Graphene Nanoplatelets (GNP) TCI G0499 are advanced nanomaterials composed of thin graphene layers with a thickness ranging from 2 to 10 nm and a width of approximately 5 micrometers. These materials are essential in modern laboratory research, particularly in the fields of materials science and chemistry, where they are used to develop new composite materials, sensors, and electrode components. Due to their unique two-dimensional structure, GNP offer exceptional mechanical, electrical, and thermal properties that make them highly valuable for experimental applications. Their versatility and performance have made them a go-to material for researchers seeking high-quality nanomaterials for innovative projects.
The exceptional properties of TCI G0499 GNP include high electrical conductivity, chemical stability, and a large surface area, which contribute to their effectiveness in various scientific applications. These characteristics allow them to interact efficiently with different materials, enabling the creation of advanced composites and functional coatings. Additionally, their lightweight nature makes them ideal for applications where minimizing weight is crucial. The combination of these features ensures that GNP TCI G0499 is a preferred choice for researchers aiming to explore the potential of graphene-based materials in both fundamental and applied research.
In Indonesian laboratories, TCI G0499 GNP are widely used in research related to energy, electronics, and composite materials. Many research institutions and universities incorporate these materials into their experimental workflows to develop new technologies and materials. Their availability and performance make them a reliable choice for scientific investigations in the region, supporting innovation and progress in materials science.
- Graphene-based composites benefit from the high electrical conductivity and mechanical strength of GNP, enhancing the performance of polymer and ceramic matrices.
- Electrode materials in batteries and supercapacitors utilize GNP for their excellent charge transfer properties and stability under electrochemical conditions.
- Sensor development leverages the large surface area and sensitivity of GNP to detect changes in environmental conditions such as temperature, pressure, and gas composition.
- Energy storage research employs GNP to improve the efficiency and capacity of lithium-ion batteries and other energy storage systems.
- Material characterization studies use GNP to investigate the behavior of nanomaterials under different physical and chemical environments.
| 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 direct sunlight and moisture |
Graphene Nanoplatelets should be stored in a cool, dry environment to prevent degradation and maintain their structural integrity. It is recommended to use sealed containers to avoid exposure to moisture and contaminants. Due to their fine particle size, GNP can become airborne, so proper ventilation and the use of personal protective equipment are essential during handling. These materials should be kept away from heat sources and incompatible substances to ensure safety. In laboratory settings, it is important to follow standard operating procedures for handling nanomaterials to minimize risks and ensure compliance with safety regulations. Proper storage and handling practices help preserve the quality and performance of GNP TCI G0499 for reliable experimental results.
—