为了获得访问"阿拉丁铁蛋"实时聊天框的流畅支持体验,建议您使用Chrome浏览器或选择360浏览器极速模式(如何切换极速模式?),感谢您选择我们!

双乙二酸硼酸锂

规格或纯度: ≥99.0% metals basis
有货

库存信息

关闭

库存信息

关闭

库存信息

关闭

库存信息

关闭

库存信息

关闭
货号 (SKU) 包装规格 是否现货 价格 数量
L120347-1g
1g 现货 Stock Image
L120347-5g
5g 现货 Stock Image
L120347-25g
25g 现货 Stock Image
L120347-100g
100g 现货 Stock Image
L120347-500g
500g 现货 Stock Image

基本描述

别名 二草酸硼酸锂|双(乙二醇)硼酸锂|双(草酸)硼酸锂|2,3,7,8-四氧代-1,4,6,9-四氧杂-5-硼螺[4.4]壬烷-5-离子锂(I)|双(乙二酸)硼酸锂
英文别名 244761-29-3|Lithium bis(oxalate)borate|lithium bis(oxalato)borate|Lithium 2,3,7,8-tetraoxo-1,4,6,9-tetraoxa-5-boraspiro[4.4]nonan-5-uide|LiBOB|Lithium bis(ethanedioato)borate|Lithium bis(oxalate)borate (LiBOB)|LITHIUM BIS (OXALATE) BORATE|MFCD07776904|lit
规格或纯度 ≥99.0% metals basis
英文名称 Lithium bis(oxalato)borate
储存温度 充氩
运输条件 常规运输
产品介绍
产品应用
LiBOB是一种新型的锂离子电池硼基锂盐电解质材料。它对环境友好,具有良好的成膜性能和高热稳定性,并与各种阳极和金属氧化物阴极兼容。
LiBOB是热稳定电解质,可用于保护锂离子电池中的石墨基阳极材料。它显示了良好的电化学性能,放电容量保持率约为83%。

LiBOB is a new and proprietary conductive salt for the use in high performance batteries like lithium batteries, lithium ion batteries and lithium polymer batteries. The new halide-free product may be used instead of traditional fluorinated compounds like LiPF6, LiBF4, Li-triflate, methanides, imides etc.

Lithium bis(oxalato)borate (LiBOB) is a class of electrolytic materials that can be used in the fabrication of lithium-ion batteries. Lithium-ion batteries consist of anode, cathode, and electrolyte with a charge-discharge cycle. These materials enable the formation of greener and sustainable batteries for electrical energy storage.


名称和标识符

IUPAC Name lithium;1,4,6,9-tetraoxa-5-boranuidaspiro[4.4]nonane-2,3,7,8-tetrone
INCHI InChI=1S/C4BO8.Li/c6-1-2(7)11-5(10-1)12-3(8)4(9)13-5;/q-1;+1
InChi Key NVQAYVUCVASGDK-UHFFFAOYSA-N
Canonical SMILES [Li+].[B-]12(OC(=O)C(=O)O1)OC(=O)C(=O)O2
Isomeric SMILES [Li+].[B-]12(OC(=O)C(=O)O1)OC(=O)C(=O)O2
WGK Germany 3
PubChem CID 23677815
分子量 193.79

化学和物理性质

溶解性 溶解性(可溶于) 四氢呋喃,丙酮,水
敏感性 遇水分解,易吸湿
熔点 >300°C

安全和危险性(GHS)

象形图
ghs06

Toxic

ghs05

Corrosive

ghs07

Harmful

信号词 Danger
危险声明 H315: Causes skin irritation
H319: Causes serious eye irritation
H335: May cause respiratory irritation
H301: Toxic if swallowed
H318: Causes serious eye damage
H317: May cause an allergic skin reaction
H312: Harmful in contact with skin
预防措施声明 P261,P305+P351+P338,P280,P302+P352,P321,P405,P501,P264,P271,P270,P304+P340,P403+P233,P272,P333+P313,P362+P364,P330,P264+P265,P301+P316,P305+P354+P338,P317,P337+P317,P332+P317,P319
WGK Germany 3

