Presentation is loading. Please wait.

Presentation is loading. Please wait.

Molecular Crystals. Molecular Crystals: Consist of repeating arrays of molecules and/or ions.

Published bySara Brown Modified over 8 years ago

Similar presentations

Presentation on theme: "Molecular Crystals. Molecular Crystals: Consist of repeating arrays of molecules and/or ions."— Presentation transcript:

1 Molecular Crystals

2 Molecular Crystals: Consist of repeating arrays of molecules and/or ions.

3

4

5 C 17 H 24 NO 2 + Cl -. 3 H 2 O

6

7

8 Although Z = 2, the unit cell contains portions of a number of molecules.

9 Cl -

10

11 H2OH2O

12 H2OH2O Hydrogen bonds Cl OH 2

13

14 Hydrogen bond

15

16 Model with atoms having VDW radii.

17

18

19 C 17 H 24 NO 2 + Cl -. 3 H 2 O Although this material is ionic, the + and - charges are not close enough to contribute to the formation of the crystal.

20 Molecular crystals tend to be held together by forces weaker than chemical bonds. van der Waal’s forces are always a factor. Hydrogen bonding is often present.

21

22 A layer in an ionic solid with ions of similar radii.

23 Metallic crystal – single layer of like sized atoms forms hexagonal array.

24 Second layer can start at a point designated b or c.

25 At this point, the third layer can repeat the first and start at a or it can start at c.

26 Third layer repeats first layer.

27

28 Unit Cell Unit cell volume = V

29 Unit Cell Unit cell volume = V V = abc 1- cos 2  - cos 2  - cos 2  + 2 cos  cos  cos  Note: text page 807 may not be correct.

30 V = abc 1- cos 2  - cos 2  - cos 2  + 2 cos  cos  cos 

31

32 cos 90 o = 0

33 V = abc 1- cos 2  - cos 2  - cos 2  + 2 cos  cos  cos  cos 90 o = 0

34 V = abc 1- cos 2  - cos 2  - cos 2  + 2 cos  cos  cos  cos 90 o = 0 V = abc 1 - cos 2 

35 V = abc 1- cos 2  - cos 2  - cos 2  + 2 cos  cos  cos  cos 90 o = 0 V = abc 1 - cos 2  sin x = 1 - cos 2 x

36 V = abc 1- cos 2  - cos 2  - cos 2  + 2 cos  cos  cos  cos 90 o = 0 V = abc 1 - cos 2  sin x = 1 - cos 2 x V = abc sin 

37 V = abc 1- cos 2  - cos 2  - cos 2  + 2 cos  cos  cos  cos 90 o = 0

38 V = abc 1- cos 2  - cos 2  - cos 2  + 2 cos  cos  cos  cos 90 o = 0

39 V = abc 1- cos 2  - cos 2  - cos 2  + 2 cos  cos  cos  cos 90 o = 0 V = abc

40 V = abc 1- cos 2  - cos 2  - cos 2  + 2 cos  cos  cos 

41 a = b

42 V = abc 1- cos 2  - cos 2  - cos 2  + 2 cos  cos  cos  a = b V = a 2 c

43 V = abc 1- cos 2  - cos 2  - cos 2  + 2 cos  cos  cos 

44

45 V = a 3

46 V = abc 1- cos 2  - cos 2  - cos 2  + 2 cos  cos  cos 

47

48

49

50 V = a 2 c 1- cos 2  - cos 2  - cos 2  + 2 cos  cos  cos 

51

52 V = a 2 c 1- cos 2 

53 V = a 2 c sin 

54 V = a 2 c 1- cos 2  V = a 2 c sin  = a 2 c sin 120 o

55 Cell volume and cell contents:

56 A unit cell will usually contain an integral number of formula units.

57 Cell volume and cell contents: A unit cell will usually contain an integral number of formula units. The number of formula units in the cell is often related to the symmetry of the cell.

58 The number of formula units in the unit cell is designated by Z.

59 Space group General Positions Z

60 P1 x, y, z 1

61 Space group General Positions Z P1 x, y, z 1 P1 x, y, z 2 -x, -y, -z

62 Unit Cell Unit cell volume = V V = abc 1- cos 2  - cos 2  - cos 2  + 2 cos  cos  cos  Note: text page 807 may not be correct. Triclinic P1 Z = 2

63 If Z = 2 then the total mass in the unit cell is the formula weight x 2.

64 If Z = 2 then the total mass in the unit cell is the formula weight x 2. If the volume is V then the density of the crystal is formula wt. X 2 V x N o

65 Triclinic cell: a = 6.8613 Å  = 74.746 o b = 9.1535 Å  = 81.573 o c = 16.8637 Å  = 73.339 o V = 974.45 Å 3 C 17 H 24 NO 2 + Cl -. 3 H 2 O FW = 363.87 g/mol

66 V = 974.45 Å 3 C 17 H 24 NO 2 + Cl -. 3 H 2 O FW = 363.87 g/mol Z = 2 Density = 363.87 g (2) 974.45 Å 3 x 6.02 x 10 23

