Gelation of Organic Liquid Electrolyte to Achieve Superior Sodium-Ion Full-Cells

Author(s):  
Yusi Lei ◽  
Guangyuan Du ◽  
Yuruo Qi ◽  
Yubin Niu ◽  
Shujuan Bao ◽  
...  
MRS Advances ◽  
2019 ◽  
Vol 4 (14) ◽  
pp. 801-806 ◽  
Author(s):  
Suguru Ueda ◽  
Kumpei Yamada ◽  
Kaoru Konno ◽  
Minoru Hoshino ◽  
Katsunori Kojima ◽  
...  

ABSTRACTWe attempt to reveal how electrolyte additives affect the structural evolution of the solid electrolyte interphase (SEI) film on the anode surface of a lithium-ion secondary battery. Employing the hybrid Monte-Carlo/molecular-dynamics method, we theoretically investigate the SEI film structures in organic liquid-electrolyte systems with and without an organosilicon additive. The results show that the excessive growth of the SEI film is suppressed by introducing the organosilicon additives. It is further elucidated that the decomposition products of the organosilicon molecules are stably aggregated in the vicinity of the anode surface, and protect the electrolyte solvents and the lithium salts from the further reductive decomposition. These findings imply that the organosilicon additive possibly improves the cycle performance of LIBs owing to the formation of the effective SEI film.


Nanoscale ◽  
2014 ◽  
Vol 6 (12) ◽  
pp. 6661-6667 ◽  
Author(s):  
S. Amaresh ◽  
K. Karthikeyan ◽  
K. J. Kim ◽  
Y. G. Lee ◽  
Y. S. Lee

The ionic conductivity of a Li–Al–Ge–P–S based thio-LISICON solid electrolyte is equivalent to that of a conventional organic liquid electrolyte used in lithium secondary batteries. The usage of aluminum brings down the cost of the solid electrolyte making it suitable for commercial solid state batteries.


2016 ◽  
Vol 329 ◽  
pp. 428-431 ◽  
Author(s):  
Hiroyuki Usui ◽  
Yasuhiro Domi ◽  
Masahiro Shimizu ◽  
Akinobu Imoto ◽  
Kazuki Yamaguchi ◽  
...  

2014 ◽  
Vol 161 (10) ◽  
pp. A1681-A1690 ◽  
Author(s):  
Amal Mehrotra ◽  
Philip N. Ross ◽  
Venkat Srinivasan

Polymers ◽  
2020 ◽  
Vol 12 (7) ◽  
pp. 1572 ◽  
Author(s):  
Sainan Qin ◽  
Yuqi Wang ◽  
Xu Wu ◽  
Xingpeng Zhang ◽  
Yusong Zhu ◽  
...  

With the raw materials of poly(vinylidene-co-hexafluoropropylene) (P(VDF-HFP)) and polyamide 6 (PA6, nylon 6), a sandwich-structured composite membrane, PA6/P(VDF-HFP)/PA6, is fabricated via sequential layer-by-layer electrospinning. The nylon-based composite exhibits high absorption to organic liquid electrolyte (270 wt%) owing to its high porosity (90.35%), good mechanical property (17.11 MPa), and outstanding shut-down behavior from approximately 145 to 230 °C. Moreover, the dimensional shrink of a wet PA6 porous membrane immersed into liquid electrolyte is cured due to the existence of the P(VDF-HFP) middle layer. After swelling by the LiPF6-based organic liquid electrolyte, the obtained PA6/P(VDF-HFP)/PA6-based gel polymer electrolytes (GPE) shows high ionic conductivity at room temperature (4.2 mS cm−1), a wide electrochemical stable window (4.8 V), and low activation energy for Li+ ion conduction (4.68 kJ mol−1). Benefiting from the precise porosity structure made of the interlaced electrospinning nanofibers and the superior physicochemical properties of the nylon-based composite GPE, the reversible Li+ ion dissolution/deposition behaviors between the GPE and Li anode are successfully realized with the Li/Li symmetrical cells (current density: 1.0 mA cm−2; areal capacity: 1.0 mAh cm−2) proceeding over 400 h at a polarization voltage of no more than 70 mV. Furthermore, the nylon-based composite GPE in assembled Li/LiFePO4 cells displays good electrochemical stability, high discharge capacity, good cycle durability, and high rate capability. This research provides a new strategy to fabricate gel polymer electrolytes via the electrospinning technique for rechargeable lithium batteries with good electrochemical performance, high security, and low cost.


2017 ◽  
Vol 25 (1) ◽  
pp. 12-18
Author(s):  
Nurul Huda Yusoff ◽  
◽  
Nur Izzah Abd Azes ◽  
Nurhafizah Najmi ◽  
Mohd Ali Sulaiman ◽  
...  

Materials ◽  
2018 ◽  
Vol 11 (10) ◽  
pp. 1814 ◽  
Author(s):  
Lanlan Tian ◽  
Lian Xiong ◽  
Xuefang Chen ◽  
Haijun Guo ◽  
Hairong Zhang ◽  
...  

Gel polymer electrolyte (GPE) is widely considered as a promising safe lithium-ion battery material compared to conventional organic liquid electrolyte, which is linked to a greater risk of corrosive liquid leakage, spontaneous combustion, and explosion. GPE contains polymers, lithium salts, and liquid electrolyte, and inorganic nanoparticles are often used as fillers to improve electrochemical performance. However, such composite polymer electrolytes are usually prepared by means of blending, which can impact on the compatibility between the polymer and filler. In this study, the hybrid copolymer poly (organic palygorskite-co-methyl methacrylate) (poly(OPal-MMA)) is synthesized using organic palygorskite (OPal) and MMA as raw materials. The poly(OPal-MMA) gel electrolyte exhibits an ionic conductivity of 2.94 × 10−3 S/cm at 30 °C. The Li/poly(OPal-MMA) electrolyte/LiFePO4 cell shows a wide electrochemical window (approximately 4.7 V), high discharge capacity (146.36 mAh/g), and a low capacity-decay rate (0.02%/cycle).


2016 ◽  
Vol 18 (44) ◽  
pp. 30770-30776 ◽  
Author(s):  
Changsheng Ding ◽  
Toshiyuki Nohira ◽  
Rika Hagiwara

A new sodiation–desodiation mechanism for the anatase TiO2/C negative electrode in an ionic liquid electrolyte was reported.


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