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Plan for Fri, 31 Oct 08 • Lecture – Emission spectrum of atomic hydrogen (7.3) – The Bohr model of hydrogen (7.4) – Quantum mechanical model (7.5) • Quiz 5
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Plan for Fri, 31 Oct 08 Lecture –Emission spectrum of atomic hydrogen (7.3) –The Bohr model of hydrogen (7.4) –Quantum mechanical model (7.5) Quiz 5.

Dec 30, 2015

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Page 1: Plan for Fri, 31 Oct 08 Lecture –Emission spectrum of atomic hydrogen (7.3) –The Bohr model of hydrogen (7.4) –Quantum mechanical model (7.5) Quiz 5.

Plan for Fri, 31 Oct 08

• Lecture– Emission spectrum of atomic hydrogen (7.3)– The Bohr model of hydrogen (7.4)– Quantum mechanical model (7.5)

• Quiz 5

Page 2: Plan for Fri, 31 Oct 08 Lecture –Emission spectrum of atomic hydrogen (7.3) –The Bohr model of hydrogen (7.4) –Quantum mechanical model (7.5) Quiz 5.

Photon Emission

• Relaxation from one energy level to another by emitting a photon.

• WithE = hc/

• If = 440 nm,

= 4.5 x 10-19 J

Em

issi

on

Page 3: Plan for Fri, 31 Oct 08 Lecture –Emission spectrum of atomic hydrogen (7.3) –The Bohr model of hydrogen (7.4) –Quantum mechanical model (7.5) Quiz 5.

Atomic EmissionWhen we heat a sample of an element, the atoms become excited. When the atom

relaxes it emits visible light. The color of the light depends on the element.

Li Na K Ca Sr

H

Li

Ba

When the light emitted from excited atoms is passed through a prism, we see discrete bands of color at specific wavelengths.

Page 4: Plan for Fri, 31 Oct 08 Lecture –Emission spectrum of atomic hydrogen (7.3) –The Bohr model of hydrogen (7.4) –Quantum mechanical model (7.5) Quiz 5.

Emission spectrum of H (cont.)

Light Bulb

Hydrogen Lamp

Quantized, not continuous

Page 5: Plan for Fri, 31 Oct 08 Lecture –Emission spectrum of atomic hydrogen (7.3) –The Bohr model of hydrogen (7.4) –Quantum mechanical model (7.5) Quiz 5.

Emission spectrum of H (cont.)

We can use the emission spectrum to determine the energy levels for the hydrogen atom.

Page 6: Plan for Fri, 31 Oct 08 Lecture –Emission spectrum of atomic hydrogen (7.3) –The Bohr model of hydrogen (7.4) –Quantum mechanical model (7.5) Quiz 5.

The Bohr Model• Niels Bohr uses the emission spectrum of

hydrogen to develop a quantum model for H.

• Central idea: electron circles the “nucleus” in only certain allowed circular orbitals.

• Bohr postulates that there is Coulombic attraction between e- and nucleus. However, classical physics is unable to explain why an H atom doesn’t simply collapse.

Page 7: Plan for Fri, 31 Oct 08 Lecture –Emission spectrum of atomic hydrogen (7.3) –The Bohr model of hydrogen (7.4) –Quantum mechanical model (7.5) Quiz 5.

The Bohr Model of the atom

Principle Quantum number: n

An “index” of the energy levels available to the electron.

Page 8: Plan for Fri, 31 Oct 08 Lecture –Emission spectrum of atomic hydrogen (7.3) –The Bohr model of hydrogen (7.4) –Quantum mechanical model (7.5) Quiz 5.

The Bohr Model (cont.)

E 2.178x10 18 JZ 2

n2

• Energy levels get closer together as n increases

• at n = infinity, E = 0

Page 9: Plan for Fri, 31 Oct 08 Lecture –Emission spectrum of atomic hydrogen (7.3) –The Bohr model of hydrogen (7.4) –Quantum mechanical model (7.5) Quiz 5.

Identify the energy level diagram that best represents hydrogen:

A B

C D

Page 10: Plan for Fri, 31 Oct 08 Lecture –Emission spectrum of atomic hydrogen (7.3) –The Bohr model of hydrogen (7.4) –Quantum mechanical model (7.5) Quiz 5.

The Bohr Model (cont.)