67 V = 974.45 Å 3 C 17 H 24 NO 2 + Cl -. 3 H 2 O FW = 363.87 g/mol Z = 2 Density = 363.87 g (2) 974.45 Å 3 x 6.02 x 10 23 1Å = 1 x 10 -8 cm

68 V = 974.45 Å 3 C 17 H 24 NO 2 + Cl -. 3 H 2 O FW = 363.87 g/mol Z = 2 1Å = 1 x 10 -8 cm Density = 363.87 g (2) 974.45 x 10 -24 x 6.02 x 10 23 Density = 363.87 g (2) 974.45 Å 3 x 6.02 x 10 23

69 V = 974.45 Å 3 C 17 H 24 NO 2 + Cl -. 3 H 2 O FW = 363.87 g/mol Z = 2 Density = 727.74 g 5866.19 x 10 -1 Density = 363.87 g (2) 974.45 x 10 -24 x 6.02 x 10 23

70 V = 974.45 Å 3 C 17 H 24 NO 2 + Cl -. 3 H 2 O FW = 363.87 g/mol Z = 2 Density = 727.74 g 5866.19 x 10 -1 cm 3 Density = 363.87 g (2) 974.45 x 10 -24 x 6.02 x 10 23 = 1.241 g/cm 3

71 Infinitely repeating lattices

72

73

74

75 Three possible unit cells; one lattice.

76 Crystal lattices include a large number of repeating sets of planes.

77

78

79

80

81

82

83

84 These sets of planes can act as a diffraction grating for waves of the proper wavelength.

85 These sets of planes can act as a diffraction grating for waves of the proper wavelength. d

86 These sets of planes can act as a diffraction grating for waves of the proper wavelength. d = < 1 to 250 Å

87 When radiation on the order of 1 ångstöm wavelength interacts with a crystal lattice having interplanar spacings on the order of ångstöms, diffraction occurs.

88 Where do we find 1 ångstöm Wavelength radiation?

89

90 1 Å

91 What is the source of 1 Å radiation?

92 1 Å Emission spectrum for hydrogen in visible range

93 Electron transitions for H atom.

94 Electron transitions for H atom. Transitions in visible region.

95 It is possible to cause certain metals to emit X-rays by temporarily removing a core electron.

96

97 X-ray emission

98 e-e- +- HV

99 e-e- +- If the potential difference is large enough, core electrons will be ejected from the metal. source of electrons Metal target

100 hot filament – e - source

101 metal target

102 hot filament – e - source metal target +- Accelerating potential

103

104 1 x 10 mm

105 KV = 50 mA = 40

106 1 x 10 mm KV = 50 mA = 40 = 2000 watts

107 hot filament – e - source metal target +- Accelerating potential

108

109 X-ray scattering is due to the interaction of X-rays and the electron density around atoms.

110 d = < 1 to 250 Å

111 B’ E E’

112 d = < 1 to 250 Å B’ E E’ If (B B’)-(E E’) = an integral # of wavelengths, 100% reinforcement.

113 B’ E E’ If (B B’)-(E E’) = an integral # of wavelengths, 100% reinforcement. 2dsin  = n

114 B’ E E’ If (B B’)-(E E’) = an integral # of wavelengths, 100% reinforcement. 2dsin  = n Bragg’s Law

115 B’ E E’ If (B B’)-(E E’) = an integral # of wavelengths, 100% reinforcement. 2dsin  = n Bragg’s Law = wavelength n = integer (order of diffraction)

116 2dsin  = n Bragg’s Law = wavelength n = integer (order of diffraction)

117 2dsin  = n Bragg’s Law = wavelength n = integer (order of diffraction) If d becomes larger,  must decrease.

118 2dsin  = n Bragg’s Law = wavelength n = integer (order of diffraction) If d becomes larger,  must decrease. There is a reciprocal relationship between The crystal lattice and the diffraction pattern.

119

120

121

122 2dsin  = n d*d* n = 0 1 2 3 4

123 2dsin  = n d*d* n = 0 1 2 3 4 is set by the X-ray target

124 2dsin  = n d*d* n = 0 1 2 3 4 is set by the X-ray target  can be measured by determining the angle between the direct and diffracted beam.

125 2dsin  = n d*d* n = 0 1 2 3 4 is set by the X-ray target  can be measured by determining the angle between the direct and diffracted beam. Unit cell can be determined from this data.

126 Note that intensities of the diffraction spots vary.

127 Note that intensities of the diffraction spots vary. Diffraction intensities tend to decease as  increases.

128 Note that intensities of the diffraction spots vary. The derivation of Bragg’s Law is correct but the conditions are more complicated. Each diffraction spot is the sum of the waves from all atoms in the unit cell.

129 Note that intensities of the diffraction spots vary. The derivation of Bragg’s Law is correct but the conditions are more complicated. Each diffraction spot is the sum of the waves from all atoms in the unit cell. This includes a significant amount of destructive interference.

