Stringnoids and Topoids
DOI:
https://doi.org/10.31224/4735Keywords:
Topological confinement, Cuerdoides, Emergent properties, Quantum topology, Spin and angular momentum, Topological strings, Higgs mechanism, Charge emergence, Fermion-boson transition, Entanglement branes, Geometric transitions, Open–closed string duality, Cohomology and homology, Quantum field topology, Pseudo-spherical geometry, Quantum state composition.Abstract
This theoretical proposal introduces the concept of cuerdoides, defined as one-dimensional entities whose interaction with the topological structure of spacetime may give rise to emergent physical properties such as mass, spin, and electric charge. It is hypothesized that spin arises from the intrinsic rotation of the cuerdoide, and that the transition from a bosonic to a fermionic state occurs when angular momentum conservation is broken due to topological constraints.
A central idea is that of topological confinement: when two fermionic strings intertwine and become enclosed within a geometric envelope, a new bosonic state may emerge. This mechanism is interpreted as a topologically induced transition, analogous to processes in topological string theory, where open strings can fuse into closed strings via geometric transitions like the conifold. It is also related to concepts of quantum entanglement and entropy, where entanglement branes delimit regions of interaction and reorganize the system’s degrees of freedom.
The proposal suggests that particle properties are not intrinsic but emerge from the topological configuration of the cuerdoide within spacetime. Mass, charge, and spin are thus understood as manifestations of interactions with fields such as the Higgs and with the geometric and topological environment. This framework integrates insights from string theory, topological quantum field theory, and algebraic geometry, offering a novel structural reinterpretation of fundamental physics.
This theoretical proposal introduces the concept of cuerdoides, defined as one-dimensional entities whose interaction with the topological structure of spacetime may give rise to emergent physical properties such as mass, spin, and electric charge. It is hypothesized that spin arises from the intrinsic rotation of the cuerdoide, and that the transition from a bosonic to a fermionic state occurs when angular momentum conservation is broken due to topological constraints.
A central idea is that of topological confinement: when two fermionic strings intertwine and become enclosed within a geometric envelope, a new bosonic state may emerge. This mechanism is interpreted as a topologically induced transition, analogous to processes in topological string theory, where open strings can fuse into closed strings via geometric transitions like the conifold. It is also related to concepts of quantum entanglement and entropy, where entanglement branes delimit regions of interaction and reorganize the system’s degrees of freedom.
The proposal suggests that particle properties are not intrinsic but emerge from the topological configuration of the cuerdoide within spacetime. Mass, charge, and spin are thus understood as manifestations of interactions with fields such as the Higgs and with the geometric and topological environment. This framework integrates insights from string theory, topological quantum field theory, and algebraic geometry, offering a novel structural reinterpretation of fundamental physics.
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