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Ultrastable All-Solid-State Sodium Rechargeable Batteries

delete2020-08-11
delete173
PRE
AI
杨静 (Jing Yang)
G
Gaozhan Liu
M
Maxim Avdeev
H
Hongli Wan
F
Fudong Han
林深 (Shen Lin)
Z
Zheyi Zou
施思齐 cover
施思齐 (Siqi Shi) *
Y
Yong‐Sheng Hu *
C
Chunsheng Wang *
姚霞银 (Xiayin Yao) *
DOI:10.1021/acsenergylett.0c01432delete
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Abstract

Abstract

En 中文
The insufficient ionic conductivity of oxide-based solid electrolytes and the large interfacial resistance between the cathode material and the solid electrolyte severely limit the performance of room-temperature all-solid-state sodium rechargeable batteries. A NASICON solid electrolyte Na3.4Zr1.9Zn0.1Si2.2P0.8O12, with superior room-temperature conductivity of 5.27 x 10(-3) S cm(-1), is achieved by simultaneous substitution of Zr4+ by aliovalent Zn2+ and P5+ by Si4+ in Na3Zr2Si2PO12. The bulk conductivity and grain boundary conductivity of Na3.4Zr1.9Zn0.1Si2.2P0.8O12 are nearly 20 times and almost 50 times greater than those of pristine Na3Zr2Si2PO12, respectively. The FeS2 parallel to polydopamine-Na(3.4)Zr(1.9)Zn(0.1)Si(2.2)P(0.8)0O(12)parallel to Na all-solid-state sodium batteries, with a polydopamine modification thin layer between the solid electrolyte and the cathode, maintain a high reversible capacity of 236.5 mAh g(-1) at a 0.1 C rate for 100 cycles and a capacity of 133.1 mAh g(-1) at 0.5 C for 300 cycles, demonstrating high performance for all-solid- state sodium batteries.
Keywords:
SUPERIONIC CONDUCTOR
ELECTROLYTE
CHEMISTRY
NA3ZR2SI2PO12
TRANSPORT
PHASE
ION
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Journal

ACS Energy Letters cover
ACS Energy Letters
IF:
18.2
Papers:
5.2K
Citations:
6.6W

Organization

U
university of chinese academy of sciences, cas
Scholars:
4.1W
Papers: 3.8W
Citations: 75
C
chinese academy of sciences
Scholars:
56.4W
Papers: 44.9W
Citations: 704
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