130 d d Each diffraction maximum includes information on the electron density in the repeat distance.

131 Conversion of X-ray intensities to electron densities is a very complicated process.

132 Conversion of X-ray intensities to electron densities is a very complicated process. A major step is determining the atomic coordinates for a model.

133 Once the coordinates for a model are determined, it is possible to calculate what the intensity data for that model would look like.

134 Once the coordinates for a model are determined, it is possible to calculate what the intensity data for that model would look like. The observed intensities and the model intensities are compared.

135 A least-squares refinement of model intensities against observed intensities allows the model structure to become the actual crystal structure.

Download ppt "Molecular Crystals. Molecular Crystals: Consist of repeating arrays of molecules and/or ions."

Similar presentations

Bragg’s Law nl=2dsinΘ Just needs some satisfaction!! d Θ l

Bragg’s Law nl=2dsinΘ Just needs some satisfaction!! d Θ l
Ch6 X-ray Producing X-ray Moseley formula X-ray diffraction

Ch6 X-ray Producing X-ray Moseley formula X-ray diffraction
Chap 8 Analytical Instruments. XRD Measure X-Rays “Diffracted” by the specimen and obtain a diffraction pattern Interaction of X-rays with sample creates.

Chap 8 Analytical Instruments. XRD Measure X-Rays “Diffracted” by the specimen and obtain a diffraction pattern Interaction of X-rays with sample creates.
Materials Science and Engineering Crystalline and Non-Crystalline Systems X-Ray Diffraction: Determination of Crystal Structure.

Materials Science and Engineering Crystalline and Non-Crystalline Systems X-Ray Diffraction: Determination of Crystal Structure.
Lecture 20 X-Ray Diffraction (XRD)

Lecture 20 X-Ray Diffraction (XRD)
X-ray Diffraction. X-ray Generation X-ray tube (sealed) Pure metal target (Cu) Electrons remover inner-shell electrons from target. Other electrons “fall”

X-ray Diffraction. X-ray Generation X-ray tube (sealed) Pure metal target (Cu) Electrons remover inner-shell electrons from target. Other electrons “fall”
Introduction to protein x-ray crystallography. Electromagnetic waves E- electromagnetic field strength A- amplitude  - angular velocity - frequency.

Introduction to protein x-ray crystallography. Electromagnetic waves E- electromagnetic field strength A- amplitude  - angular velocity - frequency.
Planes in Lattices and Miller Indices

Planes in Lattices and Miller Indices
Determination of Crystal Structures by X-ray Diffraction

Determination of Crystal Structures by X-ray Diffraction
4. Investigations into the electrical properties of particular metals at different temperatures led to the identification of superconductivity and the.

4. Investigations into the electrical properties of particular metals at different temperatures led to the identification of superconductivity and the.
Internal – External Order We described symmetry of crystal habit (32 point groups) We also looked at internal ordering of atoms in 3-D structure (230 space.

Internal – External Order We described symmetry of crystal habit (32 point groups) We also looked at internal ordering of atoms in 3-D structure (230 space.
PHYSICS DEPARTMENT. In 1925, Louis de-Broglie suggested that if radiations can behave as waves in some experiments and as particles in others then one.

PHYSICS DEPARTMENT. In 1925, Louis de-Broglie suggested that if radiations can behave as waves in some experiments and as particles in others then one.
(0,0) RECIPROCAL LATTICE (0,1) (1,1) (2,1) (3,1) REAL LATTICE a b a* b*

(0,0) RECIPROCAL LATTICE (0,1) (1,1) (2,1) (3,1) REAL LATTICE a b a* b*
Chapter 11 1 Ch 11 Page 467 Intermolecular forces according to Google Images:

Chapter 11 1 Ch 11 Page 467 Intermolecular forces according to Google Images:
EEE539 Solid State Electronics

EEE539 Solid State Electronics
Lecture 8b X-Ray Diffraction. Introduction I History 1895 Wilhelm Conrad R ӧ ntgen discovered X-rays 1905 Albert Einstein introduces the concept of photons.

Lecture 8b X-Ray Diffraction. Introduction I History 1895 Wilhelm Conrad R ӧ ntgen discovered X-rays 1905 Albert Einstein introduces the concept of photons.
Solid State Physics 2. X-ray Diffraction 4/15/2017.

Solid State Physics 2. X-ray Diffraction 4/15/2017.
Yat Li Department of Chemistry & Biochemistry University of California, Santa Cruz CHEM 146C_Experiment #3 Identification of Crystal Structures by Powder.

Yat Li Department of Chemistry & Biochemistry University of California, Santa Cruz CHEM 146C_Experiment #3 Identification of Crystal Structures by Powder.
Atomic X-Ray Spectroscopy Chapter 12 X-ray range  10 -5 Å to 100 Å Used  0.1Å to 25 Å.

Atomic X-Ray Spectroscopy Chapter 12 X-ray range  Å to 100 Å Used  0.1Å to 25 Å.
Solids Ch. 12.

Solids Ch. 12.

Similar presentations

Ads by Google