CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al....

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CNT – Characteristics and Applications
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Transcript of CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al....

Page 1: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)

CNT – Characteristics and Applications

Page 2: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)
Page 3: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)
Page 4: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)
Page 5: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)

Y. Saito et al. Phys. Rev. 48 1907 (1993)A. Thess et al. Science 273 483 (1996)

Page 6: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)
Page 7: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)
Page 8: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)
Page 9: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)
Page 10: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)
Page 11: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)
Page 12: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)

Young’s Modulus

Page 13: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)
Page 14: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)
Page 15: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)

The combination of equilibrium and nonequilibrium molecular dynamicssimulations with accurate carbon potential is used to predict the thermal conductivity of single wall carbon nanotubes as well as its dependence on the temperature.75 Based on this calculation, extremely high thermal conductivity (6600 W/m-K) of SWNT is obtained. This value is much higher than that of planar graphite and diamond. The high conductivity of SWNT is believed coming from the large phonon mean free path in 1-D structure of SWNT. The heat capacity and phonon mean free path govern the temperature dependence of SWNT’s thermal conductivity. At low temperatures, phonon mean free path is nearly constant, and the temperature dependence of thermal conductivity follows that of the specific heat. At high temperatures, where the specific heat is constant, conductivity decreases as the phonon mean free path becomes smaller due to umklapp processes. Therefore, the trend is such that the result appears to show that the thermal conductivity increases with the temperature at low temperatures, passes a peak, and then decreases with further increase in temperature.

Thermal Conductivity

Page 16: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)

At room temperature, the thermal conductivity of magnetically aligned SWNT bulk film is measured to be greater than 200 W/m k.78

Page 17: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)

and Nanocomposites.

1. Field emission induced luminescence.

2. Luminescence due to bonding with certain polymer and with UV light irradiation.

3. Bright Band Gap Photoluminescence from Unprocessed SWNTs.

Page 18: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)
Page 19: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)

Each carbon atom has six electrons, which occupy 1s2, 2s2, and 2p2 atomic orbital. The core electrons take the 1s2 orbital and they are strongly bonded. The other four valence electrons are weakly bonded. These four valence electrons can readily mix with each other due to the small energy difference of upper 2p and lower 2s energy levels. This process is called hybridization. In carbon, three possible hybridizations are possible: sp, sp2 and sp3. The hybridization determines the chemical, physical, and configurationally properties of carbon materials. sp hybridization is observed in acetylene like materials, sp2 hybridization is observed in ethylene, while sp3 hybridization is seen in methane likestructure. The hybridization and other physical parameters of carbon atom in different dimensional carbon materials are listed in Table 1.2.

sp Hybridization of Carbon

Page 20: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)
Page 21: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)
Page 22: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)
Page 23: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)
Page 24: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)
Page 25: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)

(Linking Chiral Indices and Transport Properties of DWNTs)

Page 26: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)
Page 27: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)
Page 28: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)
Page 29: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)
Page 30: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)

By wrapping a hexagonal sheet with certain cut, geometry of nanotube can be reproduced. Several examples are as follows.

(

Chirality and symmetry of Nanotube

 

(10,10)

(n, m)

n

m

Page 31: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)

Hence, the geometry of nanotube (except for cap region on both ends) can be uniquely determined by the chiral vector of original hexagonal lattice. 

(10, 5)

Page 32: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)
Page 33: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)

Definition of chiral vectors in the hexagonal lattice is

a1

a2

O

(4,-5)

Ch

T

x

y

(6,3)

a1

a2

O

(4,-5)

Ch

T

x

y

(6,3)Chiral vector is defined as using the vectors a1 and a2 for the hexagonal lattice. Note that for the hexagonal lattice a unit cell is made of 2 atoms. Note also depending on textbook, a1 and a2 are defined as 2 vectors with 120 deg. openings.

Page 34: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)

Unit cell of Graphite

Page 35: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)

• With this definition in the figure a1 and a2 can be expressed using the Cartesian coordinate (x, y).

• Here, ac-c is the bond length of carbon atoms. For graphite ac-c = 1.421 Å. This same value is often used for nanotubes. But, probably, ac-c = 1.44 Å is a better approximation for nanotubes. It should really depend on the curvature of the tube. A slightly larger value for more curvature is known.

• Since the length of a1, a2 are both , this a is the unit length. Hence,

a

a

)2

1,

2

3(

)2

1,

2

3(

2

1

a

a

aacc 321 aa

Page 36: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)

• Length of the Chiral vector Ch is the peripheral length of the nanotube: na1 + ma2

• For Armchair nanotube (m = n): • For examples, for (5,5): • , for (10,10): • For zigzag nanotubes (m = 0): • Expls, (10,0): , (16,0):• Hence, the diameter of nanotube dt is

cch naC 3

cch aC 15

cch aC 30

cch naC 310

cch naC 3

cch aC 316

223mnmn

aCd ccht

Page 37: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)

• For armchair (n=m):• For zigzag (m = 0):•

• Possible choice of n and m is explained in the following figure.

• From R. Saito, M. Fujita, G. Dresselhaus, and M. S. Dresselhaus, Electronic Structure of Chiral Graphene Tubules, Appl. Phys. Lett. 60 (18), 1992.

