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III-1 1
PART THREE: Ionic Bonding In Molecules And Solids.
So far we have defined several energies of interaction between charged particles.
- Ionization Energy - Electron Affinity - Coulombic (Electrostatic) Attraction &
Repulsion.
We now use these to look at further bonding properties: Mostly solids.
Why are solids important? Catalysts Ad & Ab – Sorbents Lasers Fibre Optics Magnetic Memories Optical Switching
(Computers) Batteries Fluorescent Lights Superconductors LED’s ……….
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III-2 2
We Need To Start At The Beginning One of the simplest ionic solids is sodium chloride (NaCl).
Various depictions of the rocksalt structure. Not all will be met in this course.
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III-3 3
Discrete NaCl molecules can exist in the gas phase.
NaCl(g) → Na(g) + Cl(g) ∆H for this reaction is called the Bond Dissociation Energy (409 kJ mol-1) • We can judge the stability of solids whether
they form or not by looking at the free energy change for:
M+(g) + X-(g) → MX(s) ∆G = ∆H - T∆S
• If ∆G is –ve then spontaneous. • Note: Process of Lattice formation (solid ) is
very exothermic at room temperature (∆S may be neglected).
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III-4 4
• We will use ∆H’s (enthalpy). Born Haber Cycle
( NaCl )
NaCl(g)
IP EA
Na+(g) Cl-(g)+
Electrostatic Attraction
(U)
∆H f
Na(g) Cl2(g)+12_
We can calculate U from this cycle
Can You Do It ?: watch the signs
However: NaCl(g) is NOT NaCl(s)
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III-5 5
- We want to get an idea of how stable
different solids are. - Then U is more complicated.
WHY?
Sodium Chloride Lattice
Cubic
Each Na+ has 6 near neighbour Cl-
Each Cl- has
6 near neighbour Na+
• The attractive energy between a Na+ and its 6 near neighbour Cl- is offset by repulsion from 12 next near neighbour Na+.
Cl
Cl
Cl
Cl
Na r
Na
Na
Na2r3r
• We must sum these up.
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III-6 6
First 6 nearest neighbour Na-Cl (Attractive)
6 rqq-
E ClNa ×⋅
= Second 12 next nearest neighbor Na-Na
(Repulsive) 12
2rqq E NaNa ×⋅+
=
Third 8 next nearest neighbour Na-Cl
83rqq-
E ClNa ×=
(and so on … for ever)
This is a convergent series. The sum of all the attractive and repulsive terms can be lumped together. A r
q- E2
⋅= A is called the Madelung Constant. For NaCl and other cubic structures A = 1.74756.
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III-7 7
• NOTE: In this case the coulombic term is
overall attractive. Where is the repulsion to stop the solid collapsing?
Born-Meyer Repulsion (DeKock & Gray, p. 457) ER = be-ar (See problem set 4; Q. 4) (remember Van der Waals repulsion?) • Again due to overlap of electron clouds. b is a
constant related to compressibility of solid. overall we have
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III-8 8
r
Coulombic Attraction
Born Meyer Repulsion
r(-Aq q21
be-ar
(dE =dr 0
E
DIST
(a common value for a is 2.899) • We are almost ready to determine whether
bonding in NaCl is Ionic (that is can it be described by Madelung, Coulomb Born and Meyer).
• How?
â We can Calculate the Lattice Energy.
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III-9 9
ã We can Measure the Lattice Energy. â Is from Ionic Bonding only. ã Is real value. Lattice Energies (Enthalpies) (p. 455, DeKock & Gray) Definition: lattice engergy is the energy
released when 1 mole of asubstance is formed from its gasphase ions.
e.g. Na+(g) + Cl-(g) → NaCl(s) ∆G = U • first we will determine the lattice energy from
experimental values.
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III-10 10
• Born Haber Cycle
N a + ( g) e
- C l ( g) + +
N a ( g) C l 2 ( g) + 1 2 _
N a ( s ) C l 2 ( g) + 1 2 _
∆ H f N a C l ( s )
U ( L A T T I C E E N E R G Y ) +
1 2 _ C l 2 B E
T E N a E A _ C l -( g) ( N a
+( g) + + N a ( g) C l ( g)
N a ( s ) ∆ Hat
If we go round this cycle we must expend no energy (overall).
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III-11 11
So, (Follow the Arrows) - IE(Na))BE(Cl2
1Na)(HH 2atf ++∆+∆
- EA(Cl) + U = 0
EAIE)BE(Cl21 - (Na)∆H∆H U 2atf +−−=
U = -411 – 108 –121 –502 + 354
UNaCl = -788 kJ mol-1
Now Let’s Calculate U (p. 456, DeKock & Gray)
• Earlier We wrote down the contributions to Ionic bonding as the sum of Attractive & Repulsive terms.
arber
qAqE 21 −+−
=
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III-12 12
We Now Use the More General Form Given in DeKock and Gray E = EC + ER (Coulombic and Repulsive) For Avogadros number of units
ar2
Nbere))(zAN(z E −+
+⋅−=
(Z is charge: 1st term is –ve Attractive when charges are of different sign.
