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Ion-Exchange Chromatography01:09

Ion-Exchange Chromatography

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Investigating the Icr Effect in a Zhadin's Cell.

L Giuliani1, E D'Emilia, S Grimaldi

  • 1ISPESL-Istituto Superiore per la Prevenzione e la Sicurezza del Lavoro, Centro Ricerche di Monteporzio Catone, Roma, Italy;

International Journal of Biomedical Science : IJBS
|May 16, 2013
PubMed
Summary

The Zhadin effect, related to ion cyclotronic resonance (ICR) in living matter, is explored. Researchers investigated Coherence Domains (CDs) and their response to external fields to better understand and control this phenomenon.

Keywords:
BLZZhadin’s celliono-cyclotronic resonance (ICR)

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Area of Science:

  • Biophysics
  • Quantum Electrodynamics
  • Electrochemistry

Background:

  • The Zhadin effect, concerning ion cyclotronic resonance (ICR) in biological systems, remains incompletely explained.
  • Existing theories suggest Coherence Domains (CDs) where molecules oscillate in unison with self-produced electromagnetic fields.

Purpose of the Study:

  • To investigate the Zhadin effect by exploring the role of Coherence Domains (CDs) and ICR.
  • To understand how external stimuli can induce coherent excitations and magnetic field generation within CDs.
  • To explore an alternative experimental setup to overcome the randomness of the effect.

Main Methods:

  • Theoretical exploration based on Quantum Electrodynamics.
  • Investigating the induction of coherent excitations in CDs via external fields or chemical stimulation.
  • Electrochemical analysis of the system and subsequent experiments in an alternate configuration without an electrolytic cell.
  • Systematic investigation of temperature and variable parameters to reduce randomness.

Main Results:

  • Coherent excitations within CDs can generate frictionless electric currents and magnetic fields.
  • A resonating magnetic field can influence ion movement within these currents.
  • The study explored an alternative experimental setup to better control and observe the ICR phenomenon.
  • Investigated temperature and other parameters to enhance the reproducibility of the effect.

Conclusions:

  • The Zhadin effect involves complex interactions within Coherence Domains (CDs) influenced by ion cyclotronic resonance (ICR).
  • External fields and specific conditions can manipulate these CDs, leading to observable magnetic phenomena.
  • Further research is needed to fully elucidate the mechanisms and potential applications of ICR in biological systems.