TCI

CAS 1034343-98-0

Graphene Nanoplatelets 5nm(thick), 170m2/g(surface area), 18micro m(diameter) TCI G0675

Graphene Nanoplatelets 5nm(thick), 170m2/g(surface area), 18micro m(diameter) TCI G0675
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Graphene Nanoplatelets (GNP) TCI G0675 are advanced nanocarbon materials that play a crucial role in modern laboratory research. These nanostructures consist of thin graphene layers with a thickness of approximately 5nm, offering exceptional surface area of 170m²/g. Their unique physical and chemical properties make them indispensable in materials science, enabling the enhancement of electrical, thermal, and mechanical properties in composite materials. In the laboratory, GNP are used to develop new materials, improve electronic devices, and explore biomedical applications. Their versatility and performance make them a key component in various scientific investigations.

The high electrical conductivity, thermal stability, and mechanical strength of GNP make them a preferred choice for researchers. These properties allow GNP to be integrated into diverse applications, from sensor development to advanced composite formulations. The small size of GNP, with a diameter of about 18 micrometers, ensures uniform dispersion in both liquid and solid matrices, enhancing their usability in a wide range of experimental setups. This combination of characteristics supports innovation in fields such as nanotechnology, energy storage, and biomedical engineering.

In Indonesian laboratories, GNP TCI G0675 are widely used in research focused on material development, high-tech applications, and energy solutions. Their ability to improve the performance of composite materials makes them a valuable resource for scientists working on cutting-edge projects. The material’s reliability and consistent performance ensure that it remains a key component in both academic and industrial research settings.

  • Graphene-based composite development: GNP TCI G0675 enhance mechanical and electrical properties of polymer and ceramic matrices, making them ideal for advanced material synthesis.
  • Organic electronics research: The high electrical conductivity of GNP supports the fabrication of flexible and efficient organic electronic devices.
  • Medical device innovation: GNP’s biocompatibility and thermal stability make them suitable for use in biomedical applications such as biosensors and drug delivery systems.
  • Thermal management solutions: The superior thermal conductivity of GNP enables their use in heat dissipation systems for electronic components and industrial equipment.
  • Nanotechnology and material science studies: GNP provide a versatile platform for exploring new nanomaterials and their potential applications in various scientific fields.

Brand TCI
CAS number 1034343-98-0
Molecular formula
Purity
Category Materials Science > Nanocarbon Materials > Graphenes and Graphene Oxides (GOs)
Pack sizes
Physical form Graphene Nanoplatelets
Storage Store in a cool, dry place away from moisture and direct sunlight

GNP TCI G0675 should be stored in a cool, dry environment to maintain their structural integrity and prevent degradation. It is recommended to use sealed containers to avoid exposure to moisture and contaminants. Since these materials are fine and can generate static charge, proper handling with grounded equipment is essential to minimize the risk of dust dispersion. In a laboratory setting, it is important to follow standard safety protocols when working with nanomaterials, including the use of appropriate personal protective equipment. Regular inspection of storage conditions ensures the material remains in optimal condition for research applications.