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Scattering from imperfect crystals (see Cowley Sect. 7.1) Two types average lattice exists (point defects, dislocations, thermal vibrations) no average lattice (stacking faults, twinning)
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Scattering from imperfect crystals (see Cowley Sect. 7.1) Two types average lattice exists (point defects, dislocations, thermal vibrations) no average.

Dec 17, 2015

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Kathryn Reed
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Page 1: Scattering from imperfect crystals (see Cowley Sect. 7.1) Two types average lattice exists (point defects, dislocations, thermal vibrations) no average.

Scattering from imperfect crystals (see Cowley Sect. 7.1)Scattering from imperfect crystals (see Cowley Sect. 7.1)

Two types

average lattice exists (point defects,dislocations, thermal vibrations)

no average lattice (stacking faults, twinning)

Two types

average lattice exists (point defects,dislocations, thermal vibrations)

no average lattice (stacking faults, twinning)

Page 2: Scattering from imperfect crystals (see Cowley Sect. 7.1) Two types average lattice exists (point defects, dislocations, thermal vibrations) no average.

Scattering from imperfect crystals (see Cowley Sect. 7.1)Scattering from imperfect crystals (see Cowley Sect. 7.1)

Two types

average lattice exists (point defects,dislocations, thermal vibrations)

no average lattice (stacking faults, twinning)

Two types

average lattice exists (point defects,dislocations, thermal vibrations)

no average lattice (stacking faults, twinning)

Page 3: Scattering from imperfect crystals (see Cowley Sect. 7.1) Two types average lattice exists (point defects, dislocations, thermal vibrations) no average.

Scattering from imperfect crystals (see Cowley Sect. 7.1)Scattering from imperfect crystals (see Cowley Sect. 7.1)

Two types

can't put in all atoms; consider average of atoms surrounding particular set of N atoms

Two types

can't put in all atoms; consider average of atoms surrounding particular set of N atoms

Page 4: Scattering from imperfect crystals (see Cowley Sect. 7.1) Two types average lattice exists (point defects, dislocations, thermal vibrations) no average.

Scattering from imperfect crystalsScattering from imperfect crystals

Two types

can't put in all atoms; consider average of atoms surrounding particular set of N atoms

for a monatomic solid

Two types

can't put in all atoms; consider average of atoms surrounding particular set of N atoms

for a monatomic solid

Page 5: Scattering from imperfect crystals (see Cowley Sect. 7.1) Two types average lattice exists (point defects, dislocations, thermal vibrations) no average.

Random vacancies (see Cowley Sect. 7.3)Random vacancies (see Cowley Sect. 7.3)

Suppose n random vacancies in monatomic solid w/ N atom sites

Consider vectors ri - rj

Suppose n random vacancies in monatomic solid w/ N atom sites

Consider vectors ri - rj

Page 6: Scattering from imperfect crystals (see Cowley Sect. 7.1) Two types average lattice exists (point defects, dislocations, thermal vibrations) no average.

Random vacancies (see Cowley Sect. 7.3)Random vacancies (see Cowley Sect. 7.3)

Suppose n random vacancies in monatomic solid w/ N atom sites

Consider vectors ri - rj

Suppose n random vacancies in monatomic solid w/ N atom sites

Consider vectors ri - rj

Page 7: Scattering from imperfect crystals (see Cowley Sect. 7.1) Two types average lattice exists (point defects, dislocations, thermal vibrations) no average.

Random vacanciesRandom vacancies

Rearranging:Rearranging:

Page 8: Scattering from imperfect crystals (see Cowley Sect. 7.1) Two types average lattice exists (point defects, dislocations, thermal vibrations) no average.

Random vacanciesRandom vacancies

Rearranging:

scattering power of ordered structure - no defects, reduced f

Rearranging:

scattering power of ordered structure - no defects, reduced f

Page 9: Scattering from imperfect crystals (see Cowley Sect. 7.1) Two types average lattice exists (point defects, dislocations, thermal vibrations) no average.

Random vacanciesRandom vacancies

Rearranging:

scattering power of ordered structure - no defects, reduced f conts distrib of scatt power

- decreases w/ u- approx proportional to n

Rearranging:

scattering power of ordered structure - no defects, reduced f conts distrib of scatt power

- decreases w/ u- approx proportional to n

Page 10: Scattering from imperfect crystals (see Cowley Sect. 7.1) Two types average lattice exists (point defects, dislocations, thermal vibrations) no average.

Random vacanciesRandom vacancies

Rearranging:

scattering power of ordered structure - no defects, reduced f conts distrib of scatt power

- decreases w/ u- approx proportional to n

Rearranging:

scattering power of ordered structure - no defects, reduced f conts distrib of scatt power

- decreases w/ u- approx proportional to n

Page 11: Scattering from imperfect crystals (see Cowley Sect. 7.1) Two types average lattice exists (point defects, dislocations, thermal vibrations) no average.

Random vacanciesRandom vacancies

Now consider PattersonSuppose n random vacancies in monatomic solid w/ N

electron density for deviation from ordered structure ordered structure

Now consider PattersonSuppose n random vacancies in monatomic solid w/ N

electron density for deviation from ordered structure ordered structure

Page 12: Scattering from imperfect crystals (see Cowley Sect. 7.1) Two types average lattice exists (point defects, dislocations, thermal vibrations) no average.

