Claims
- 1. A method of obtaining slice-selective magnetic resonance signals comprising the steps of
- (a) applying a static magnetic field (B.sub.0) to a body thereby aligning nuclear spins,
- (b) applying a modulated magnetic gradient (G(t)) to said body,
- (c) applying a first RF excitation pulse (B.sub.1 (t)) to said body to tip said nuclear spins,
- (d) detecting first magnetic resonance signals from said body,
- (e) applying a second RF excitation pulse (B.sub.1 (t)) to said body to tip said nuclear spins, said first RF excitation pulse and said second RF excitation pulse each being half of a conventional slice-selective pulse,
- (f) detecting second magnetic resonance signals from said body, and
- (g) combining said first magnetic resonance signals and said second magnetic resonance signals.
- 2. The method as defined by claim 1 wherein each of said RF excitation pulses is slewed to zero at a slew rate, S, and said modulated magnetic gradient is slewed to zero as each of said RF excitation pulses is slewed to zero.
- 3. The method as defined by claim 2 wherein said modulated magnetic gradient is ##EQU9## and each of said RF excitation pulses is ##EQU10##
- 4. Apparatus for obtaining slice-selective magnetic resonance signals for imaging short T.sub.2 species comprising
- (a) means for applying a static magnetic field (B.sub.0) to a body thereby aligning nuclear spins,
- (b) means for applying a modulated magnetic gradient (G(t)) to said body,
- (c) means for applying a first RF excitation pulse (B.sub.1 (t)) to said body to tip said nuclear spins,
- (d) means for detecting first magnetic resonance signals from said body,
- (e) means for applying a second RF excitation pulse (B.sub.1 (t)) to said body to tip said nuclear spins, said first RF excitation pulse and said second RF excitation pulse each being half of a conventional slice-selective pulse,
- (f) means for detecting second magnetic resonance signals from said body, and
- (g) means for combining said first magnetic resonance signals and said second magnetic resonance signals.
- 5. Apparatus as defined by claim 4 wherein each of said RF excitation pulses is slewed to zero to a slew rate, S, and said modulated magnetic gradient is slewed to zero as each of said RF excitation pulses is slewed to zero.
- 6. Apparatus as defined by claim 5 wherein said modulated magnetic gradient is ##EQU11## and each of said RF excitation pulses is ##EQU12##
Government Interests
The U. S. Government has rights in the disclosed invention pursuant to National Institute of Health grant #1RO1HL34962 to Stanford University.
US Referenced Citations (5)
Non-Patent Literature Citations (1)
Entry |
Pauly et al., "AK-Space analysis of Small Tip-Angle Excitation", Journal Mag Res, vol. 81, No. 1, pp. 43-56. |