NANO-Technologies and the Physics of Missing Scales

Authors

dimensional linear approximation, fractality, limits of "dead" NANO-technology, NANO-anomalies, Resonance states.

Abstract

The development of NANO-technologies follows the path of Feynman's linear approximation of the element minimization method. With this approach, the construction of artificial structures relied on microscopic (quantum) models. However, the output of such NANO-technologies typically didn't exactly correspond to the intended outcome, but to a result that required further understanding and further learning. This is why processors require regular updates of the HIOS. The heuristics of this development path for NANO-technologies are close to zero, so NANO-technologies have become mere empiricism. Achieving UNDERSTANDING what and how to do things, and UNDERSTANDING what NANO-technologies actually do, is possible only by considering two fundamental physical aspects that are essential at the NANO-scale:

1. Local Thermodynamic Effects, determined by Prigogine's Flow Thermodynamics, must be taken into account.

2. It is necessary to consider the experience of "Living Nanotechnology," which relies not on "dead" Boltzmann statistics, but on statistics with information accumulation and on the fractal construction of Life from below, from fullerenes to minimal fractals and beyond. And both of these aspects must be considered both at the design stage of the required device's functionality and in the formation of the NANO-structure itself.

Downloads

How to Cite

NANO-Technologies and the Physics of Missing Scales. (2026). Global Journal of Science Frontier Research, 26(2), 29-34. https://doi.org/10.34257/GJSFRA257716

Author Biography

Dr. Stanislav Ordin

Stanislav Ordin is a researcher affiliated with Ioffe Institute, Russian Academy of Sciences.

References

Ordin (2024) Foundations of Quantization. 494 pp.. https://doi.org/10.1201/9781003570615

Ordin (2026) Tetrahedral Characterization of Electronic Materials. 8(1), 191. https://doi.org/10.36266/GJMSE/191

Ordin (2020) Frontier Chemistry Aspects. 20(2), 1-11. https://doi.org/10.17406/GJSFR

Ziman (1972) Principles of the theory of solids. 278 pp..

Ordin (2018) Anomalies in Thermoelectricity and Reality are Local Thermo-EMFs. 18(2), 59-64. https://globaljournals.org/GJSFR_Volume18/6-Anomalies-in-Thermoelectricity.pdf

Ordin (2017) Refinement and Supplement of Phenomenology of Thermoelectricity. 6(5), 96-107. https://doi.org/10.11648/j.ajmp.20170605.14

Stanislav Ordin (2023) Ballistic thermoelectricity. 4(2), 139-146. https://ojs.wiserpub.com/index.php/AECM/article/view/3336

Stanislav Ordin (2026) Transformation of Electronics Taking Local Effects into Account. 1(1), 1-4. https://skgpublishers.com/journal-of-material-sciences-energy-advances-jmsea-article-inpress

Stanislav Ordin (2025) Physical Bases of Nano. 22(1), 2663-2668. https://doi.org/10.31031/RDMS.2025.22.001029

Conway (1971) Regular Algebra and Finite Machines.

Conway (1976) On Numbers and Games.

Ordin (2011) Giant spatial dispersion in the region of plasmon-phonon interaction in one-dimensional- incommensurate crystal the higher silicide of manganese (HSM). 101-130.

Ordin (2026) Principles of Characterization of Nanomaterials. 8(1), 185. https://doi.org/10.36266/GJMSE/185

Ordin (2018) Experimental and Theoretical Expansion of the Phenomenology of Thermoelectricity. 18(1), 1-8. https://globaljournals.org/GJSFR_Volume18/E-Journal_GJSFR_(A)_Vol_18_Issue_1.pdf

Ordin C & BN-Foundation for Atomic-Crystalline Orbitals. 18(5), 17-47. https://globaljournals.org/GJSFR_Volume18/3-C-&-BN-Foundation.pdf

Ordin (2019) Newton's Coulomb Laws. 19(1), 145-155. https://globaljournals.org/GJSFR_Volume19/E,Journal_GJSFR_(A)_Vol_19_Issue_1.pdf

Ordin CHAOS -- IMAGINARY OSTENSIBILITY -- ORTHOGONALITY. 19(3), 49-58. https://globaljournals.org/GJSFR_Volume19/3-Chaos-Imaginary-Ostensibility.pdf

Ordin Parametrically excited Anharmonic Oscillator. 19(3), 133-144. https://globaljournals.org/GJSFR_Volume19/7-Parametrically-Excited.pdf

Ordin The Schottky Effect and Cosmos. 19(4), 39-50. https://journalofscience.org/index.php/GJSFR/article/view/2480

Stanislav Ordin Gaps and Errors of the Schrödinger Equation. 22(3), 1-5. https://globaljournals.org/GJSFR_Volume22/3-Gaps-and-Errors.pdf

Stanislav Ordin (2023) Quantization ESSENCE.. 23(5), 21-29. https://doi.org/10.34257/GJSFRAVOL23IS5PG21

Stanislav Ordin (2023) Math-Phys-Chem-Virology.. 23(5), 41-44. https://doi.org/10.34257/GJSFRAVOL23IS5PG41

Stanislav Ordin (2024) Non-Schroedinger Orbitals. 24(2), 39-48. https://doi.org/10.17406/gjsfr

Stanislav Ordin (2024) Exceptionality Exclusion: Bridging Quantization and Relativity. 24(2), 5-65. https://doi.org/10.17406/GJSFR

Stanislav Ordin (2026) Anti-Graphene. 25(6), 19-25. https://journalofscience.org/index.php/GJSFR/article/view/103041

Stanislav Ordin (2026) The Dialectics of Science and Magnetism. 26(A1), 8-14. https://doi.org/10.34257/GJSFRA254694

NANO-Technologies and the Physics of Missing Scales

Published

2026-09-23

How to Cite

NANO-Technologies and the Physics of Missing Scales. (2026). Global Journal of Science Frontier Research, 26(2), 29-34. https://doi.org/10.34257/GJSFRA257716