Now see DeKock and Gray p. 457-459. We Follow Them
N ≡ AVOGADRO’S NUMBER
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III-13 13
ar2 Nbe rezANz E −+ +−= â
In The Energy Curve
eqr r at 0 drdE ==
So
ar
2eq
2 Nabe r
ezANz- 0 drdE −+ −−==
E
r = req dEdr__ = 0
r
ar
eezAz- b 2eq
ar2−=
+ ã 2r1- r
1drd =
⎟⎟⎟
⎠
⎞
⎜⎜⎜
⎝
⎛
arar ae e drd =
PLEASE: NOTE MISTAKE IN DEKOCK & GRAY, P. 458, EQUATION 7-8.
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III-14 14
SUB ã IN â
ar-2eq
ar2-
eq
2 e ar
eezAz-N rezAz- E
⎪⎪⎪
⎭
⎪⎪⎪
⎬
⎫
⎪⎪⎪
⎩
⎪⎪⎪
⎨
⎧++ +−=
2eq
2
eq
2
are-zANz - r
ezAz- E++ −= CONSTANT
a = 2.9×108cm-1
LATTICE ENERGY Couloubic + Repulsive
⎪⎭
⎪⎩
⎪⎬
⎫1 r⎪⎨
⎧+=eqeq
2r ar - 1 -e-zANzEeq
BM Term. For NaCl req = 2.814D (See Later) E = -759 kJ mol-1 (Substituting in the Values) Compare to EEXPTL = -788 kJ mol-1
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III-15 15
• Good Agreement (within 5%) – we have ignored VDW but this is small.
• CONCLUSION: Bonding in NaCl is
Substantially Ionic.
- Extra Lattice Energy is From Covalent Bonding (Part Five)
************************************* The following may not be covered Kapustinskii Equation
• If Madelung Constant for a number of structures is divided by the number of ins/formula unit: approximately same value results.
• Replace
⎪⎭
⎪⎬⎫
⎪⎩
⎪⎨⎧
⎪⎭
⎪⎬
⎫
⎪⎩
⎪⎨
⎧
+−aceq rr
0.345-1 with ar11
IN ⎪⎭
⎪⎬
⎫
⎪⎩
⎪⎨
⎧⋅= +
eqeq2
r ar1 - 1 r
e-zANzEeq
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III-16 16
• Also replace A with 1.21 MJ D mol-1 We Get
⎟⎟⎟
⎠
⎞
⎜⎜⎜
⎝
⎛
+−= +
ac rr0.3451
d-znz- E
aca
c r r d radiusanion :rradiuscation :r
+=⎪⎪⎭
⎪⎪⎬
⎫
Example KNO3 n = 2 (2 Ions/formula unit) z+ = z- = 1
27.3r r 89.1 -r38.1r
ac =+==+
⎪⎪⎭
⎪⎪⎬
⎫
D
1-mol MJ 1.21 3.27
0.345 13.272 E ×−=
⎟⎟⎟
⎠
⎞
⎜⎜⎜
⎝
⎛
= -622 kJ mol-1
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III-17 17
Chemical Significance of Lattice Energies
• Lattice Energy (and EA) are principal (only) reasons why ∆Hf is –ve. These alone make the solid stable.
• Look Again at the values used in the Born-
Haber Calculation for NaCl.
• Kapustinskii Equation.
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III-18 18
• Lattice Energy is a good measure of stability. Increases with Ion Charge with decrease in r.
Thermal Stabilities of Ionic Solids
(Not in DeKock and Gray) EXAMPLE: Carbonates
MCO3(s) → MO(s) + CO2(g)
Decomposition Temp: Is where ∆G for above react goes –ve Observed to increase as Mnt gets bigger. CaCO3 more stable than MgCO3 . i.e. Ionic Radii Ca2+ Mg2+
1.00D 0.49D WHY?
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III-19 19
NOTE: Thermodynamics: ∆G = ∆H - T∆S
Decomp occurs when SH T
∆∆= (after ∆G is
–ve) For MCO3 decomp entropy is const – CO2 formation. ∴Enthalpy Change is good Guide of Stability
Large Cations Stabilize Large Anions
MCO3(s) → MO(s) + CO2(g)
∆H = ∆HL(MO) - ∆HL(MCO3)
i.e. Thermal Stability is measured by difference in Lattice Energies.
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III-20 20
IF MO has much bigger lattice energy than MCO3.
