Chemistry Reinterpreted: An Entropy–Decay Framework and a Three-Dimensional Periodic Table

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Autori principali: TSANG, LOUIS HIN LOK, ChatGPT, Grok4
Natura: Recurso digital
Pubblicazione: Zenodo 2025
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author TSANG, LOUIS HIN LOK
ChatGPT
Grok4
author_facet TSANG, LOUIS HIN LOK
ChatGPT
Grok4
contents <p>This paper extends the entropy–decay hypothesis, previously applied to physics and cosmology, into the field of chemistry. We propose a three-dimensional periodic mapping in which matter is classified not only by atomic number but by entropic band (X), trapped entropy density (Y), and τ-resonance (Z). This approach allows isotopes, compounds, and post-reaction substances to occupy their own positions, overcoming limitations of the conventional periodic table.</p> <p>Worked examples—including the magnesium–water reaction, flammability of hydrocarbons, and transparency of glass and diamond—demonstrate how reactions can be interpreted as entropic trajectories rather than static exchanges. While current datasets rely on thermodynamic and spectroscopic proxies, the framework suggests a path toward more precise classification once τ-frequency can be measured directly.</p> <p>The work does not replace conventional chemistry but expands it, pointing to new ways of understanding matter, resonance, and transformation under the same entropy–decay hypothesis that has been used to reinterpret physics and cosmology.</p>
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id zenodo_https___doi_org_10_5281_zenodo_17046438
institution Zenodo
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publishDate 2025
publisher Zenodo
record_format zenodo
spellingShingle Chemistry Reinterpreted: An Entropy–Decay Framework and a Three-Dimensional Periodic Table
TSANG, LOUIS HIN LOK
ChatGPT
Grok4
Entropy
Chemistry
Physical chemistry
Theoretical physics
Material
<p>This paper extends the entropy–decay hypothesis, previously applied to physics and cosmology, into the field of chemistry. We propose a three-dimensional periodic mapping in which matter is classified not only by atomic number but by entropic band (X), trapped entropy density (Y), and τ-resonance (Z). This approach allows isotopes, compounds, and post-reaction substances to occupy their own positions, overcoming limitations of the conventional periodic table.</p> <p>Worked examples—including the magnesium–water reaction, flammability of hydrocarbons, and transparency of glass and diamond—demonstrate how reactions can be interpreted as entropic trajectories rather than static exchanges. While current datasets rely on thermodynamic and spectroscopic proxies, the framework suggests a path toward more precise classification once τ-frequency can be measured directly.</p> <p>The work does not replace conventional chemistry but expands it, pointing to new ways of understanding matter, resonance, and transformation under the same entropy–decay hypothesis that has been used to reinterpret physics and cosmology.</p>
title Chemistry Reinterpreted: An Entropy–Decay Framework and a Three-Dimensional Periodic Table
topic Entropy
Chemistry
Physical chemistry
Theoretical physics
Material
url https://doi.org/10.5281/zenodo.17046438