• We can use the Bohr model to predict what E is for any two energy levels

E E final E initial

E 2.178x10 18 J1

n final2

( 2.178x10 18 J)

1

ninitial2

E 2.178x10 18 J1

n final2

1

ninitial2

Page 11: Plan for Fri, 31 Oct 08 Lecture –Emission spectrum of atomic hydrogen (7.3) –The Bohr model of hydrogen (7.4) –Quantum mechanical model (7.5) Quiz 5.

The Bohr Model (cont.)

• Example: At what wavelength will emission from n = 4 to n = 1 for the H atom be observed?

E 2.178x10 18 J1

n final2

1

ninitial2

1 4

E 2.178x10 18 J 11

16

2.04x10 18 J

E 2.04 x10 18 J hc

9.74x10 8 m 97.4nm

Page 12: Plan for Fri, 31 Oct 08 Lecture –Emission spectrum of atomic hydrogen (7.3) –The Bohr model of hydrogen (7.4) –Quantum mechanical model (7.5) Quiz 5.

The Bohr Model (cont.)

• Example: What is the longest wavelength of light that will result in removal of the e- from H?

E 2.178x10 18 J1

n final2

1

ninitial2

1

E 2.178x10 18 J 0 1 2.178x10 18 J

E 2.178x10 18 J hc

9.13x10 8 m 91.3nm

Page 13: Plan for Fri, 31 Oct 08 Lecture –Emission spectrum of atomic hydrogen (7.3) –The Bohr model of hydrogen (7.4) –Quantum mechanical model (7.5) Quiz 5.

The n = 4 to n = 1 transition in hydrogen corresponds to a wavelength of 97.4 nm. At what wavelength is the n = 4 to n = 2 transition expected?

A.

B.

C.

D.

Page 14: Plan for Fri, 31 Oct 08 Lecture –Emission spectrum of atomic hydrogen (7.3) –The Bohr model of hydrogen (7.4) –Quantum mechanical model (7.5) Quiz 5.

Extension to Higher Z• The Bohr model can be extended to any single

electron system….must keep track of Z (atomic number).

• Examples: He+ (Z = 2), Li+2 (Z = 3), etc.

E 2.178x10 18 JZ 2

n2

Z = atomic number

n = integer (1, 2, ….)

Page 15: Plan for Fri, 31 Oct 08 Lecture –Emission spectrum of atomic hydrogen (7.3) –The Bohr model of hydrogen (7.4) –Quantum mechanical model (7.5) Quiz 5.

Extension to Higher Z (cont.)

• Example: At what wavelength will emission from n = 4 to n = 1 for the He+ atom be observed?

E 2.178x10 18 J Z 2 1

n final2

1

ninitial2

2 1 4

E 2.178x10 18 J 4 11

16

8.16x10 18 J

E 8.16x10 18 J hc

2.43x10 8 m 24.3nm

H He

Page 16: Plan for Fri, 31 Oct 08 Lecture –Emission spectrum of atomic hydrogen (7.3) –The Bohr model of hydrogen (7.4) –Quantum mechanical model (7.5) Quiz 5.

So what happened to the Bohr Model?

Although it successfully described the line spectrum of hydrogen and other one-electron systems, it failed to accurately describe the spectra of multi-electron atoms.

The Bohr model was soon scrapped in favor of the Quantum Mechanical model, although the vocabulary of the Bohr model persists.

However, Bohr pioneered the idea of quantized electronic energy levels in atoms, so we owe him big.

Thanks Niels Bohr!

Page 17: Plan for Fri, 31 Oct 08 Lecture –Emission spectrum of atomic hydrogen (7.3) –The Bohr model of hydrogen (7.4) –Quantum mechanical model (7.5) Quiz 5.

Quantum Concepts

• The Bohr model was capable of describing the discrete or “quantized” emission spectrum of H.

• But the failure of the model for multielectron systems combined with other issues (the ultraviolet catastrophe, workfunctions of metals, etc.) suggested that a new description of atomic matter was needed.

Page 18: Plan for Fri, 31 Oct 08 Lecture –Emission spectrum of atomic hydrogen (7.3) –The Bohr model of hydrogen (7.4) –Quantum mechanical model (7.5) Quiz 5.

Quantum Concepts (cont.)• This new description was known as wave

mechanics or quantum mechanics.

• Recall, photons and electrons readily demonstrate wave-particle duality.

• The idea behind wave mechanics was that the existence of the electron in fixed energy levels could be though of as a “standing wave”.

Page 19: Plan for Fri, 31 Oct 08 Lecture –Emission spectrum of atomic hydrogen (7.3) –The Bohr model of hydrogen (7.4) –Quantum mechanical model (7.5) Quiz 5.

