Title: Nuclear Magnetic Resonance
1Nuclear Magnetic Resonance
Yale Chemistry 800 MHz Supercooled Magnet
2(No Transcript)
3The Precessing Nucleus
4The Precessing Nucleus Again
The Continuous Wave Spectrometer
The Fourier Transform Spectrometer
5Observable Nuclei
- Odd At. Wt. s 1/2
- Nuclei 1H1 13C6 15N7 19F9
31P15 . - Abundance () 99.98 1.1 0.385 100
100
- Odd At. No. s 1
- Nuclei 2H1 14N7
- Unobserved Nuclei
- 12C6 16O8 32S16
6- For a proton,
-
- if Bo 14,092 gauss (1.41 tesla, 1.41 T),
- ?? 60x106 cycles/sec 60 MHz
- and
- ?EN Nh?? 0.006 cal/mole
7Rf Field vs. Magnetic Field for a Proton
8Rf Field /Magnetic Field for Some Nuclei
9Fortunately, all protons are not created equally!
? (?obs - ?TMS)/?inst(MHz) (240.00 - 0)/60
4.00
10Where Nuclei Resonate at 11.74T
11Chemical Shifts of Protons
12The Effect of Electronegativity on Proton
Chemical Shifts
13Chemical Shifts and Integrals
14Spin-Spin Splitting
anticipated spectrum
15Spin-Spin Splitting
observed spectrum
J is a constant and independent of field
16Spin-Spin Splitting
? 6.4 J 1.5 Hz
This spectrum is not recorded at 6 MHz!
??and J are not to scale.
17Multiplicity of Spin-Spin Splitting for s 1/2
multiplicity (m) 2?s 1
181H NMR of Ethyl Bromide (90 MHz)
CH3CH2Br
for H spins ???????? ????????????????? ???
??????????????? ????????????????????????????
for H spins ????????? ?????????? ??????????????
191H NMR of Isopropanol (90 MHz)
(CH3)2CHOH
1H septuplet no coupling to OH
(4.25-3.80)x90/6 7.5 Hz
20Proton Exchange of Isopropanol (90 MHz)
(CH3)2CHOH
21Diastereotopic Protons 2-Bromobutane
22Diastereotopic Protons 2-Bromobutane at 90MHz
231H NMR of Propionaldehyde 300 MHz
No!
241H NMR of Propionaldehyde 300 MHz
d9.79 (1H, t, J 1.4 Hz)
d1.13 (3H, t, J 7.3 Hz)
251H NMR of Ethyl Vinyl Ether 300 MHz
26ABX Coupling in Ethyl Vinyl Ether
d3.96 (1H, dd, J 6.9, 1.9 Hz)
d4.17 (1H, dd, J 14.4, 1.9 Hz)
d6.46 (1H, dd, J 14.4, 6.9 Hz)
Another example
27Dependence of J on the Dihedral Angle The
Karplus Equation
281H NMR (400 MHz) cis-4-t-Butylcyclohexanol
He ?4.03, J(Ha) 3.0 Hz J(He)
2.7 Hz
291H NMR (400 MHz) trans-4-t-Butylcyclohexanol
30Peak Shape as a Function of ?? vs. J
31Magnetic Anisotropy
32Magnetic Anisotropy
Bo
3313C Nuclear Magnetic Resonance
13C Chemical Shifts
34(No Transcript)
35One carbon in 3 molecules of squalene is 13C
What are the odds that two 13C are bonded to one
another?
10,000 to 1
3613C NMR Spectrum of Ethyl Bromide at 62.8 MHz
3713C NMR Spectrum of Ethyl Bromide at 62.8 MHz
Off resonance decoupling of the 1H region removes
small C-H coupling.
C1
C2
Broadband decoupling removes all C-H coupling.
30
0
10
20
ppm (?)
26.6
18.3
3813C Spectrum of Methyl Salicylate (Broadband
Decoupled)
3913C Spectrum of Methyl p-Hydroxybenzoate (Broadban
d Decoupled)
40The 13C Spectrum of Camphor
41The End
F. E. Ziegler, 2004