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Product Information

Product Name
Lithium tetrafluoroborate, 98%
Brand Name
US-Strem
Product Number
93-0356
CAS
14283-07-9
Certificate of Analysis (COA)​
COA not found

General Information

PubChem CID
4298216
IUPAC Name
lithium tetrafluoroborate
InChI Key
UFXJWFBILHTTET-UHFFFAOYSA-N
SMILES
Li+.B-(F)(F)(F)F

Description

Product Introduction

Lithium Tetrafluoroborate (LiBF₄, CAS No. 14283-07-9) is an important fluorinated lithium salt widely used in electrochemical energy storage, lithium-ion batteries, lithium metal batteries, supercapacitors, and advanced electrolyte research.

As an electrolyte salt, LiBF₄ provides Li⁺ ions for ionic conduction and contains a weakly coordinating BF₄⁻ anion, offering good thermal stability and chemical compatibility with various organic solvents.

Compared with conventional Lithium Hexafluorophosphate (LiPF₆), LiBF₄ demonstrates improved resistance to moisture and thermal stability, making it attractive for specialized electrolyte systems, including high-temperature batteries, aluminum current collector compatibility studies, and next-generation electrolyte formulations.

 

Structural Characteristics

Lithium Tetrafluoroborate consists of:

Lithium Ion (Li⁺)

  • Provides lithium-ion transport in electrolyte systems
  • Supports reversible charge/discharge reactions

Tetrafluoroborate Anion (BF₄⁻)

  • Weakly coordinating fluorinated anion
  • Provides electrolyte stability
  • Improves compatibility with organic solvents

The BF₄⁻ anion structure contributes to LiBF₄'s chemical stability and makes it suitable for specialized electrochemical applications.

 

Key Research Applications

1. Lithium-Ion Battery Electrolyte Salt

LiBF₄ is widely studied as an electrolyte salt for rechargeable lithium batteries.

Applications include:

  • Lithium-ion battery electrolyte formulation
  • Electrolyte composition optimization
  • Lithium-ion conductivity studies
  • Electrode/electrolyte compatibility evaluation
  • Battery performance research

LiBF₄ can be dissolved in organic solvents to provide lithium-ion conductivity for electrochemical cells.

 

2. Lithium Metal Battery Research

LiBF₄ is investigated in advanced lithium metal battery systems.

Applications include:

  • Lithium metal anode compatibility studies
  • Lithium deposition behavior analysis
  • Interfacial stability research
  • High-energy-density battery development

 

3. High-Temperature Battery Systems

Due to its thermal stability, LiBF₄ is studied for battery applications under demanding conditions.

Applications include:

  • High-temperature lithium batteries
  • Thermal stability evaluation
  • Long-life electrolyte development
  • Harsh-environment energy storage

 

4. Aluminum Electrolyte and Current Collector Compatibility Research

LiBF₄ has been investigated for electrolyte systems requiring improved aluminum compatibility.

Applications include:

  • Aluminum current collector stability studies
  • High-voltage lithium battery electrolytes
  • Electrochemical corrosion research
  • Electrolyte additive evaluation

 

5. Supercapacitors and Electrochemical Devices

LiBF₄ is also used in non-aqueous electrolyte systems for electrochemical devices.

Applications include:

  • Supercapacitor electrolytes
  • Electrochemical capacitor research
  • Ion transport studies
  • Energy storage device development

 

6. Solid-State and Polymer Electrolyte Research

LiBF₄ is explored in advanced electrolyte materials.

Applications include:

  • Polymer electrolyte systems
  • Gel polymer electrolytes
  • Hybrid solid-liquid electrolytes
  • Lithium-ion conductivity enhancement studies

 

Advantages

  • Provides lithium ions for electrolyte systems
  • Good thermal stability
  • Better moisture tolerance than some conventional lithium salts
  • Suitable for specialized battery applications
  • Compatible with various organic electrolyte solvents
  • Useful for advanced electrolyte development

 

Storage & Handling

  • Store in a tightly sealed container.
  • Protect from moisture and humidity.
  • Keep in a dry, cool environment.
  • Avoid prolonged exposure to air.
  • Handle under dry-room or inert atmosphere conditions for battery applications.

LiBF₄ is moisture-sensitive and should be protected from water contamination during electrolyte preparation.

 

Research Areas

  • Lithium-ion batteries
  • Lithium metal batteries
  • Solid-state batteries
  • Polymer electrolytes
  • Supercapacitors
  • Electrochemical energy storage
  • Advanced electrolyte materials

FAQ

What is Lithium Tetrafluoroborate (LiBF₄)?

Lithium Tetrafluoroborate (LiBF₄) is a fluorinated lithium salt used as an electrolyte component in lithium batteries and electrochemical energy storage systems.

 

What is LiBF₄ used for?

LiBF₄ is mainly used in:

  • Lithium-ion battery electrolytes
  • Lithium metal battery research
  • High-temperature battery systems
  • Supercapacitor electrolytes
  • Advanced electrolyte development

 

Is LiBF₄ a battery electrolyte salt?

Yes. LiBF₄ is an electrolyte salt that provides lithium ions for ionic conduction. It is not an electrode material.

 

What is the difference between LiBF₄ and LiPF₆?

Property LiBF₄ LiPF₆
Full Name Lithium Tetrafluoroborate Lithium Hexafluorophosphate
Anion BF₄⁻ PF₆⁻
Thermal Stability Higher Moderate
Commercial Use Specialized applications Mainstream lithium-ion batteries
Moisture Stability Relatively better More moisture sensitive

 

Can LiBF₄ be used in solid-state batteries?

Yes. LiBF₄ is studied in polymer, gel, and hybrid electrolyte systems for solid-state battery research.

 

Is LiBF₄ a cathode or anode material?

No. LiBF₄ is an electrolyte salt, not an electrode active material.

References Data Source From Pubchem

Semi-liquid lithium−sulfur batteries for large-scale energy storage

Publication Name: Nature Reviews Clean Technology
Publication Date: 2026-02-16
DOI: 10.1038/s44359-026-00147-4

Thermal stability and performance of Li-ion batteries at elevated temperatures: separator effects

Publication Name: Journal of Applied Electrochemistry
Publication Date: 2026-02-01
DOI: 10.1007/s10800-025-02399-7

Lignin-derived hierarchical porous carbons enabling high-voltage electrochemical capacitors with low self-discharge

Publication Name: Carbon Research
Publication Date: 2026-01-28
DOI: 10.1007/s44246-025-00255-z

Solid-State Lithium Batteries with Liquid Additives: A Critical Review of Progress and Challenges

Publication Name: Electrochemical Energy Reviews
Publication Date: 2026-01-26
DOI: 10.1007/s41918-025-00273-w

Polymer–Ceramic framework stabilized solid electrolyte for advanced Lithium-Ion energy storage

Publication Name: Chemical Papers
Publication Date: 2026-01-10
DOI: 10.1007/s11696-025-04605-4