASS-CERAMIC ELECTROLYTES; SOLID-STATE BATTERIES; SUPERIONIC CONDUCTOR; LI2S-P2S5 GLASSES; CRYSTAL-STRUCTURE; LI7P3S11; LI3PS4; solid electrolytes; lithium-ion conductors; all-solid-state batteries; lithium thiophosphates; sulfur deficiency; nickel sulfides
ISSN
2380-8195
URI
https://pubs.kist.re.kr/handle/201004/122475
DOI
10.1021/acsenergylett.7b00497
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KIST Article > 2017
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