Anisotropic thermal expansion and ionic conductivity of a crystal-oriented, Mg2+-conducting NASICON-type solid electrolyte

Author(s):  
Cem E. Özbilgin ◽  
Kiyoshi Kobayashi ◽  
Shinji Tamura ◽  
Nobuhito Imanaka ◽  
Tohru S. Suzuki
2020 ◽  
Vol 8 (22) ◽  
pp. 11302-11313 ◽  
Author(s):  
Yosef Nikodimos ◽  
Meng-Che Tsai ◽  
Ljalem Hadush Abrha ◽  
Haile Hisho Weldeyohannis ◽  
Shuo-Feng Chiu ◽  
...  

A cell with doped LPS – Li1.5Al0.33Sc0.17Ge1.5(PO4)3 shows improved conductivity and a capacity retention of 83.6% for more than 80 cycles.


Nanoscale ◽  
2021 ◽  
Author(s):  
Han Wang ◽  
Genfu Zhao ◽  
Shimin Wang ◽  
Dangling Liu ◽  
Zhi-Yuan Mei ◽  
...  

NASICON-type Na3Zr2Si2PO12 (NZSP) is supposed to be one of the most potential solid electrolytes with the characteristics of high ionic conductivity and safety for solid-state sodium batteries. Many methods have...


2020 ◽  
Vol 354 ◽  
pp. 115399
Author(s):  
Zehua Cai ◽  
Yu Huang ◽  
Weichen Zhu ◽  
Rengui Xiao

2021 ◽  
pp. 2140001
Author(s):  
Jingxiong Gao ◽  
Jie Wu ◽  
Songyi Han ◽  
Jingze Zhang ◽  
Lei Zhu ◽  
...  

Owing to their high ionic conductivity and excellent flexibility, composite polymer electrolytes (CPEs) have been widely studied in solid lithium metal batteries (SLMBs). In this study, a new solid electrolyte of NASICON-type Li3Zr2Si2PO[Formula: see text] (LZSP) was prepared by the sol–gel method, and then a new type of CPE membrane containing LZSP and Poly(vinylidene fluoride) (PVDF) was synthesized by slurry-casting method. The CPE membrane presented much higher ionic conductivity of 5.66 × 10[Formula: see text] S ⋅ cm[Formula: see text] at 25[Formula: see text]C and stronger electrochemical stability compared to the one without LZSP. In addition, the cells containing the composite electrolyte membrane exhibited considerable rate performance and cycle performance.


2018 ◽  
Vol 271 ◽  
pp. 120-126 ◽  
Author(s):  
Vishwanathan Ramar ◽  
Sunil Kumar ◽  
S.R. Sivakkumar ◽  
Palani Balaya

1979 ◽  
Vol 9 (1) ◽  
pp. 1-20 ◽  
Author(s):  
M Hasegawa ◽  
W H Young ◽  
M J Stott

Nanoscale ◽  
2021 ◽  
Author(s):  
Feihu Tan ◽  
Hua An ◽  
Ning Li ◽  
Jun Du ◽  
Zhengchun Peng

As flexible all-solid-state batteries are highly safe and lightweight, they can be considered as candidates for wearable energy sources. However, their performance needs to be first improved, which can be...


Nanomaterials ◽  
2021 ◽  
Vol 11 (4) ◽  
pp. 989
Author(s):  
Feihu Tan ◽  
Hua An ◽  
Ning Li ◽  
Jun Du ◽  
Zhengchun Peng

All-solid-state batteries (ASSBs) are attractive for energy storage, mainly because introducing solid-state electrolytes significantly improves the battery performance in terms of safety, energy density, process compatibility, etc., compared with liquid electrolytes. However, the ionic conductivity of the solid-state electrolyte and the interface between the electrolyte and the electrode are two key factors that limit the performance of ASSBs. In this work, we investigated the structure of a Li0.33La0.55TiO3 (LLTO) thin-film solid electrolyte and the influence of different interfaces between LLTO electrolytes and electrodes on battery performance. The maximum ionic conductivity of the LLTO was 7.78 × 10−5 S/cm. Introducing a buffer layer could drastically improve the battery charging and discharging performance and cycle stability. Amorphous SiO2 allowed good physical contact with the electrode and the electrolyte, reduced the interface resistance, and improved the rate characteristics of the battery. The battery with the optimized interface could achieve 30C current output, and its capacity was 27.7% of the initial state after 1000 cycles. We achieved excellent performance and high stability by applying the dense amorphous SiO2 buffer layer, which indicates a promising strategy for the development of ASSBs.


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