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Sku SC15-5145_5_G
US-Strem
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Product Information

Product Name
n-Tetradecylphosphonic acid, min. 97% TDPA
Brand Name
US-Strem
Product Number
15-5145
CAS
4671-75-4
Certificate of Analysis (COA)​
COA not found

General Information

PubChem CID
78401
IUPAC Name
tetradecylphosphonic acid
InChI Key
BVQJQTMSTANITJ-UHFFFAOYSA-N
SMILES
CCCCCCCCCCCCCCP(=O)(O)O

Description

Product Introduction

Tetradecylphosphonic Acid (CAS No. 4671-75-4) is a long-chain alkylphosphonic acid containing a C14 hydrophobic alkyl chain and a phosphonic acid functional group. Its amphiphilic molecular structure combines a strongly coordinating phosphonic acid head group with a hydrophobic alkyl chain.

Tetradecylphosphonic Acid is particularly useful in surface chemistry, nanomaterials, semiconductor materials, molecular self-assembly, surface functionalization, and advanced materials research.

The phosphonic acid group has strong affinity for a variety of metal and metal-oxide surfaces, making TDPA a useful surface modifier and ligand for controlling the interfacial properties of inorganic materials. Commercial research-grade material is commonly supplied at approximately 98% purity.

 

Mechanism / Principle

Surface Coordination and Functionalization

Tetradecylphosphonic Acid can interact strongly with metal and metal-oxide surfaces through its phosphonic acid group.

In surface-modification research:

  • The phosphonic acid group coordinates with surface metal sites.
  • The long C14 alkyl chain provides hydrophobic surface characteristics.
  • Surface adsorption can alter wettability and interfacial energy.
  • Molecular organization can produce ordered organic layers on inorganic substrates.
  • Surface functionalization can improve compatibility between inorganic materials and organic phases.

This combination makes TDPA valuable for surface passivation, molecular self-assembly, interface engineering, and nanomaterial surface modification.

 

Key Research Applications

1. Surface Functionalization

Tetradecylphosphonic Acid is used to modify inorganic surfaces and introduce hydrophobic organic functionality.

Applications include:

  • Metal-oxide surface modification
  • Surface passivation
  • Hydrophobic surface preparation
  • Interface engineering
  • Surface energy control

 

2. Nanomaterial Surface Modification

The phosphonic acid group can strongly interact with metal and metal-oxide nanomaterials.

Applications include:

  • Nanoparticle functionalization
  • Colloidal nanomaterials
  • Nanocrystal surface modification
  • Nanoparticle stabilization
  • Surface ligand research

 

3. Semiconductor Materials

TDPA can be used in semiconductor and electronic-material research where controlled surface chemistry is required.

Applications include:

  • Semiconductor surface modification
  • Nanocrystal surface passivation
  • Electronic-material interfaces
  • Thin-film surface engineering
  • Semiconductor nanomaterials

 

4. Molecular Self-Assembly

The combination of a polar phosphonic acid head group and a long hydrophobic chain makes Tetradecylphosphonic Acid suitable for studying organized molecular layers.

Applications include:

  • Self-assembled monolayers
  • Molecular organization
  • Surface adsorption
  • Interfacial chemistry
  • Functional molecular films

 

5. Surface Wettability and Interface Engineering

Tetradecylphosphonic Acid can alter the surface properties of inorganic substrates.

Applications include:

  • Contact-angle studies
  • Hydrophobic coatings
  • Surface-energy modification
  • Organic/inorganic interfaces
  • Functional coatings

 

6. Materials Chemistry

TDPA is useful for developing functional materials with controlled surface and interfacial properties.

Applications include:

  • Advanced coatings
  • Hybrid organic–inorganic materials
  • Functional nanomaterials
  • Surface-active materials
  • Interface-controlled materials

 

Advantages

  • Long-chain alkylphosphonic acid structure
  • Strong affinity for many metal-oxide surfaces
  • Suitable for surface functionalization
  • Useful for hydrophobic surface modification
  • Applicable to nanomaterial research
  • Suitable for semiconductor surface engineering
  • Useful for molecular self-assembly studies
  • Effective tool for organic/inorganic interface research

 

Storage & Handling

  • Store in a tightly sealed container.
  • Keep in a cool, dry environment.
  • Protect from moisture.
  • Commercial specifications commonly recommend storage at 2–8°C
  • Minimize exposure to atmospheric humidity during handling.
  • Avoid breathing dust.
  • Avoid contact with skin and eyes.
  • Use appropriate laboratory personal protective equipment.
  • Follow the product-specific SDS for detailed safety and handling requirements.

 

Research Areas

Researchers working in the following fields may benefit from Tetradecylphosphonic Acid (CAS No. 4671-75-4):

  • Surface chemistry
  • Nanomaterials
  • Semiconductor materials
  • Materials science
  • Molecular self-assembly
  • Interface engineering
  • Nanoparticle research
  • Thin-film materials
  • Functional coatings
  • Organic–inorganic hybrid materials

FAQ

Q1: What is Tetradecylphosphonic Acid?

A: Tetradecylphosphonic Acid is a long-chain alkylphosphonic acid with the CAS number 4671-75-4 and molecular formula C₁₄H₃₁O₃P.

 

Q2: What is Tetradecylphosphonic Acid used for?

A: It is mainly used in surface functionalization, nanomaterial modification, semiconductor research, molecular self-assembly, and interface engineering.

 

Q3: What is the molecular weight of Tetradecylphosphonic Acid?

A: The molecular weight is 278.37 g/mol.

 

Q4: What is TDPA?

A: TDPA is a commonly used abbreviation for Tetradecylphosphonic Acid.

 

Q5: Can Tetradecylphosphonic Acid modify metal-oxide surfaces?

A: Yes. The phosphonic acid group has strong surface-binding characteristics and is useful for modifying metal and metal-oxide interfaces.

 

Q6: Is Tetradecylphosphonic Acid used in nanomaterials research?

A: Yes. It can function as a surface ligand or modifier for nanocrystals, nanoparticles, and other inorganic nanomaterials.

 

Q7: What is the physical form of Tetradecylphosphonic Acid?

A: It is generally supplied as a white to off-white crystalline powder.

 

Q8: How should Tetradecylphosphonic Acid be stored?

A: Store tightly sealed in a cool, dry environment and protect from moisture. Commercial suppliers commonly recommend 2–8°C storage.

References Data Source From Pubchem

Quantum Dots: Synthesis, Characterization, and Applications

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DOI: 10.1007/s10895-025-04598-z

Mineral oils modified with CdSeTe QDs for improved stability and dielectric performance in high-voltage applications

Publication Name: Journal of Nanoparticle Research
Publication Date: 2025-07
DOI: 10.1007/s11051-025-06389-w

Biosensing approaches in body fluids using extended-gate-type organic field-effect transistor enzymatic sensors

Publication Name: Analytical sciences : the international journal of the Japan Society for Analytical Chemistry
Publication Date: 2025-04-05
DOI: 10.1007/s44211-025-00750-8

Revealing the effect of hybrid oxide coatings on copper catalysts for CO 2 electroreduction

Publication Name: Rare Metals
Publication Date: 2025-03-03
DOI: 10.1007/s12598-025-03236-8