THEN MCO3 will be very unstable wrt to MO. Large Cation Small Cation
}Large %change
}Small %change
Latticescale
Cation
Cation
(From: Inorganic Chemistry, D. Shriver, P. Atkins, C. Langford, p. 132, Pub. W.H. Freeman.)
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III-21 21
In Kapustinskii Equation
⎟⎟⎟
⎠
⎞
⎜⎜⎜
⎝
⎛−−= −+
d0.345 1
dznz E
change in E -2
3-2 rCO rM
1 - r0rM
1 +++
∝+
(all else is same) If M+ is large diff is not large (i.e. If M+ → ∞ we can ignore anion radii) Greatest Change Occurs when r+M is small.
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III-22 22
CHARGE
• Which are more stable M+ carbonates or M2+ carbonates (To thermal Decomp to Oxide)
KAPUSTINSKII Difference in Latice Energy between M+ and M2+
⎪⎪⎭
⎪⎪⎬
⎫
⎪⎪⎩
⎪⎪⎨
⎧
−++ +++∝ 2
32 rCOrM
1 - rOrM
1zM∆E
DOMINATES ∴ M2+ change is largest M2+ carbonates less stable than M+
***********************************
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III-23 23
Structure of Ionic Solids (DeKock & Gray p. 427- )(Shriver 115-119) IONIC MATERIALS: Properties
• Contain Ions e.g. Na+Cl-, LiCl, CaF2 • Ionic Bonding Predominates • Low Electrical Conductivity • High Melting Points • Hard and Brittle • Soluble in Polar solvents
Structure
• Anions and Cations pack together in solid. - Electrostatic Attraction maximized - Electrostatic Repulsion Minimized
• Leads to different Geometric Arrangements of Ions
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III-24 24
Unit Cell
• A simple arrangement of atoms which when repeated in 3 Dimensions produces the crystal lattice.
COMMON TYPES OF LATTICE
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III-25 25
MORE ABOUT THESE LATER
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III-26 26
AB IONIC SOLIDS Madelung Const. (A) CN (B) NaCl 6 6 1.7475 CsCl 8 8 1.7626 ZnS (Zincblende) 4 4 1.6380 ZnS(wurtzite) 4 4 1.6413 CaF2 8 4 2.5193 TiO2 (rutile) 6 3 2.408 Crystal Packing
• Can we make some simple rules about crystal packing that enable us to predict these structures?
â Ions are essentially spherical ã Pack together by size.
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III-27 27
Radius Ratio Rules
• In ideal ionic crystals, coordination numbers are determined largely by electrostatic considerations.
• Cations surround themselves with as many
anions as possible and vice-versa.
• This can be related to the relative sizes of the ions. ⇒ radius ratio rules.
as r+ ↑ the more anions of a particular size can pack around it.
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III-28 28
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III-29 29
Coordination r+/R-
8 0.732 6 0.414
4 0.225 3 0.155
Examples BeS rBe2+/rsS2- = 0.59/1.7 = 0.35 ∴ CN = 4
NaCl rNa+/rCl- = 1.16/1.67 = 0.69 ∴ CN = 6
(anions do not touch) CsCl rCs+rCl- = 1.81/1.67 = 1.08 ∴ CN = 8 RR rule doesn’t always work ZnS: r+/r- = 0.52 ∴ CN = 6
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III-30 30
(Actually 4)
Graph compares structures (CsCl / NaCl) with predictions by radius ratio rules from r+/r- {r-/r+ if cation is larger} For Li+ and Na+ salts, ratios calculated from both r6 and r4 are indicated .Radius ratios suggest adoption of CsCl structure more than is observed in reality NaCl structure is observed more than is predicted Radius ratios are only correct ca. 50% of the time, not very good for a family of ionic solids
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III-31 31
Close Packing
• An alternative way of looking at Ionic Solids.
• Anions are often larger than cations and therefore touch.
• Small cations then fit in the “holes” between anions.
• Think of packing basketballs and baseballs in the most efficient way.
1926 Goldschmidt proposed atoms could be considered as packing in solids as hard spheres This reduces the problem of examining the packing of like atoms to that of examining the most efficient packing of any spherical object - e.g. have you noticed how oranges are most effectively packed in displays at your local shop?
