A Coherent and Unified Single Particle Description of the Integer and Fractional Quantum Hall Effects
C. S. Unnikrishnan

TL;DR
This paper proposes a novel unified single-particle framework for both integer and fractional quantum Hall effects by incorporating relativistic cosmic gravitational effects, successfully explaining observed phenomena without quasiparticles.
Contribution
It introduces a new theory that unifies the quantum Hall effects through relativistic gravity, eliminating the need for quasiparticles and complex hierarchical models.
Findings
Reproduces all observed filling factors for ν ≥ 1
Explains the absence of QHE at even fractions for ν<1
Provides a consistent description of edge and thermal transport
Abstract
There are compelling reasons to seek a new coherent description of the Quantum Hall Effects (QHE). The theories of the `Integer' (IQHE) and the `Fractional' (FQHE) quantum Hall effects are very different at present, despite their remarkable phenomenological similarity. The fractional effect invokes multi-particle dynamics and collective phenomena in the presence of a dominant Coulomb interaction, in a complex hierarchical scheme, whereas the integer effect is a simpler single-particle scenario. The experimental situation, in contrast, shows that both the effects appear seamlessly, intermingling, as either the magnetic field or the carrier density is varied. I prove that a crucial physics input that is missing in the current theories is the relativistic gravity of the matter-energy in the Universe. The dynamically induced relativistic gravitational potential play a startling role to…
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Taxonomy
TopicsQuantum and electron transport phenomena · Quantum Information and Cryptography · Advancements in Semiconductor Devices and Circuit Design
