This repository serves as the unified architectural registry and behavioral simulation suite for a micro-system framework bridging vacuum micro-electronics, solid-state 2D plasmonics, and coherent fermion beam dynamics. By bypassing silicon and copper thermal bottlenecks, the architecture natively generates, routes, switches, and beams a coherent 100 Terahertz (THz) electromagnetic signal on a unified chip heterostructure. Furthermore, it integrates a macroscopically coherent, spin-polarized electron emitting framework capable of driving superradiant high-energy photonic states.
[ Phased Injector Array ] ──> [ Resonant Gold Extraction Grating ] │ ▼ [ Out-of-Plane Emission Antenna ] <── [ Crystalline Heterostructure Logic Gate ]
-
Phase I & II: Particle Generation & Initialization
- Strained GaAsP superlattice lifts valence band degeneracy (
$\Delta E \approx 50\text{ meV}$ ) to bypass the 50% spin polarization limit. - Atomic Cs-O monolayer deposition establishes Negative Electron Affinity (NEA).
-
$50\text{ MV/m}$ electrostatic gradient compresses electron bunches to picosecond regimes, mitigating the Boersch effect.
- Strained GaAsP superlattice lifts valence band degeneracy (
-
Impedance-Matching Waveguide Mouth
- Exponentially tapered mouth bridges free-space impedance (
$377,\Omega$ ) to inductive 2D channels ($\sim 50,\Omega$ ) with near-zero back-reflection.
- Exponentially tapered mouth bridges free-space impedance (
-
Active Quantum Monolayer Logic Matrix
- Atomically flat crystalline passivation bed protects high-mobility 2D channels.
- Localized electrostatic gate modulation over a Y-splitter junction executes sub-picosecond binary routing (
$0/1$ ).
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Out-of-Plane Wireless Extraction Port
- Periodic extraction array un-traps surface polaritons to launch a directional 100 THz wireless beam.
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Phase V: Relativistic Up-Boosting & Superradiant Emission
- SRF Linac boosts electron bunches to 9.89 GeV (
$\gamma \approx 19,354$ ). - Micro-undulator (
$\lambda_u = 4\text{ mm}, K = 1.0$ ) triggers superradiant emission ($P \propto N^2$ ) yielding 154.8 keV Gamma-Ray photons.
- SRF Linac boosts electron bunches to 9.89 GeV (
| Parameter | Threshold | Implementation |
|---|---|---|
| Chamber Pressure |
|
Baked 316L Stainless Steel CF Barrel + Noble Diode Pump |
| Substrate Temperature | Liquid Helium Cold-Finger suppressing Elliot-Yafet scattering | |
| Magnetic Isolation | Multi-layer Mu-Metal Shielding Cylinder |
Monolithic-Terahertz-Matter-Laser/
├── LICENSE # Master MIT License
├── README.md # Master Registry Overview
├── CITATION.cff # Academic Citation Metadata
├── docs/
│ ├── Project_Matter_Laser_White_Paper.pdf
│ └── Monolithic_THz_Architecture_Overview.docx
├── cad_layouts/
│ ├── 01_matter_laser_chip_core.gds
│ ├── 02_matter_laser_vivaldi_system.gds
│ ├── 03_matter_laser_logic_splitter.gds
│ └── 04_matter_laser_wireless_antenna.gds
└── src/
├── thz_injection_core.py # 4-Stage Behavioral Physics Engine
└── config.json # System Physics Parameters
This project is licensed under the MIT License.
Copyright (c) 2026 Abhishek Singh GitHub: https://github.com/Abhishek1033ubuntu
The underlying EDA scripts, vector solvers, and production GDSII mask layouts are archived under author baseline protocols. For academic research inquiries or strategic partnership access:
- Contact Registry for Technical Audits:
| Abhishek1033ubuntu | ABHISHEK SINGH | UIDAI: 9414 9122 9013 | E: abhishek.s@live.in | abhishek1033@gmail.com |
Note on References & IP: Detailed citations and literature references are restricted to protect Intellectual Property. See References.md for details or to request access.