Timothy M. Banks Raman Spectroscopy study and NanoIndentor study on the effects of high pressures on...

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Timothy M. Banks Raman Spectroscopy study Raman Spectroscopy study and NanoIndentor study on and NanoIndentor study on the effects of high the effects of high pressures on pressures on Hexagonal Boron Nitride Hexagonal Boron Nitride

Transcript of Timothy M. Banks Raman Spectroscopy study and NanoIndentor study on the effects of high pressures on...

Page 1: Timothy M. Banks Raman Spectroscopy study and NanoIndentor study on the effects of high pressures on Hexagonal Boron Nitride.

Timothy M. Banks

Raman Spectroscopy study and Raman Spectroscopy study and NanoIndentor study on the effects NanoIndentor study on the effects

of high pressures on of high pressures on

Hexagonal Boron NitrideHexagonal Boron Nitride

Page 2: Timothy M. Banks Raman Spectroscopy study and NanoIndentor study on the effects of high pressures on Hexagonal Boron Nitride.

ExperimentExperiment

• PurposePurpose

• BackgroundBackground

• TechniquesTechniques

• Results Results

Page 3: Timothy M. Banks Raman Spectroscopy study and NanoIndentor study on the effects of high pressures on Hexagonal Boron Nitride.

PurposePurpose

• Super-hard materialSuper-hard material

• Determine Raman Scattering effectsDetermine Raman Scattering effects

• Determine hardness Determine hardness

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Diamond Anvil CellDiamond Anvil Cell

• ApplicationsApplications

• VarietiesVarieties

• Alabama CellAlabama Cell

Page 5: Timothy M. Banks Raman Spectroscopy study and NanoIndentor study on the effects of high pressures on Hexagonal Boron Nitride.

Diamond Anvil CellDiamond Anvil Cell

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Raman SpectroscopyRaman Spectroscopy

• Raman Effect

• C.V. Raman

• Rayleigh scattering

• Photons

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Page 8: Timothy M. Banks Raman Spectroscopy study and NanoIndentor study on the effects of high pressures on Hexagonal Boron Nitride.

Hexagonal Boron Nitride

• “White Graphite”

• First discovered in 19th century

• Chemical composition

Page 9: Timothy M. Banks Raman Spectroscopy study and NanoIndentor study on the effects of high pressures on Hexagonal Boron Nitride.

Hexagonal Boron NitrideHexagonal Boron Nitride

• APPLICATIONS– Industrial– Cosmetic– Chemical

Page 10: Timothy M. Banks Raman Spectroscopy study and NanoIndentor study on the effects of high pressures on Hexagonal Boron Nitride.

Hexagonal Boron Nitride

SEM-image (secondary electron image) of hexagonal boron nitride. 

Page 11: Timothy M. Banks Raman Spectroscopy study and NanoIndentor study on the effects of high pressures on Hexagonal Boron Nitride.

Experimental Procedure

• Prepare Gasket

• Pressure MeasurementP=380.8 [ ]5-1)GPa

• Raman Spectra

• NanoIndenter XP

0

Page 12: Timothy M. Banks Raman Spectroscopy study and NanoIndentor study on the effects of high pressures on Hexagonal Boron Nitride.

Pressures Reached

• 8 GPa (L1)

• 42 GPa (L2)

• 29 GPa (L3)

• 13 GPa (L4)

Page 13: Timothy M. Banks Raman Spectroscopy study and NanoIndentor study on the effects of high pressures on Hexagonal Boron Nitride.

Pressure vs. Photon Energy

Pressure dependence of Raman-active Phonons in hBN

y = 3.8068x + 1368.9

R2 = 0.9928

1360

1370

1380

1390

1400

1410

1420

1430

0 5 10 15

Pressure (GPa)

Ph

on

on

En

erg

y (

cm

-1)

L1

L2

L3

L4

Linear (L4)

Pressure dependence of Raman-active Phonons in hBN

y = 3.8068x + 1368.9

R2 = 0.9928

1360

1370

1380

1390

1400

1410

1420

1430

0 5 10 15

Pressure (GPa)

Ph

on

on

En

erg

y (

cm

-1)

L1

L2

L3

L4

Linear (L4)

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Results

• Raman Spectra

• Spring Constant

• NanoIndentor Results

Page 15: Timothy M. Banks Raman Spectroscopy study and NanoIndentor study on the effects of high pressures on Hexagonal Boron Nitride.

Spring Constant vs. Pressurek vs. P

y = -0.1471x2 + 8.9174x + 1367.7

R2 = 0.97461.36E+03

1.38E+03

1.40E+03

1.42E+03

1.44E+03

1.46E+03

1.48E+03

0 2 4 6 8 10 12 14

Pressure (GPa)

k=

w^

2m

(K

g/s

2 )

k=w^2m

Poly. (k=w^2m)

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Summary & Conclusions

• Raman Scattering

• Hardness

Page 17: Timothy M. Banks Raman Spectroscopy study and NanoIndentor study on the effects of high pressures on Hexagonal Boron Nitride.

Acknowledgements

• It is with great pride and gratitude that I would like to thank the following for their guidance and support: Dr. Yogesh K. Vohra, Nenad Velisavljevic, Reed Patterson, Ginger Hughes, UAB Physics Department, and the National Science Foundation.

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The EndThe End

Thank YouThank You