质检证书(COA)

质检报告(COA)

输入批号以搜索COA:

相关文档

质检报告COA

请输入批号:


相关技术文章

FAQ
如何提高锂离子电池中电解液的安全性?
高压锂离子电池材料研究进展
锂离子电池电解液中锂盐的选择指南
转换型锂金属氟化电池的研究进展
Conversion Lithium Metal Fluoride Batteries
锂离子电池用离子液体电解质
Ionic Liquid Electrolytes for Li-ion Batteries
固态可充电电池
How To Improve the Safety of Electrolyte in Lithium-Ion Batteries?
Research Progress of High-Voltage Lithium-Ion Battery Materials
Guide for the Selection of Lithium Salts in the Electrolyte of Lithium-Ion Batteries
Solid State Rechargeable Battery

产品问答

产品问答

登录提交问题 Hover me 请先登录再提交问题
您提交该产品问题后,我们会在1-2个工作日内给您答复,您可以登录"我的账号",然后点击"我的产品问答"查看答案

参考文献

1. Kjell W Schroder,Anthony G Dylla,Logan D C Bishop,Elizabeth R Kamilar,Jennette Saunders,Lauren J Webb,Keith J Stevenson.  (2015-08-13)  Effects of Solute-Solvent Hydrogen Bonding on Nonaqueous Electrolyte Structure..  The journal of physical chemistry letters,  ((15)):  (2888-2891).  [PMID:26267175]
2. Jenny Strehlau,Till Weber,Constantin Lürenbaum,Julia Bornhorst,Hans-Joachim Galla,Tanja Schwerdtle,Martin Winter,Sascha Nowak.  (2017-08-05)  Towards quantification of toxicity of lithium ion battery electrolytes - development and validation of a liquid-liquid extraction GC-MS method for the determination of organic carbonates in cell culture materials..  Analytical and bioanalytical chemistry,  409  ((26)):  (6123-6131).  [PMID:28776071]
3. R Verrelli,M E Arroyo-de-Dompablo,D Tchitchekova,A P Black,C Frontera,A Fuertes,M R Palacin.  (2017-09-26)  On the viability of Mg extraction in MgMoN.  Physical chemistry chemical physics : PCCP,  19  ((38)):  (26435-26441).  [PMID:28944795]
4. Shoichi Matsuda,Kiho Nishioka,Shuji Nakanishi.  (2019-04-19)  High-throughput combinatorial screening of multi-component electrolyte additives to improve the performance of Li metal secondary batteries..  Scientific reports,  ((1)):  (6211-6211).  [PMID:30996343]
5. Marie A Claudio-Cintrón,Joaquín Rodríguez-López.  (2019-05-16)  Scanning electrochemical microscopy with conducting polymer probes: Validation and applications..  Analytica chimica acta,  1069  ():  (36-46).  [PMID:31084739]
6. Wengao Zhao,Lianfeng Zou,Jianming Zheng,Haiping Jia,Junhua Song,Mark H Engelhard,Chongmin Wang,Wu Xu,Yong Yang,Ji-Guang Zhang.  (2018-05-03)  Simultaneous Stabilization of LiNi0.76 Mn0.14 Co0.10 O2 Cathode and Lithium Metal Anode by Lithium Bis(oxalato)borate as Additive..  ChemSusChem,  11  ((13)):  (2211-2220).  [PMID:29717541]
7. Snehashis Choudhury,Sanjuna Stalin,Duylinh Vu,Alexander Warren,Yue Deng,Prayag Biswal,Lynden A Archer.  (2019-09-29)  Solid-state polymer electrolytes for high-performance lithium metal batteries..  Nature communications,  10  ((1)):  (4398-4398).  [PMID:31562334]
8. Jonas Hedman,David Nilebo,Elin Larsson Langhammer,Fredrik Björefors.  (2020-08-22)  Fibre Optic Sensor for Characterisation of Lithium-Ion Batteries..  ChemSusChem,  13  ((21)):  (5731-5739).  [PMID:32820862]