Anderson Localization: Decoherence Explanation?

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In summary, Anderson localization is not best explained by decoherence. Rather, it is a coherent interference effect that occurs when a quantum particle is released in a disordered medium. The particle shows diffusion due to random interference, but localization occurs when the paths leading from the origin back to the origin are taken into account. This leads to constructive interference and the particle remaining at the origin. With increasing disorder, the number of these loops increases sharply, resulting in Anderson localization. For an introductory resource on this subject at a graduate level, consider "Anderson Localization and Its Ramifications: Disorder, Phase Coherence and Electron Correlation" published by Springer in 2003.
  • #1
Descartz2000
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Is decoherence the best way to explain the phenomenon of Anderson Localization?
 
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  • #2
I don't think so. Anderson localization is a coherent interference effect.
one way to explain it is as follows - think of a quantum particle released inside a disordered medium at point A. The amplitude for that particle to reach to a distant point B in the medium is a sum of all possible paths from A to B. in a disordered medium each path is accompanied with a different (random) phase and therefore you get random interference, and the particle shows diffusion. but this is not Anderson Localization.

Localization kicks in when you take into account the paths that lead from A back to A. there are many such paths of course, but they come in pairs: from A to A in a loop, and from A to A in the same loop but in the opposite direction. Note that such pairs do not exist for paths from A to a different point B. The point is that the two reversed loops from A to A are accompanied with exactly the same phase! - it is the same path, only reversed. as a result, the particle has a constructive interference to remain in point A - the origin. You can show, that as disorder is increased, the number of such loops increases very sharply. this is the correction to diffusion that leads to Anderson localization.
 
  • #3
That's a nice explanation MGH. Do you happen to know some introductory material into the subject? (graduate level)
 
  • #4
Anderson Localization and Its Ramifications: Disorder, Phase Coherence and Electron Correlation

Springer 2003

If you are familiar with the second quantization treatment, maybe not quite an intro. book - but solid.
 

1. What is Anderson Localization?

Anderson Localization is a phenomenon in which electrons or waves in a disordered medium become localized, or confined to a specific region, instead of spreading out evenly. This results in a lack of electronic conductivity in the material.

2. How does Anderson Localization occur?

Anderson Localization occurs due to the interference between multiple scattering events in a disordered medium. This interference causes the wavefunction of an electron to become localized and unable to propagate through the material, leading to a lack of conductivity.

3. What is the role of decoherence in Anderson Localization?

Decoherence is the process of a quantum system losing its coherence, or the ability to maintain a specific phase relationship between its components. In Anderson Localization, decoherence plays a crucial role in disrupting the interference between scattering events and causing the wavefunction to become localized.

4. Can Anderson Localization be observed in real-world systems?

Yes, Anderson Localization has been observed in a variety of systems, including electronic systems, optical systems, and even ultracold atoms. It is a well-established phenomenon in condensed matter physics and has practical applications in the development of new materials for electronic devices.

5. How is Anderson Localization relevant in the study of quantum mechanics?

Anderson Localization is a key example of how quantum mechanics can manifest in the behavior of macroscopic systems. It also provides insights into the fundamental nature of wave-particle duality and the role of disorder in quantum systems. Additionally, Anderson Localization has important implications for the design and functionality of quantum devices.

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