Zero-Strain Intercalation and Phase Symmetry in Aluminum-Manganese Sulfate (Al-MnSO₄) Battery Systems: A V-QRAM Simulation Study
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2026
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| _version_ | 1866902233374785536 |
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| author | Kyjovsky, Peter |
| author_facet | Kyjovsky, Peter |
| contents | <p>This technical report presents the discovery of a thermodynamically stable cathode configuration for aluminum-ion (Al-ion) batteries based on manganese sulfate ($MnSO_4$). Utilizing the <strong>V-QRAM</strong> quantum simulation suite (deployed on <strong>AWS Braket</strong> infrastructure), a specific topological equilibrium was identified that eliminates mechanical strain during $Al^{3+}$ ion intercalation.</p> <p><strong>Key Findings:</strong></p> <ul> <li> <p><strong>Zero-Strain Identification:</strong> Discovery of a stable state achieved through a cluster symmetry of .50 in the charged state, effectively preventing lattice pulverization.</p> </li> <li> <p><strong>Lattice Verification:</strong> Structural stability validated using a 55-node Higgs lattice Hamiltonian within a Mackay icosahedron geometry (calibrated at 82.67 GeV).</p> </li> <li> <p><strong>Slipstream Regime:</strong> Proposal for an industrial high-frequency conditioning process (1.3 GHz) utilizing AC Stark Shift to achieve a continuous driving limit, minimizing ground-state noise interaction.</p> </li> </ul> <p>The documentation provides a comprehensive theoretical framework for a next-generation stationary energy storage system. This technology offers 70% higher cost-efficiency than current LFP/NMC benchmarks while ensuring extreme cyclability through topological lattice optimization.</p> <p><code>Aluminum-ion batteries</code>, <code>Manganese Sulfate</code>, <code>V-QRAM</code>, <code>Quantum Simulation</code>, <code>Zero-Strain</code>, <code>Energy Storage</code>, <code>Peter Kyjovský</code>, <code>AWS Braket</code>, <code>Higgs Lattice</code></p> |
| format | Recurso digital |
| id | zenodo_https___doi_org_10_5281_zenodo_19069303 |
| institution | Zenodo |
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| publishDate | 2026 |
| publisher | Zenodo |
| record_format | zenodo |
| spellingShingle | Zero-Strain Intercalation and Phase Symmetry in Aluminum-Manganese Sulfate (Al-MnSO₄) Battery Systems: A V-QRAM Simulation Study Kyjovsky, Peter <p>This technical report presents the discovery of a thermodynamically stable cathode configuration for aluminum-ion (Al-ion) batteries based on manganese sulfate ($MnSO_4$). Utilizing the <strong>V-QRAM</strong> quantum simulation suite (deployed on <strong>AWS Braket</strong> infrastructure), a specific topological equilibrium was identified that eliminates mechanical strain during $Al^{3+}$ ion intercalation.</p> <p><strong>Key Findings:</strong></p> <ul> <li> <p><strong>Zero-Strain Identification:</strong> Discovery of a stable state achieved through a cluster symmetry of .50 in the charged state, effectively preventing lattice pulverization.</p> </li> <li> <p><strong>Lattice Verification:</strong> Structural stability validated using a 55-node Higgs lattice Hamiltonian within a Mackay icosahedron geometry (calibrated at 82.67 GeV).</p> </li> <li> <p><strong>Slipstream Regime:</strong> Proposal for an industrial high-frequency conditioning process (1.3 GHz) utilizing AC Stark Shift to achieve a continuous driving limit, minimizing ground-state noise interaction.</p> </li> </ul> <p>The documentation provides a comprehensive theoretical framework for a next-generation stationary energy storage system. This technology offers 70% higher cost-efficiency than current LFP/NMC benchmarks while ensuring extreme cyclability through topological lattice optimization.</p> <p><code>Aluminum-ion batteries</code>, <code>Manganese Sulfate</code>, <code>V-QRAM</code>, <code>Quantum Simulation</code>, <code>Zero-Strain</code>, <code>Energy Storage</code>, <code>Peter Kyjovský</code>, <code>AWS Braket</code>, <code>Higgs Lattice</code></p> |
| title | Zero-Strain Intercalation and Phase Symmetry in Aluminum-Manganese Sulfate (Al-MnSO₄) Battery Systems: A V-QRAM Simulation Study |
| url | https://doi.org/10.5281/zenodo.19069303 |