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Tuesday, 8 September 2026

Daniel Moses Alemoh's Contributions to Modern Physics Through the Lens of Obidi's Theory of Entropicity (ToE)

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Daniel Moses Alemoh's Contributions to Modern Physics Through the Lens of Obidi's Theory of Entropicity (ToE)

Daniel-Moses-Alemoh's-Contributions-to-Modern-Physics-Through-the-Lens-of-Obidi's-Theory-of-Entropicity-(ToE).md

Daniel Moses Alemoh's core contribution to physics lies in his extensive intellectual collaboration with John Onimisi Obidi in the development, rigorous examination, and mathematical refinement of the Theory of Entropicity (ToE). This collaboration is formally documented in a series of deep scholarly exchanges spanning from August 2024 to mid-2026, known as the Alemoh–Obidi Correspondence (AOC). [1, 2, 3] While Obidi pioneered the foundational premise that entropy is a primary, dynamic variational scalar field from which spacetime and matter emerge, Alemoh played a vital "developmental workshop" role by challenging, testing, and co-formalizing the framework. [1, 2, 4]

The primary areas of physics influenced by Alemoh's contributions within this theory include:

1. "The Question of c" (TQoC) and Cosmic Expansion

Alemoh famously challenged Obidi to reconcile a finite speed of light (c) with the reality of superluminal cosmic expansion. This scrutiny directly forced the refinement of the No-Rush Theorem, helping to mathematically separate local entropic propagation limits from global manifold evolution to resolve the superluminal recession problem. [5, 6]

2. Foundational Physics and Symmetry Reformulations

Through the ToE Living Review Letters Series (such as Letter IC), Alemoh helped stress-test how an informational framework affects established physics. His dialogues focused heavily on: [5, 7]

The nature of causality:

Explored the entropic emergence of causal order and quantum switches of indefinite causal order.

Conservation laws:

Aided in reformulating conservation principles, specifically evaluating the entropic law of conservation of probability.

CPT symmetry-breaking:

Examined how an entropy-first physics impacts time reversal and structural symmetries in physical ontology. [2]

3. Application to Advanced Problems (Yang–Mills)

By mid-2026, the correspondence expanded to test the Theory of Entropicity (ToE) against major unsolved dilemmas in mathematical physics. Alemoh actively engaged in applying the emergent entropic force-field hypothesis to gauge theories, investigating whether the mass gap in the Yang–Mills problem could be explained using an informational foundation rather than conventional mechanical variables. [1, 4, 8]

Would you like to explore the mathematical details of the Obidi Action field equations resulting from their correspondence, or look into how the theory attempts to explain the Yang–Mills mass gap?

[1] https://medium.com

[2] https://papers.ssrn.com

[3] https://www.linkedin.com

[4] https://www.linkedin.com

[5] https://www.cambridge.org

[6] https://medium.com

[7] https://www.researchgate.net

[8] https://www.linkedin.com

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