Overview
T.Y.K.E. is a proprietary system for generating truly random numbers (TRNG) intended for secure cryptographic applications in the post-quantum era. Unlike traditional pseudorandom number generators (PRNG) or photon-based quantum random number generators (QRNG), T.Y.K.E. uses a novel entropy source — deuterium activity in natural heavy water — captured and processed through a unique algorithm to produce statistically verified, unpredictable, and uncorrelated number streams. It provides an entropy layer for financial simulations, military-grade encryption, AI randomness, secure games, and cloud computing, with easy API integration, cloud scalability, and low hardware dependency. The system directly challenges academic QRNG initiatives such as NIST/CURBy, outperforming them in speed, cost, and reliability, and shifting true randomness from the lab to the field.
Applications
Encryption keys; secure games; simulations; tokenization. Sectors: financial simulations, military-grade encryption, AI randomness, secure gaming, cloud computing.
Operating Principle
Radiation from deuterium in natural heavy water serves as the physical entropy source. A proprietary processing layer with entropy amplification converts this into statistically verified, unpredictable, and uncorrelated number streams. Entropy quality is non-deterministic and physically untraceable, and the output is resistant to Shor's and Grover's quantum algorithms.
Key Parameters
| Feature | Specification |
|—|—|
| Entropy source | Radiation from deuterium in natural heavy water |
| Processing layer | Proprietary algorithm with entropy amplification |
| Verified standards | NIST SP 800-90A/B, Diehard tests |
| Output speed | 1–10 Kbps, scalable |
| Compliance | GDPR, SOC2, Post-Quantum Crypto Ready |
| Cloud integration | Supported (with API) |
| Local hardware | Not required (cloud-based generation) |
| Entropy quality | Non-deterministic, physically untraceable |
| Security layer | Resistant to Shor's and Grover's quantum algorithms |
| Customization | Configurable entropy levels, API controls |
| Use cases | Encryption keys, secure games, simulations, tokenization |
Architecture and Components
Physical entropy source based on deuterium in natural heavy water; proprietary entropy amplification and processing algorithm; cloud-based generation service with API access; no local hardware required.
Advantages
Versus QRNGs: 10× faster, 10–50× cheaper, better integration. Versus PRNGs: truly unpredictable and not seed-reversible. Versus the NIST-CURBy project: more scalable, commercially viable, and empirically verified. Easy API integration, cloud scalability, and low hardware dependency. Compliant with NIST SP 800-90A/B and Diehard tests, GDPR, SOC2, and post-quantum crypto readiness.
Integrations
Optical-Quantum Systems · Post-Quantum Cryptography · AI Randomness Modules · Cloud Vault APIs · Blockchain
Deployment & Operation
Cloud-based generation with API integration; no local hardware required. Demo launch scheduled for September 2025.
TRL
TRL 6 — Functional prototype validated under real-world conditions. Demo launch scheduled for September 2025.
Market Potential
Demand for verifiably true randomness is accelerating as organizations prepare for the post-quantum transition across financial simulation, defense-grade encryption, AI training and inference, secure gaming, and cloud infrastructure. T.Y.K.E. is positioned against both incumbent PRNG providers and academic photon-based QRNG initiatives such as NIST/CURBy, competing on speed, cost, and ease of integration. As post-quantum cryptography standards push organizations toward stronger entropy sources across finance, government, and cloud sectors, the addressable base extends to any system currently relying on pseudorandom or hardware-QRNG sources for key generation.
Typical Project Economics
T.Y.K.E. is delivered as a cloud-based entropy service rather than a capital equipment sale, so customer economics center on API consumption rather than upfront hardware investment. The core commercial advantage is cost per unit of verified entropy: T.Y.K.E. is positioned at roughly 10–50× lower cost than academic/photon-based QRNG alternatives, with no local hardware to purchase, install, or maintain — shifting the economics from capital-intensive quantum hardware toward a low-friction, usage-based subscription model suited to enterprise and cloud customers.
Risk Factors
Independent certification and audit risk for a physically sourced randomness claim; dependency on a stable, uncontaminated heavy-water entropy substrate; competitive response from established PRNG and QRNG vendors as post-quantum standards mature; adoption risk tied to long enterprise procurement cycles in security-critical sectors; regulatory and export-control considerations around cryptographic infrastructure; and execution risk in scaling from demo to a production cloud service.
Related Technologies
Optical-Quantum Systems · Post-Quantum Cryptography · AI Randomness Modules · Cloud Vault APIs · Blockchain
