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Product Information

Product Name
Lithium hexafluorophosphate (99.9+%-Li)
Brand Name
US-Strem
Product Number
03-0325
CAS
21324-40-3
Certificate of Analysis (COA)​
COA not found

General Information

PubChem CID
23688915
IUPAC Name
lithium hexafluorophosphate
InChI Key
AXPLOJNSKRXQPA-UHFFFAOYSA-N
SMILES
Li+.FP-(F)(F)(F)(F)F

Description

Product Introduction

Lithium Hexafluorophosphate (LiPF₆, CAS No. 21324-40-3) is one of the most widely used lithium salts for rechargeable lithium-ion battery electrolytes. Due to its excellent balance of ionic conductivity, electrochemical stability, and compatibility with commercial carbonate-based solvents, LiPF₆ has become the dominant electrolyte salt in conventional lithium-ion battery systems.

LiPF₆ provides lithium ions (Li⁺) for charge transport between cathode and anode during battery operation, while the weakly coordinating PF₆⁻ anion contributes to favorable electrolyte properties.

It is extensively used in the development and manufacturing of:

  • Lithium-ion batteries (LIBs)
  • Lithium metal batteries (LMBs)
  • High-voltage battery systems
  • Advanced electrochemical energy storage devices

 

Structural Characteristics

Lithium Hexafluorophosphate consists of:

Lithium Ion (Li⁺)

  • Provides charge carriers in electrolyte systems
  • Enables lithium-ion migration during charging/discharging

Hexafluorophosphate Anion (PF₆⁻)

  • Weakly coordinating anion
  • Helps maintain electrolyte conductivity
  • Provides good electrochemical compatibility

The combination of Li⁺ and PF₆⁻ makes LiPF₆ suitable for non-aqueous electrolyte systems used in lithium batteries.

 

Key Research Applications

1. Lithium-Ion Battery Electrolyte Salt

LiPF₆ is primarily used as the electrolyte salt in commercial lithium-ion batteries.

Applications include:

  • Lithium-ion battery electrolyte formulation
  • Cathode/anode compatibility studies
  • Battery cycling performance evaluation
  • Electrochemical stability testing
  • Commercial rechargeable battery systems

LiPF₆ dissolved in organic carbonate solvents such as ethylene carbonate (EC), dimethyl carbonate (DMC), and ethyl methyl carbonate (EMC) forms the electrolyte responsible for lithium-ion transport.

 

2. Lithium Metal Battery Research

LiPF₆ is widely studied in next-generation lithium metal battery systems.

Applications include:

  • Lithium metal anode compatibility studies
  • Electrolyte optimization
  • Lithium deposition behavior research
  • Interface stability analysis

 

3. High-Voltage Battery Systems

LiPF₆ is used in electrolyte development for high-energy-density batteries.

Applications include:

  • High-voltage cathode materials
  • Nickel-rich layered oxide batteries
  • Long-cycle-life battery research
  • Electrolyte additive evaluation

 

4. Solid-State and Hybrid Electrolyte Research

LiPF₆ is investigated in advanced electrolyte platforms.

Applications include:

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

 

5. Electrochemical Energy Storage Research

LiPF₆ serves as a standard electrolyte salt for fundamental electrochemical studies.

Applications include:

  • Ion conductivity measurements
  • Electrochemical interface studies
  • Battery degradation mechanism research
  • New electrolyte system development

 

Advantages

  • Commercially established lithium battery electrolyte salt
  • High ionic conductivity
  • Good compatibility with carbonate solvents
  • Suitable electrochemical stability window
  • Widely used in lithium-ion battery manufacturing
  • Extensive research and industrial application histo

 

Storage & Handling

  • Store in a tightly sealed container.
  • Protect from moisture and humidity.
  • Handle under dry-room or inert atmosphere conditions.
  • Avoid contact with water.

LiPF₆ is moisture-sensitive and can hydrolyze to produce corrosive fluorine-containing species, including hydrogen fluoride (HF), under humid conditions.

 

Research Areas

  • Lithium-ion batteries
  • Lithium metal batteries
  • Solid-state batteries
  • Battery electrolyte materials
  • Electrochemical energy storage
  • High-voltage battery technologies
  • Battery interface engineering

FAQ

What is Lithium Hexafluorophosphate (LiPF₆)?

Lithium Hexafluorophosphate (LiPF₆) is a lithium salt widely used as an electrolyte component in lithium-ion batteries.

 

What is LiPF₆ used for?

LiPF₆ is mainly used for:

  • Lithium-ion battery electrolytes
  • Lithium metal battery research
  • High-voltage battery systems
  • Electrochemical energy storage studies

 

Is LiPF₆ an electrode material?

No. LiPF₆ is an electrolyte salt, not an electrode active material. It provides lithium ions for ionic conduction within the electrolyte.

 

Why is LiPF₆ commonly used in lithium-ion batteries?

LiPF₆ provides a good balance of:

  • Ionic conductivity
  • Electrochemical stability
  • Solubility in organic solvents
  • Compatibility with electrode materials

 

What is the difference between LiPF₆ and LiFSI?

Property LiPF₆ LiFSI
Full Name Lithium Hexafluorophosphate Lithium Bis(fluorosulfonyl)imide
Application Commercial LIB electrolyte Advanced battery electrolyte
Advantages Mature technology, good compatibility Better thermal stability, improved conductivity potential
Usage Widely commercialized Next-generation battery research

 

Can LiPF₆ be used in solid-state batteries?

LiPF₆ is mainly used in liquid electrolytes but is also studied in hybrid and polymer electrolyte systems.

 

How should LiPF₆ be stored?

Store in a dry, sealed environment and minimize exposure to moisture.

References Data Source From Pubchem

Effect of Spray Distance on the Microstructure and Electrochemical Performance of LiCoO2 Cathodes Fabricated by Atmospheric Plasma Spraying

Publication Name: Journal of Thermal Spray Technology
Publication Date: 2026-03-03
DOI: 10.1007/s11666-026-02182-w

Degradation Assessment of Commercial Lithium-Ion Batteries Recovered from Consumer Electronic Devices

Publication Name: Korean Journal of Chemical Engineering
Publication Date: 2026-03-02
DOI: 10.1007/s11814-026-00681-8

Correction: Edge-hydroxylated graphene enabled covalent interfacial engineering for high-capacity silicon anodes

Publication Name: Journal of Materials Science: Materials in Electronics
Publication Date: 2026-03
DOI: 10.1007/s10854-026-16820-0|10.1007/s10854-026-17097-z