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| | Lithium tetrafluoroborate Chemical Properties |
| Melting point | 293-300 °C (dec.) (lit.) | | density | 0.852 g/mL at 25 °C | | vapor pressure | 10Pa at 20℃ | | Fp | 6 °C | | storage temp. | Store below +30°C. | | solubility | soluble in Acetonitrile, DMSO | | form | powder | | color | White to off-white | | Specific Gravity | 0.852 | | PH | 2.88 | | Water Solubility | SOLUBLE | | Sensitive | Hygroscopic | | Merck | 14,5543 | | Exposure limits | ACGIH: TWA 2.5 mg/m3 NIOSH: IDLH 250 mg/m3; TWA 2.5 mg/m3 | | Stability: | Stable. Incompatible with glass, acids, strong bases. Contact with acids releases toxic gas. Moisture-sensitive. | | Major Application | battery manufacturing | | InChI | 1S/BF4.Li/c2-1(3,4)5;/q-1;+1 | | InChIKey | UFXJWFBILHTTET-UHFFFAOYSA-N | | SMILES | [Li+].F[B-](F)(F)F | | CAS DataBase Reference | 14283-07-9(CAS DataBase Reference) | | EPA Substance Registry System | Borate(1-), tetrafluoro-, lithium (14283-07-9) |
| Hazard Codes | C,T,F,Xn | | Risk Statements | 20/21/22-31-34-36/37/38-23/24/25-11-36/38 | | Safety Statements | 22-26-27-36/37/39-45-25-16-36/37 | | RIDADR | UN 3260 8/PG 2 | | WGK Germany | 3 | | F | 3-10 | | Hazard Note | Corrosive/Hygroscopic | | TSCA | TSCA listed | | HazardClass | 8 | | PackingGroup | III | | HS Code | 28269090 | | Storage Class | 8B - Non-combustible corrosive hazardous materials | | Hazard Classifications | Acute Tox. 4 Oral Eye Dam. 1 Muta. 2 Skin Corr. 1B | | Toxicity | LD50 orally in Rabbit: 1638 mg/kg LD50 dermal Rat > 2000 mg/kg |
| | Lithium tetrafluoroborate Usage And Synthesis |
| Description | Lithium tetrafluoroborate, (LiBF4), lithium hexafluorophosphate, (LiPF6), lithium hexafluoroarsenate, (LiAsF6), lithium trifluoromethane sulfonate, (LiSO3CF3), are the electrolyte salts of the 21st Century. The performance of lithium ion cells, primary and secondary lithium cells depends on the purity of these compounds. Several hundred tons of these materials have been produced and many more tons -- and perhaps thousands of tons w will be required in the near future. One of the largest automotive producers predicts that there may be a market for 10-15 million pounds of these salts. The demand for Lithium ion primary cells is also very huge in electronics, computers, communication systems and military applications.
| | Preparation | Lithium tetrafluoroborate, LiBF4, is prepared by dissolving LiF in AHF and then BF3 gas is passed until precipitation is complete. After the reaction is over, excess HF is decanted and LiBF4 is dried under nitrogen until HF and H20 contents are reduced below 100 ppm level. Reaction is carried out in Teflon(R), polyethylene or polypropylene lined reactors to avoid metallic contamination.
| | Chemical Properties | white powder | | Uses | Catalyst in organic synthesis; electrolyte for lithium ion batteries. | | Uses | Lithium tetrafluoroborate is a mild Lewis acid for Diels-Alder reactions. Catalyst for mild and efficient aminolysis of oxiranes. It is a reagent used in the preparation of rechargeable lithium-ion batteries. | | Uses | Lithium tetrafluoroborate (LiBF4) finds application as electrolyte material in lithium ion batteries (LIBs). However, the presence of trace amount of water in LiBF4 causes its hydrolysis which leads to HF generation and destruction of the battery electrodes. Our LiBF4 contains < 100 ppm of water and is well suited for applications in LIBs. | | General Description | This product has been enhanced for energy efficiency. | | Flammability and Explosibility | Not classified | | Battery Materials | Hashan C. Peiris and colleagues investigate the structural and physical interactions of a common solvent solution, ethylene carbonate:dimethyl carbonate, with two salts, LiPF6 and LiBF4. They have similar solvation structures and interaction energies with the solvent, with a preference for the carbonyl oxygens and the ether oxygens to interact with the Li cations, and the methyl or methylene groups to interact with the B or P anions[1]. | | Purification Methods | Dissolve it in THF just below its solubility, filter from insoluble material and evaporate it to dryness in a vacuum below 50o. Wash the residue with dry Et2O, and pass dry N2 gas over the solid and finally heat it in an oven at 80-90o. Its solubility in Et2O is 1.3g in 100mL at 25o; in THF it is 71g in 100mL at 25o. It is hygroscopic and is an IRRITANT. [Elliott et al. J Am Chem Soc 74 5211 1952, 75 1753 1953.] | | References | [1] Peiris, M. D. H. C., Brennan, S., Liepinya, D., Liu, H., & Smeu, M. (2023). Computational determination of the solvation structure of LiBF4 and LiPF6 salts in battery electrolytes. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 674, Article 131831. https://doi.org/10.1016/j.colsurfa.2023.131831
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| | Lithium tetrafluoroborate Preparation Products And Raw materials |
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