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III-32 32
CLOSE-PACKING OF SPHERES A single layer of spheres is closest-packed with a HEXAGONAL coordination of each sphere
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III-33 33
A second layer of spheres is placed in the indentations left by the first layer space is trapped between the layers that is not filled by the spheres TWO different types of HOLES (so-called INTERSTITIAL sites) are left
OCTAHEDRAL (O) holes with 6 nearest sphere neighbours TETRAHEDRAL (T±) holes with 4 nearest sphere neighbours
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III-34 34
When a third layer of spheres is placed in the indentations of the second layer there are TWO choices The third layer lies in indentations directly in line (eclipsed) with the 1st layer Layer ordering may be described as ABA The third layer lies in the alternative indentations leaving it staggered with respect to both previous layers
Layer ordering may be described as ABC
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Close-Packed Structures The most efficient way to fill space with spheres Is there another way of packing spheres that is more space-efficient? In 1611 Johannes Kepler asserted that there was no way of packing equivalent spheres at a greater density than that of a face-centred cubic arrangement. This is now known as the Kepler Conjecture. This assertion has long remained without rigorous proof, but in August 1998 Prof. Thomas Hales of the University of Michigan announced a computer-based solution. This proof is contained in over 250 manuscript pages and relies on over 3 gigabytes of computer files and so it will be some time before it has been checked rigorously by the scientific community to ensure that the Kepler Conjecture is indeed proven! An article by Dr. Simon Singh © Daily Telegraph, 13th August 1998 http://www.chem.ox.ac.uk/icl/heyes/structure_of_solids/Lecture1/oranges.htmlT
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Features of Close-Packing Coordination Number = 12 74% of space is occupied Simplest Close-Packing Structures ABABAB.... repeat gives Hexagonal Close-Packing (HCP) Unit cell showing the full symmetry of the arrangement is Hexagonal
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ABCABC.... repeat gives Cubic Close-Packing (CCP) Unit cell showing the full symmetry of the arrangement is Face-Centred Cubic
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The most common close-packed structures are METALS A NON-CLOSE-PACKED structure adopted by some metals is:-
(Like CsCl)
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Holes in the FCC Structure
• Anions pack close – cations fit in “holes”.
The locations of (a) octahedral holes and (b) tetrahedral holes in the fcc structure.
(a) Octahedral hole in cleft between six spheres (b) tetrahedral hole in the cleft between four spheres
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Hexagonal Close Paking (ABABAB) Recall:
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• Coordination # of HCP or FCC is 12.
• OCT Holes (6) TET Holes (4)
Some examples:
ZINC BLENDE or Sphalerite CCP S2- with Zn2+ in half Td holes Lattice: FCC 4 ZnS in unit cell Coordination: 4:4 (tetrahedral)
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Wurtzite HCP S2- with Zn2+ in half Tetrahedral holes
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Fluorite CCP Ca2+ with F- in all Tetrahedral holes
Lattice: fcc Coordination: Ca2+ 8 (cubic) : F- 4 (tetrahedral) In the related Anti-Fluorite structure (e.g., Li2O Cation and Anion positions are reversed
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CARBON
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Crystal Planes
• In looking at ionic structures in class we have seen that anions and cations tend to lie in “sheets” or planes.
Back to NaCl
Close packed layers
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• Planes of Atoms or groups are labeled using Miller Indices.
Miller Indices
DEFINITION: Smallest Integers which are reciprocals of the intercepts of the plane on the a, b & c axes of the
t l
• These are given symbols h, k, l and are written {1, 1, 1} or {2, 1, 0} etc.
Examples {1, 0, 0} Planes in cubic system
ab
c CUTS a axis at 1 ∴ 1 Doesn’t cut c or b axes ∴ 0, 0
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{1, 1, 1} Planes in cubic system.
ab
c Cuts each axis at 1 ∴ {1, 1, 1} {0, 1, 1} Plane
ab
c Cuts b axis at 1 c axis at 1 a axis – doesn’t cut ∴ {0, 1, 1}
⎟⎟⎟
⎠
⎞
⎜⎜⎜
⎝
⎛
∞ 11 ,1
1 ,1
Can you draw the arrangement of atoms on these Planes? See also problem sets.
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An Introduction to Diffraction Methods
• So far we have accepted these structures as given.
• They were determined using diffraction
techniques.
• X-Ray Diffraction - tells us the size of the unit cell, where the atoms are.
X-RAYS are (partially) Reflected by planes of Atoms.
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2
2
d
wave in wave outBragg's Law
When λ = 2d sin θ, reflected waves have a phase difference of
2π, and interfere constructively. What would happen if we squeezed in another plane of atoms at d/2
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51III-51
Incident
Specim
Fil
Reflected Incident
X-ray
Cylindrical
Rotating Crystal Powder (Debeye Scherer)
constructive Interference Occurs when extra distance Beam 2 travels is a whole number of wavelengths
nλ = 2R but R = dsinθ Bragg Diffraction Law
∴ nλ =2dsinθ
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• nλ = 2dsinθ
λ = wavelength of x-rays θ = angle d = distance between crystal planes.
We know λ and θ therefore we can determine d for all the planes in the crystal.
• X-Ray diffraction patterns nowadays are produced on a computer screen from an X-ray detector.
• NOTE d spacing is not normally the interatomic distance.
e.g. (100) in fcc
Interatomic Distanced100
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Bragg Reflection - On-line Exercise
http://www.eserc.stonybrook.edu/ProjectJava/Bragg/
Try it for fun.