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Nanoparticles

Nanoparticles are really tiny

  • They have a diameter between 1nm(1x10-9) and 100nm(1x10-7)

  • They have a large surface area to volume ration

    • The surface area to volume ratio is an important factor as it can affect the way that a particles behaves

      • Surface area to volume ratio = surface area / volume

    • As particles decrease in size, the size of their surface area increases in relation to their volume, which causes the surface area to volume ratio to increase

    • Nanoparticles have a very high surface area to volume ratio, this means the surface area is very large compared to the volume

    • This can cause the properties of a material to be different depending on whether it’s a nano[article or in bulk

      • For example, you’ll often need less of a material that’s made up of nanoparticles to work as an effective catalyst compared to a material made up of normal sized particles(containing billions of atoms rather than a few hundred)

Comparing sizes

  • The table shows the sizes of nanoparticles compared to other types of particles.

Particles type

Diameter size range

Atoms and small molecules

0.1nm

Nanoparticles

1 to 100nm

Fine particles

100 to 2,500nm

Coarse particles

2,500 to 10,000nm

Thickness of paper

100,000nm

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Nanoparticles

Nanoparticles are really tiny

  • They have a diameter between 1nm(1x10-9) and 100nm(1x10-7)

  • They have a large surface area to volume ration

    • The surface area to volume ratio is an important factor as it can affect the way that a particles behaves

      • Surface area to volume ratio = surface area / volume

    • As particles decrease in size, the size of their surface area increases in relation to their volume, which causes the surface area to volume ratio to increase

    • Nanoparticles have a very high surface area to volume ratio, this means the surface area is very large compared to the volume

    • This can cause the properties of a material to be different depending on whether it’s a nano[article or in bulk

      • For example, you’ll often need less of a material that’s made up of nanoparticles to work as an effective catalyst compared to a material made up of normal sized particles(containing billions of atoms rather than a few hundred)

Comparing sizes

  • The table shows the sizes of nanoparticles compared to other types of particles.

Particles type

Diameter size range

Atoms and small molecules

0.1nm

Nanoparticles

1 to 100nm

Fine particles

100 to 2,500nm

Coarse particles

2,500 to 10,000nm

Thickness of paper

100,000nm