Abstract

This disclosure formalizes a non-particle engineering framework for stabilizing quantum states against environment-induced decoherence using topological surface harmonics. By reinterpreting qubits as localized vertical tension fields on a discrete two-dimensional information fluid substrate (\(z=0\)), phase stability is established via passive geometric vortex compaction and time-periodic (Floquet) symmetry protection fields rather than active physical isolation. Real-world laboratory verification testing protocols using fractional quantum Hall two-dimensional electron gases (2DEGs), topological acoustic metamaterials, and cascaded superconducting waveguides are explicitly defined to provide prior art for scalable quantum computing architectures.

Creative Commons License

Creative Commons License
This work is licensed under a Creative Commons Attribution 4.0 License.

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