Essential Concepts & Key Facts
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- Quantum tunnelling is the physical phenomenon where subatomic particles penetrate a potential energy barrier higher than their kinetic energy.
- In classical physics, a particle with energy E less than barrier potential V has exactly zero probability of passing through the barrier.
- Louis de Broglie proposed wave-particle duality in 1924, establishing that every material particle has an associated de Broglie wavelength.
- In quantum mechanics, a particle's spatial probability distribution is determined by the amplitude squared of its wavefunction, governed by Schrödinger's equation.
- Inside a finite potential energy barrier, a particle's wavefunction decays exponentially rather than dropping instantly to zero.
- The probability of tunnelling decreases exponentially with an increase in barrier width and an increase in the mass of the tunnelling particle.
- Protons in the Sun's core rely on quantum tunnelling to overcome the electrostatic Coulomb barrier, enabling thermonuclear hydrogen fusion to power the Sun.
- Without quantum tunnelling, stellar core temperatures would need to be billions of degrees higher for protons to fuse through classical thermal energy alone.
- Ukrainian-American physicist George Gamow solved the alpha decay paradox in 1928 by demonstrating that alpha particles escape radioactive atomic nuclei via quantum tunnelling.
- Scanning Tunnelling Microscopes (STM), invented by Gerd Binnig and Heinrich Rohrer in 1981, utilize electron tunnelling to map surfaces at atomic resolution.
- Binnig and Rohrer shared the 1986 Nobel Prize in Physics with Ernst Ruska for developing the Scanning Tunnelling Microscope.
- Leo Esaki invented the tunnel diode in 1957, demonstrating negative differential resistance caused by quantum electron tunnelling across a heavily doped p-n junction.
- Esaki received the 1973 Nobel Prize in Physics for his experimental discovery of tunnelling phenomena in semiconductors.
- Flash memory drives write and erase stored data using Fowler-Nordheim tunnelling to transfer electrons across insulating oxide layers into a floating gate.
- The Heisenberg uncertainty principle provides the theoretical foundation for the non-zero probability of particle location beyond barriers.
- Quantum tunnelling sets physical limits on traditional silicon transistors, as microscopic gate widths below a few nanometers suffer from uncontrollable leakage currents.
- Enzymatic reactions in biological systems, including cellular respiration and photosynthesis, involve proton and electron tunnelling during metabolic catalysis.
- Superconducting Quantum Interference Devices (SQUIDs) use Josephson junctions, which rely on the quantum tunnelling of Cooper electron pairs across thin insulating barriers.
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