Nuclear Spin Topological Order and Non-Reciprocal Transport: Room-Temperature Nuclear Spin Diode Design Based on Magic Number Shell Symmetry Regulation

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Main Author: Wen, Jian
Format: Recurso digital
Language:English
Published: Zenodo 2026
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author Wen, Jian
author_facet Wen, Jian
contents <p class="MsoNormal"><strong>Abstract</strong></p> <p class="MsoNormal">The traditional nuclear shell model derives the magic number sequence from experimental data induction, lacking a first-principles geometric and magnetic origin explanation. Meanwhile, existing nuclear spin electronic devices generally rely on low-temperature operation, and room-temperature nuclear spin regulation and transport remain unsolved core problems. This paper proposes a theory of intra-nuclear alpha elementary regular tetrahedral topological stacking and shell symmetry classification, independently deriving the complete shell stability sequence of 2, 8, 24, 20, 28, and establishing a nuclear spin wave dispersion model based on the global topological spin of alpha elementary particles. On this basis, this paper proposes a physical mechanism for realizing non-reciprocal transport of nuclear spin waves using the nuclear region symmetry level difference, designs a room-temperature nuclear spin diode prototype device based on the ⁴⁰Ca/Hydrogen three-layer architecture, and provides quantitatively testable experimental predictions and a three-stage verification roadmap. The core original contribution of this study is that it proposes for the first time that nuclear spin waves take intact alpha elementary particles as the basic carrier, rather than single nucleons in traditional theories. This discovery fundamentally changes the understanding of intra-nuclear dynamic processes, provides a brand-new theoretical framework for nuclear spin topological electronics, and is expected to promote the development of room-temperature nuclear spin quantum devices.</p> <p class="MsoNormal"><strong>Keywords</strong></p> <p>alpha elementary particle; topological shell structure; magic number sequence; nuclear spin wave; non-reciprocal transport; nuclear spin diode</p>
format Recurso digital
id zenodo_https___doi_org_10_5281_zenodo_20096879
institution Zenodo
language eng
publishDate 2026
publisher Zenodo
record_format zenodo
spellingShingle Nuclear Spin Topological Order and Non-Reciprocal Transport: Room-Temperature Nuclear Spin Diode Design Based on Magic Number Shell Symmetry Regulation
Wen, Jian
alpha elementary particle; topological shell structure; magic number; nuclear spin wave; non-reciprocal transport; nuclear spin diode; spintronics; topological protection; symmetry gradient; room-temperature quantum device
<p class="MsoNormal"><strong>Abstract</strong></p> <p class="MsoNormal">The traditional nuclear shell model derives the magic number sequence from experimental data induction, lacking a first-principles geometric and magnetic origin explanation. Meanwhile, existing nuclear spin electronic devices generally rely on low-temperature operation, and room-temperature nuclear spin regulation and transport remain unsolved core problems. This paper proposes a theory of intra-nuclear alpha elementary regular tetrahedral topological stacking and shell symmetry classification, independently deriving the complete shell stability sequence of 2, 8, 24, 20, 28, and establishing a nuclear spin wave dispersion model based on the global topological spin of alpha elementary particles. On this basis, this paper proposes a physical mechanism for realizing non-reciprocal transport of nuclear spin waves using the nuclear region symmetry level difference, designs a room-temperature nuclear spin diode prototype device based on the ⁴⁰Ca/Hydrogen three-layer architecture, and provides quantitatively testable experimental predictions and a three-stage verification roadmap. The core original contribution of this study is that it proposes for the first time that nuclear spin waves take intact alpha elementary particles as the basic carrier, rather than single nucleons in traditional theories. This discovery fundamentally changes the understanding of intra-nuclear dynamic processes, provides a brand-new theoretical framework for nuclear spin topological electronics, and is expected to promote the development of room-temperature nuclear spin quantum devices.</p> <p class="MsoNormal"><strong>Keywords</strong></p> <p>alpha elementary particle; topological shell structure; magic number sequence; nuclear spin wave; non-reciprocal transport; nuclear spin diode</p>
title Nuclear Spin Topological Order and Non-Reciprocal Transport: Room-Temperature Nuclear Spin Diode Design Based on Magic Number Shell Symmetry Regulation
topic alpha elementary particle; topological shell structure; magic number; nuclear spin wave; non-reciprocal transport; nuclear spin diode; spintronics; topological protection; symmetry gradient; room-temperature quantum device
url https://doi.org/10.5281/zenodo.20096879