What is Silicon Dioxide (SiO₂) Nanopowder/Nanoparticles Dispersion in 1,2-Propanediol?

Silicon Dioxide (SiO₂) Nanopowder/Nanoparticles Dispersion in 1,2-Propanediol is an amorphous silica-based colloidal dispersion designed for advanced coatings, thermal management, and electronic applications. It provides high surface area, excellent dispersion stability, and chemical resistance, making it essential for nanotechnology, optical films, and energy storage solutions.

Read more 

What is Silicon Dioxide (SiO₂) Nanopowder/Nanoparticles Dispersion in Ethylene Glycol?

Silicon Dioxide (SiO₂) Nanopowder/Nanoparticles Dispersion in Ethylene Glycol is an amorphous silica-based colloidal dispersion designed for advanced coatings, thermal management, and electronic applications. It provides high surface area, excellent dispersion stability, and chemical resistance, making it essential for nanotechnology, optical films, and energy storage solutions.

Read more 

What is Silicon Dioxide (SiO₂) Nanopowder/Nanoparticles Dispersion in Water, Amorphous?

Silicon Dioxide (SiO₂) Nanopowder/Nanoparticles Dispersion in Water is an amorphous silica-based nanomaterial that is widely used in coatings, adhesives, biomedical applications, and electronic components. It provides high surface area, excellent dispersion, and chemical stability, making it an essential material in industrial, medical, and environmental applications.

Read more 

What is Zinc Cobalt Iron Oxide (Zn₀.₅Co₀.₅Fe₂O₄) Nanopowder/Nanoparticles?

Zinc Cobalt Iron Oxide (Zn₀.₅Co₀.₅Fe₂O₄) Nanopowder/Nanoparticles is a magnetic and conductive ferrite nanomaterial used in electronic components, sensors, biomedical applications, and energy storage devices. This spinel-structured oxide offers high magnetic permeability, electrical conductivity, and thermal stability, making it essential for nanotechnology, catalysis, and functional coatings.

Read more 

What is Indium Tin Oxide (ITO) Nanopowder/Nanoparticles?

Indium Tin Oxide (ITO) Nanopowder/Nanoparticles is a highly conductive and transparent metal oxide material used in electronics, display technology, photovoltaics, and sensor applications. It offers excellent optical transparency, electrical conductivity, and chemical stability, making it essential for touchscreens, OLED displays, solar cells, and EMI shielding.

Read more 

What is Carbon Nanotubes-based Conductive Additives for Lithium-Ion Battery?

Carbon Nanotubes (CNTs)-based Conductive Additives are high-performance nanomaterials designed to improve the electrical conductivity, charge transfer efficiency, and cycle stability of lithium-ion batteries (LIBs). These additives enhance the electrode structure, reduce resistance, and optimize energy storage performance, making them essential in next-generation energy storage solutions.

Read more 

What is Carbon Black & Carbon Nanotube Mixed?

Carbon Black & Carbon Nanotube (CNT) Mixed material is a hybrid conductive nanomaterial that combines high-purity carbon black with carbon nanotubes (CNTs). This mixture is engineered for enhanced electrical conductivity, thermal stability, and mechanical reinforcement, making it an essential material in batteries, coatings, conductive polymers, EMI shielding, and advanced composite applications.

Read more 

What is CNTs-High Impact Polystyrene Resin Matrix?

CNTs-High Impact Polystyrene (HIPS) Resin Matrix is a composite material that combines carbon nanotubes (CNTs) with high-impact polystyrene (HIPS) to create a high-strength, conductive, and durable polymer matrix. This advanced nanocomposite is widely used in electronics, automotive components, structural materials, EMI shielding, and energy storage applications due to its enhanced mechanical properties, thermal stability, and electrical conductivity.

Read more 

What is Cellulose Nanocrystal (Nanocrystalline Cellulose, CNC)?

Cellulose Nanocrystal (CNC), also known as Nanocrystalline Cellulose, is a biodegradable and renewable nanomaterial derived from natural cellulose sources such as wood, cotton, and plant fibers. It exhibits high strength, lightweight properties, and excellent dispersibility, making it a key material in bioplastics, coatings, composites, biomedical applications, and energy storage systems.

Read more 

What is 304SS Coin Cell Conical Spring for CR2032?

The 304SS Coin Cell Conical Spring for CR2032 is a high-performance stainless steel component designed for secure battery contact, pressure stability, and long-term durability in coin cell applications. It is used primarily in lithium-ion coin cells, electronic devices, medical equipment, and energy storage systems to ensure consistent electrical conductivity and battery retention.

Read more 

What is Graphene Oxide Dispersion?

Graphene Oxide (GO) Dispersion is a stable suspension of graphene oxide nanoparticles in a liquid medium. It exhibits high conductivity, mechanical strength, and excellent dispersibility, making it a key material in electronics, coatings, energy storage, biomedical applications, and composite materials.

Read more 

What is Carbon Black Powder?

Carbon Black Powder is a fine black powder composed of elemental carbon, widely used for reinforcement, pigmentation, conductivity, and UV protection. It is produced through the controlled combustion of hydrocarbons and is essential in rubber, plastics, coatings, inks, batteries, and electronic applications.

Read more 

What is Europium (Eu) Micron Powder?

Europium (Eu) Micron Powder is a rare earth metal powder known for its phosphorescent, optical, and catalytic properties. It is widely used in phosphors, electronics, nuclear control rods, and magnetic applications due to its unique luminescence and high neutron absorption capability.

Read more 

What is Expandable Graphite?

Expandable Graphite is a modified form of natural graphite that expands when exposed to heat, making it a crucial material for flame retardants, energy storage, gaskets, sealing materials, and thermal management applications. It offers high thermal conductivity, chemical stability, and superior flame-resistant properties.

Read more