microscale and si wafer. from macro to nano… scaling laws of small laws of physics make the small...

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Microscale and Si Wafer

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Page 1: Microscale and Si Wafer. From macro to nano… Scaling laws of small  Laws of physics make the small world look different

Microscaleand

Si Wafer

Page 2: Microscale and Si Wafer. From macro to nano… Scaling laws of small  Laws of physics make the small world look different

From macro to nano…

Page 3: Microscale and Si Wafer. From macro to nano… Scaling laws of small  Laws of physics make the small world look different

Scaling laws of small

Laws of physics make the small world look different.

Page 4: Microscale and Si Wafer. From macro to nano… Scaling laws of small  Laws of physics make the small world look different

Some small scale phenomenaSurface tension

Surface tension force for 100 µm opening = 5.7 µN Typical force for 100 µm device is 10 nN Surface tension over 500x greater!

Page 5: Microscale and Si Wafer. From macro to nano… Scaling laws of small  Laws of physics make the small world look different

Some small scale phenomenaLaminar flow

Reynolds Number (Re)scales as length. Typical Reynolds Number for 100 µm device is Re ~ 0.1 Onset of turbulence is at Re ~ 2000

Page 6: Microscale and Si Wafer. From macro to nano… Scaling laws of small  Laws of physics make the small world look different

Some small scale phenomena Surface area/volume

Surface area to volume is large at small scales. Mass flow saturates quickly in small volumes. Equilibrium can be reached very quickly.

Mass flows through small devices quickly.

Hard to maintain concentration gradient.

Micro-scale systems must utilize physical barriers (cell walls) to maintain concentration gradients. Surface contamination is a serious issue at small scales.

Page 7: Microscale and Si Wafer. From macro to nano… Scaling laws of small  Laws of physics make the small world look different

Some small scale phenomena Loss of continuity

At sizes below ~50 µm, granularity of nature becomes relevant.

Many bulk-scale physical laws no longer accurate.

Typical grain size is ~10 µm. Affects physical, thermal and electrical properties. Mean free path of N2 at atmosphere is 60 nm. Affects dynamics in air. Example: Paschen effect.

Page 8: Microscale and Si Wafer. From macro to nano… Scaling laws of small  Laws of physics make the small world look different

Micromachining Materials

Substrates: • Silicon • GaAs • Other elemental or compound semiconductors • Metals (bulk and foils) • Glasses • Quartz • Sapphire • Ceramics • Plastics, polymers and other organics

Page 9: Microscale and Si Wafer. From macro to nano… Scaling laws of small  Laws of physics make the small world look different

Silicon Crystallography

Page 10: Microscale and Si Wafer. From macro to nano… Scaling laws of small  Laws of physics make the small world look different

Cubic Lattices

Simplest arrangements of atoms in three dimension in

which the unit cell is a cubic volume

• Simple Cubic (sc) structure has an atom located at

each corner of the unit cell

• Body Centered Cubic (bcc) has an additional atom at

the center of the cube

• Face Centered Cubic (fcc) unit cell has atoms at the

eight corners and on the six faces.

Page 11: Microscale and Si Wafer. From macro to nano… Scaling laws of small  Laws of physics make the small world look different

Cubic Lattices

How is the arrangement of atoms in Silicon?

• Silicon has fcc + (1/4x, 1/4y, 1/4z) fcc structure

Page 12: Microscale and Si Wafer. From macro to nano… Scaling laws of small  Laws of physics make the small world look different

Si crystal structure

Page 13: Microscale and Si Wafer. From macro to nano… Scaling laws of small  Laws of physics make the small world look different

Planes and directions

Lattice vector R= r*a+ s*b+ t*c, r, s & t are integers We can define a plane in a crystal lattice with three integer,

called Miller indices

Page 14: Microscale and Si Wafer. From macro to nano… Scaling laws of small  Laws of physics make the small world look different

Planes and directions

[1 0 0 ] [1 1 0 ]

[1 1 1 ]

Page 15: Microscale and Si Wafer. From macro to nano… Scaling laws of small  Laws of physics make the small world look different

Czochralski Method (CZ)

Page 16: Microscale and Si Wafer. From macro to nano… Scaling laws of small  Laws of physics make the small world look different

Si-Wafer fabriaction

Page 17: Microscale and Si Wafer. From macro to nano… Scaling laws of small  Laws of physics make the small world look different
Page 18: Microscale and Si Wafer. From macro to nano… Scaling laws of small  Laws of physics make the small world look different

Floating Zone Method (FZ)

Page 19: Microscale and Si Wafer. From macro to nano… Scaling laws of small  Laws of physics make the small world look different

懸浮帶區法 (FZ法 )

Page 20: Microscale and Si Wafer. From macro to nano… Scaling laws of small  Laws of physics make the small world look different

CZ法和 FZ法比較

Page 21: Microscale and Si Wafer. From macro to nano… Scaling laws of small  Laws of physics make the small world look different

CZ法和 FZ法比較

Page 22: Microscale and Si Wafer. From macro to nano… Scaling laws of small  Laws of physics make the small world look different

晶圓的備製

Page 23: Microscale and Si Wafer. From macro to nano… Scaling laws of small  Laws of physics make the small world look different

晶塊修整

Page 24: Microscale and Si Wafer. From macro to nano… Scaling laws of small  Laws of physics make the small world look different
Page 25: Microscale and Si Wafer. From macro to nano… Scaling laws of small  Laws of physics make the small world look different
Page 26: Microscale and Si Wafer. From macro to nano… Scaling laws of small  Laws of physics make the small world look different
Page 27: Microscale and Si Wafer. From macro to nano… Scaling laws of small  Laws of physics make the small world look different

Miller indices indicated by ground edges called “flats”. “n”-type and “p”-type refer to

“doping”. N means “negative” (phosphorous) and P means “positive” (boron).

Page 28: Microscale and Si Wafer. From macro to nano… Scaling laws of small  Laws of physics make the small world look different

Clean Room

Page 29: Microscale and Si Wafer. From macro to nano… Scaling laws of small  Laws of physics make the small world look different

Clean room classifications and applications

Page 30: Microscale and Si Wafer. From macro to nano… Scaling laws of small  Laws of physics make the small world look different

Clear room classification

�Class 1000: fewer than 1,000 particles (>0.5 m) in 1 cubic foot of airμ Class 100: fewer than 1,00 particles (>0.5 m) in 1 cubic foot of air� μ