Quantum Concepts (cont.)

• What is a standing wave?• A standing wave is a motion in which translation of the wave does not occur.

• In the guitar string analogy (illustrated), note that standing waves involve nodes in which no motion of the string occurs.

• Note also that integer and half- integer values of the wavelength correspond to standing waves.

Page 20: Plan for Fri, 31 Oct 08 Lecture –Emission spectrum of atomic hydrogen (7.3) –The Bohr model of hydrogen (7.4) –Quantum mechanical model (7.5) Quiz 5.

Quantum Concepts (cont.)• Louis de Broglie suggests that for the e- orbits envisioned by

Bohr, only certain orbits are allowed since they satisfy the standing wave condition.

not allowed

h

p

h

mv

wavelength

m mass

v velocity

h Planck's constant

Page 21: Plan for Fri, 31 Oct 08 Lecture –Emission spectrum of atomic hydrogen (7.3) –The Bohr model of hydrogen (7.4) –Quantum mechanical model (7.5) Quiz 5.

Quantum Concepts (cont.)• Erwin Schrodinger developed a mathematical

formalism that incorporates the wave nature of matter:

• H, the “Hamiltonian,” is a special kind of function that gives the energy of a quantum state, which is described by the wavefunction, .

ˆ H E

Page 22: Plan for Fri, 31 Oct 08 Lecture –Emission spectrum of atomic hydrogen (7.3) –The Bohr model of hydrogen (7.4) –Quantum mechanical model (7.5) Quiz 5.

Quantum Concepts (cont.)• What is a wavefunction?

= a probability amplitude

• Probability of finding a particle in space:

*Probability =

With the wavefunction, we can describe spatial distributions.

The Probability Distribution for the Hydrogen 1s Orbital in Three-Dimensional Space (b) The Probability of Find the Electron at Points Along a Line Drawn From the Nucleus Outward in Any Direction for the Hydrogen 1s Orbital

Page 23: Plan for Fri, 31 Oct 08 Lecture –Emission spectrum of atomic hydrogen (7.3) –The Bohr model of hydrogen (7.4) –Quantum mechanical model (7.5) Quiz 5.

Hydrogen’s Electron

Cross Section of the Hydrogen 1s Orbital Probability Distribution Divided into Successive Thin Spherical Shells (b) The Radial Probability Distribution Two Representations of the Hydrogen 1s, 2s,

and 3s Orbitals (a) The Electron Probability Distribution (b) The Surface Contains 90% of the Total Electron Probability (the Size of the Oribital, by Definition)

Page 24: Plan for Fri, 31 Oct 08 Lecture –Emission spectrum of atomic hydrogen (7.3) –The Bohr model of hydrogen (7.4) –Quantum mechanical model (7.5) Quiz 5.

Quantum Concepts (cont.)• Another limitation of the Bohr model was that it

assumed we could know both the position and momentum of an electron exactly.

• Werner Heisenberg development of quantum mechanics leads him to the observation that there is a fundamental limit to how well one can know both the position and momentum of a particle.

x p h

4Uncertainty in position

Uncertainty in momentum

( )p mv m v where…

Page 25: Plan for Fri, 31 Oct 08 Lecture –Emission spectrum of atomic hydrogen (7.3) –The Bohr model of hydrogen (7.4) –Quantum mechanical model (7.5) Quiz 5.

Quantum Concepts (cont.)• Example:

What is the uncertainty in velocity for an electron in a 1 Å radius orbital in which the positional uncertainty is 1% of the radius. (1 Å = 10-10 m)

x = (1 Å)(0.01) = 1 x 10-12 m

p h

4x

6.626x10 34 J.s 4 1x10 12 m

5.27x10 23 kg.m /s

v p

m

5.27x10 23 kg.m /s

9.11x10 31kg5.7x107 m

s huge

Page 26: Plan for Fri, 31 Oct 08 Lecture –Emission spectrum of atomic hydrogen (7.3) –The Bohr model of hydrogen (7.4) –Quantum mechanical model (7.5) Quiz 5.

Quantum Concepts (cont.)• Example (you’re quantum as well):

What is the uncertainty in position for a 80 kg student walking across campus at 1.3 m/s with an uncertainty in velocity of 1%.

p = m v = (80kg)(0.013 m/s) = 1.04 kg.m/s

x h

4p

6.626x10 34 J.s 4 1.04kg.m /s

5.07x10 35 m

Very small……we know where you are.