• Here, a red solid point represents metallic nanotube and a black open circle represents semiconductor nanotubes. The condition for the metallic nanotube is: 2n+m=3q (q: integer), or (n-m)/3 is integer.

cct an

d 3

cct an

d 3

Page 38: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)

a1

a2

x

y

(0,0) (1,0) (2,0) (3,0)

(1,1) (2,1)

Zigzag

Armchair

(2,2)

(4,0) (5,0) (6,0)

(3,1) (4,1) (5,1)

(3,2) (4,2) (5,2)

(7,0) (8,0) (9,0)

(6,1) (7,1) (8,1)

(6,2) (7,2) (8,2)

(10,0) (11,0)

(9,1) (10,1)

(9,2) (10,2)

(3,3) (4,3) (5,3) (6,3) (7,3) (8,3) (9,3)

(4,4) (5,4) (6,4) (7,4) (8,4) (9,4)

(5,5) (6,5) (7,5) (8,5)

(6,6) (7,6) (8,6)

(7,7)

a1

a2

x

ya1

a2

x

y

(0,0) (1,0) (2,0) (3,0)

(1,1) (2,1)

Zigzag

Armchair

(2,2)

(4,0) (5,0) (6,0)

(3,1) (4,1) (5,1)

(3,2) (4,2) (5,2)

(7,0) (8,0) (9,0)

(6,1) (7,1) (8,1)

(6,2) (7,2) (8,2)

(10,0) (11,0)

(9,1) (10,1)

(9,2) (10,2)

(3,3) (4,3) (5,3) (6,3) (7,3) (8,3) (9,3)

(4,4) (5,4) (6,4) (7,4) (8,4) (9,4)

(5,5) (6,5) (7,5) (8,5)

(6,6) (7,6) (8,6)

(7,7)

Page 39: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)
Page 40: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)

Rdmnnm /)2()2( 21 aaT

RccRh dmnmnadCT /3/3 22

dofmultipleaismnifd

dofmultipleanotismnifddR 33

3

nddnd R 33, )3/(3 nCT h

cccc annaT 3)3/()3(3

nddnd R ,

cccch annanCT 3/)3(3/3

The unit lattice vector (translational vector) T, perpendicular to the chiral vector is expressed as

The length T is the unit lattice length along the tube axis direction.

Here,

and d is the highest common divisor of (n,m).For armchair (m=n):

,

Then,

For zigzag (m=0): ,

Page 41: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)

)2/(3tan 1 nmm

303/1tan 1

00tan 1

300

The Chiral angle (angle between the chiral vector and the zigzag direction) is defined as

Armchair m = n:

Zigzag m = 0:

For chiral tubes:

Page 42: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)

Rd

nmnmN

)(2 22

nn

n

d

nmnmN

R

23

6)(2 222

nn

n

d

nmnmN

R

22)(2 222

Number of hexagons in a unit cell N is

Armchair m = n:

Zigzag m = 0:

Page 43: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)
Page 44: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)

For One-dimensional DOS for each chiralities,

Sample (10,10)

Page 45: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)
Page 46: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)
Page 47: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)
Page 48: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)
Page 49: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)

Raman spectroscopy is a powerful technique for characterizing SWNT. From Raman study, the diameter, diameter distribution, defects, load transfer state as wellas the electronic state of SWNT can be evaluated. Raman scattering by SWNT has been experimentally shown to be a resonant process associated with allowed opticaltransitions (AOT) between spikes in the 1D electronic density of states (named van Hove singularities), which fall in the visible and near-infrared regions. The energies of the van Hove transitions are found to depend both on thediameter and metallic or semi-conducting character of the tubes.94, 95 When subjected to different lasers as the excitation source, tubes will respond differently.

Raman Spectroscopy

Page 50: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)

Raman Spectroscopy

Page 51: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)
Page 52: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)
Page 53: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)
Page 54: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)
Page 55: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)
Page 56: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)
Page 57: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)

• radial breathing mode (RBM), the disorder induced D-band, the tangential G-band (derived from the graphite like in-plane mode) and G* band (overtone of D band).

Page 58: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)

• The spectrum in the range of 150 to 350 cm-1 is the RBM, and is influenced by the diameter of the nanotubes. Several calculations have related the diameter of the tube with radial breath frequency of Raman spectrum mathematically. or

• However, most of the tubes self-assemble into bundles and radial modes are very sensitive to the nanotube packing. Calculating the RBM frequency considering the van der Waals interactions between the tubes, the following equation was given:97

• By separating the contributions of different diameter tubes to the radial breathing intensity, the diameter distribution of the nanotube can be obtained.

Page 59: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)

• The Raman spectrum in the range of 1250 to 1450 cm-1 is called D band, which is due to the defect on the nanotube. This band can be used to monitor the structure perfection of the nanotubes. Also it can be used to qualitatively characterize the chemical functionalization of the tube. Side wall functionalization damages the tube, increasing the D band intensity.

• The feature in the range of 2500 to 2900 cm-1 also originates from the defect. It is the second order overtone of D band. It is widely used to monitor the load transfer between SWNT and the matrix.

Page 60: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)

G-band• The most important aspect of the G-band is the characteri

stic Raman lineshape, which differs in accordance with whether the nanotube is semi-conducting or metallic. This intrinsic property allows one to readily distinguish between metallic and semi-conducting nanotubes. In case of semi-conducting tube, two Lorentzian features dominate the lineshape but in case of metallic tube, one Lorentzian is replaced by Breit–Wigner–Fano line. Based on the sensitivity of the G-band to the electronic energy state, the position of G-band can be used to monitor the energy state change due to environment. For example, the thermal energy input to the SWNT can lead to the shift of the D-band; the pressure applied on the SWNT will lead the shift of D-band; most importantly, the chemical environment change, such as the doping effect, will also induce the D-band position change.

Page 61: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)
Page 62: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)
Page 63: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)
Page 64: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)
Page 65: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)
Page 66: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)
Page 67: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)
Page 68: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)

Incorporation of CNTs into Devices

Page 69: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)
Page 70: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)
Page 71: CNT – Characteristics and Applications. Y. Saito et al. Phys. Rev. 48 1907 (1993) A. Thess et al. Science 273 483 (1996)
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