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Nanotechnology. Research and technology development at the atomic, molecular or macromolecular levels, in the length scale of approximately 1 - 100 nanometer.

Dec 14, 2015

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Page 1: Nanotechnology. Research and technology development at the atomic, molecular or macromolecular levels, in the length scale of approximately 1 - 100 nanometer.

Nanotechnology

Page 2: Nanotechnology. Research and technology development at the atomic, molecular or macromolecular levels, in the length scale of approximately 1 - 100 nanometer.

Research and technology development at the atomic, molecular or macromolecular levels, in the length scale of approximately 1 - 100 nanometer range, to provide a fundamental understanding of phenomena and materials at the nanoscale and to create and use structures, devices and systems that have novel properties and functions because of their small and/or intermediate size. The novel and differentiating properties and functions are developed at a critical length scale of matter typically under 100 nm.

Nanotechnology definition (NSET, February 2000)

Page 3: Nanotechnology. Research and technology development at the atomic, molecular or macromolecular levels, in the length scale of approximately 1 - 100 nanometer.

What makes nano so much different from micro?

• Quantum phenomena brought about by reduction in dimensionality induce new physical and chemical properties.

Page 4: Nanotechnology. Research and technology development at the atomic, molecular or macromolecular levels, in the length scale of approximately 1 - 100 nanometer.

Nano implies strong reduction in a system dimensionality in either one, two or all three dimensions.

In either of cases it includes atomic and/or molecular manipulation.

In some cases it brings us to cohabitation of classical and quantum effects.

Page 5: Nanotechnology. Research and technology development at the atomic, molecular or macromolecular levels, in the length scale of approximately 1 - 100 nanometer.

Wave nature of particles

C60

Vienna group (Arndt et al), PRL 91(2003)090408, Nature 401(1999)680

Page 6: Nanotechnology. Research and technology development at the atomic, molecular or macromolecular levels, in the length scale of approximately 1 - 100 nanometer.

µmµ

m

µm

nm

µm

nm

nm

Page 7: Nanotechnology. Research and technology development at the atomic, molecular or macromolecular levels, in the length scale of approximately 1 - 100 nanometer.

FulerenesNano-tubes

Page 8: Nanotechnology. Research and technology development at the atomic, molecular or macromolecular levels, in the length scale of approximately 1 - 100 nanometer.

Carbon nano-tube

Page 9: Nanotechnology. Research and technology development at the atomic, molecular or macromolecular levels, in the length scale of approximately 1 - 100 nanometer.

SINTEZA SWNT: konopci

Page 10: Nanotechnology. Research and technology development at the atomic, molecular or macromolecular levels, in the length scale of approximately 1 - 100 nanometer.

Filled NT

SWNT filled with C60 molecules

Forro, EPN 2001Moriarty, ROPP 2001

Page 11: Nanotechnology. Research and technology development at the atomic, molecular or macromolecular levels, in the length scale of approximately 1 - 100 nanometer.

Mechanical properties of NT

Page 12: Nanotechnology. Research and technology development at the atomic, molecular or macromolecular levels, in the length scale of approximately 1 - 100 nanometer.

“NT HDP transistor chip from CONSTRUCTIVE DESTRUCTION"

In order to construct a dense-array of semiconducting nanotubes, the metallic nanotubes must be destroyed.

Here is how it works: •stick ropes of metallic and semiconducting NT on a SiO-wafer.•form electrodes (metal pads) on the wafer over the NT. These electrodes act as a switch to turn the semiconducting NT on and off.•Using the Si wafer itself as an electrode "switch-off" the semiconducting NT preventing any current from traveling through them. •A voltage is applied to the wafer, destroying only the metallic nanotubes.

The result is a dense array of unharmed, working semiconducting nanotube transistors that can be used to build logic circuits like those found in computer chips. Avouris et al. Science 2001

Page 13: Nanotechnology. Research and technology development at the atomic, molecular or macromolecular levels, in the length scale of approximately 1 - 100 nanometer.

NT as field emitters1999

2001

Forro, EPN 2001

Page 14: Nanotechnology. Research and technology development at the atomic, molecular or macromolecular levels, in the length scale of approximately 1 - 100 nanometer.

Wave functions

Nature, 2001

Page 15: Nanotechnology. Research and technology development at the atomic, molecular or macromolecular levels, in the length scale of approximately 1 - 100 nanometer.

Wave functions

Page 16: Nanotechnology. Research and technology development at the atomic, molecular or macromolecular levels, in the length scale of approximately 1 - 100 nanometer.

Bonding more atoms together for a single molecule computer

C. Joachim Nanotechnology 13(2002)R1

Even supported by nanotechnologies and nanomaterials, indicators in solid-state integrated electronics, such as the number of transistors, the power dissipation and the number of interconnections per chip, point out that progresses in microelectronics will slow down by 2015–2020. By 2025, the market may demand the exploitation of quantum behaviour in nanoscale systems and the development of a picotechnology in order to put all the power of the computer in a single molecule.

Page 17: Nanotechnology. Research and technology development at the atomic, molecular or macromolecular levels, in the length scale of approximately 1 - 100 nanometer.
Page 18: Nanotechnology. Research and technology development at the atomic, molecular or macromolecular levels, in the length scale of approximately 1 - 100 nanometer.
Page 19: Nanotechnology. Research and technology development at the atomic, molecular or macromolecular levels, in the length scale of approximately 1 - 100 nanometer.
Page 20: Nanotechnology. Research and technology development at the atomic, molecular or macromolecular levels, in the length scale of approximately 1 - 100 nanometer.

C28H4

Page 21: Nanotechnology. Research and technology development at the atomic, molecular or macromolecular levels, in the length scale of approximately 1 - 100 nanometer.
Page 22: Nanotechnology. Research and technology development at the atomic, molecular or macromolecular levels, in the length scale of approximately 1 - 100 nanometer.

99mTc@C70

Page 23: Nanotechnology. Research and technology development at the atomic, molecular or macromolecular levels, in the length scale of approximately 1 - 100 nanometer.

Li2@C70

Page 24: Nanotechnology. Research and technology development at the atomic, molecular or macromolecular levels, in the length scale of approximately 1 - 100 nanometer.

C60(OH)24

Page 25: Nanotechnology. Research and technology development at the atomic, molecular or macromolecular levels, in the length scale of approximately 1 - 100 nanometer.
Page 26: Nanotechnology. Research and technology development at the atomic, molecular or macromolecular levels, in the length scale of approximately 1 - 100 nanometer.
Page 27: Nanotechnology. Research and technology development at the atomic, molecular or macromolecular levels, in the length scale of approximately 1 - 100 nanometer.
Page 28: Nanotechnology. Research and technology development at the atomic, molecular or macromolecular levels, in the length scale of approximately 1 - 100 nanometer.
Page 29: Nanotechnology. Research and technology development at the atomic, molecular or macromolecular levels, in the length scale of approximately 1 - 100 nanometer.
Page 30: Nanotechnology. Research and technology development at the atomic, molecular or macromolecular levels, in the length scale of approximately 1 - 100 nanometer.

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