Random vacanciesRandom vacancies

Now consider PattersonSuppose n random vacancies in monatomic solid w/ N

electron density for deviation from ordered structure ordered structure

Now consider PattersonSuppose n random vacancies in monatomic solid w/ N

electron density for deviation from ordered structure ordered structure

Page 13: Scattering from imperfect crystals (see Cowley Sect. 7.1) Two types average lattice exists (point defects, dislocations, thermal vibrations) no average.

Random vacanciesRandom vacancies

Page 14: Scattering from imperfect crystals (see Cowley Sect. 7.1) Two types average lattice exists (point defects, dislocations, thermal vibrations) no average.

Vacancy clustersVacancy clusters

Use Patterson approach againUse Patterson approach again

Page 15: Scattering from imperfect crystals (see Cowley Sect. 7.1) Two types average lattice exists (point defects, dislocations, thermal vibrations) no average.

InterstitialsInterstitials

Assume n small interstitials w/ negligible scattering power

Average structure is

Assume n small interstitials w/ negligible scattering power

Average structure is

Page 16: Scattering from imperfect crystals (see Cowley Sect. 7.1) Two types average lattice exists (point defects, dislocations, thermal vibrations) no average.

InterstitialsInterstitials

Assume n small interstitials w/ negligible scattering powerAssume n small interstitials w/ negligible scattering power

Page 17: Scattering from imperfect crystals (see Cowley Sect. 7.1) Two types average lattice exists (point defects, dislocations, thermal vibrations) no average.

InterstitialsInterstitials

Assume n small interstitials w/ negligible scattering powerAssume n small interstitials w/ negligible scattering power

Page 18: Scattering from imperfect crystals (see Cowley Sect. 7.1) Two types average lattice exists (point defects, dislocations, thermal vibrations) no average.

Thermal vibrationsThermal vibrations

Einstein: monatomic, independent, harmonic, 1-D

Spread electron density by Gaussian

Einstein: monatomic, independent, harmonic, 1-D

Spread electron density by Gaussian

Page 19: Scattering from imperfect crystals (see Cowley Sect. 7.1) Two types average lattice exists (point defects, dislocations, thermal vibrations) no average.

Thermal vibrationsThermal vibrations

Except for origin peak, all Patterson peaks spread by

Except for origin peak, all Patterson peaks spread by

Page 20: Scattering from imperfect crystals (see Cowley Sect. 7.1) Two types average lattice exists (point defects, dislocations, thermal vibrations) no average.

Thermal vibrationsThermal vibrations

Except for origin peak, all Patterson peaks spread by

Intensity is

Except for origin peak, all Patterson peaks spread by

Intensity is

Page 21: Scattering from imperfect crystals (see Cowley Sect. 7.1) Two types average lattice exists (point defects, dislocations, thermal vibrations) no average.

Thermal vibrationsThermal vibrations

Except for origin peak, all Patterson peaks spread by

Intensity is

Except for origin peak, all Patterson peaks spread by

Intensity is

Page 22: Scattering from imperfect crystals (see Cowley Sect. 7.1) Two types average lattice exists (point defects, dislocations, thermal vibrations) no average.

No average latticeNo average lattice

Except for origin peak, all Patterson peaks spread by

Except for origin peak, all Patterson peaks spread by

Page 23: Scattering from imperfect crystals (see Cowley Sect. 7.1) Two types average lattice exists (point defects, dislocations, thermal vibrations) no average.

No average latticeNo average lattice

Except for origin peak, all Patterson peaks spread by

d(z) is a set of fcns

(r) considered periodic in x,y

Except for origin peak, all Patterson peaks spread by

d(z) is a set of fcns

(r) considered periodic in x,y

Page 24: Scattering from imperfect crystals (see Cowley Sect. 7.1) Two types average lattice exists (point defects, dislocations, thermal vibrations) no average.

No average latticeNo average lattice

Except for origin peak, all Patterson peaks spread by

d(z) is a set of fcns

(r) considered periodic in x,y

reciprocal lattice

Except for origin peak, all Patterson peaks spread by

d(z) is a set of fcns

(r) considered periodic in x,y

reciprocal lattice

Page 25: Scattering from imperfect crystals (see Cowley Sect. 7.1) Two types average lattice exists (point defects, dislocations, thermal vibrations) no average.

No average latticeNo average lattice

Use Gaussian distrib w/ mean = c

Use Gaussian distrib w/ mean = c

Page 26: Scattering from imperfect crystals (see Cowley Sect. 7.1) Two types average lattice exists (point defects, dislocations, thermal vibrations) no average.

No average latticeNo average lattice

Use Gaussian distrib w/ mean = c

Use Gaussian distrib w/ mean = c

Page 27: Scattering from imperfect crystals (see Cowley Sect. 7.1) Two types average lattice exists (point defects, dislocations, thermal vibrations) no average.

No average latticeNo average lattice

Page 28: Scattering from imperfect crystals (see Cowley Sect. 7.1) Two types average lattice exists (point defects, dislocations, thermal vibrations) no average.

No average latticeNo average lattice

Page 29: Scattering from imperfect crystals (see Cowley Sect. 7.1) Two types average lattice exists (point defects, dislocations, thermal vibrations) no average.

No average latticeNo average lattice

Page 30: Scattering from imperfect crystals (see Cowley Sect. 7.1) Two types average lattice exists (point defects, dislocations, thermal vibrations) no average.

No average latticeNo average lattice