A physical mechanism is suggested for a resonant interaction of weak magnetic fields with biological systems. An ion inside a Ca(2+)-binding protein is approximated by a charged oscillator. A shift in the probability of ion transition between different vibrational energy levels occurs when a combination of static and alternating magnetic fields is applied. This in…
Bioelectromagnetics Template
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About the Bioelectromagnetics format
Bioelectromagnetics is a peer-reviewed journal published by Wiley, covering Electromagnetic Fields and Biological Effects, Magnetic and Electromagnetic Effects, Wireless Body Area Networks.
| Publisher | Wiley |
|---|---|
| Reference style | Author–year (Chicago) Author–year — (Smith, 2023) in the text Smith, Ada, Ben Jones, and Cara Lee. 2023. "A Representative Article Title." Bioelectromagnetics 12 (3): 45–58.
Formats any DOI in Bioelectromagnetics style. No sign-up. |
| Publishes research in | Electromagnetic Fields and Biological Effects Magnetic and Electromagnetic Effects Wireless Body Area Networks Spaceflight effects on biology Microbial Inactivation Methods |
| ISSN | 0197-8462 |
| Citation impact (2-yr) | 1.64 |
| h-index | 116 |
| i10-index | 2,008 |
| Total citations | 91,037 |
| Article processing charge | $3,190 |
| Top institutions publishing here | Foundation for Research on Information Technologies in Society |
| Journal website | www3.interscience.wiley.com |
| You get | A submission-ready PDF and the editable LaTeX source — ready to submit. |
Papers published in Bioelectromagnetics per year
Citation impact of Bioelectromagnetics by publication year
Citations each year’s papers have accumulated so far — the most recent years are still building up.
Most-cited papers in Bioelectromagnetics
A simple electrical model for biological cells predicts an increasing probability for electric field interactions with cell substructures of prokaryotic and eukaryotic cells when the electric pulse duration is reduced into the sub-microsecond range. The validity of this hypothesis was verified experimentally by applying electrical pulses with electric field intensities of up to 5.3 MV/m…
Levels of DNA single-strand break were assayed in brain cells from rats acutely exposed to low-intensity 2450 MHz microwaves using an alkaline microgel electrophoresis method. Immediately after 2 h of exposure to pulsed (2 microseconds width, 500 pulses/s) microwaves, no significant effect was observed, whereas a dose rate-dependent [0.6 and 1.2 W/kg whole body specific…
A common mistake in biomagnetic experimentation is the assumption that Helmholtz coils provide uniform magnetic fields; this is true only for a limited volume at their center. Substantial improvements on this design have been made during the past 140 years with systems of three, four, and five coils. Numerical comparisons of the field uniformity generated…
An international seminar was held June 4-6, 1997, on the biological effects and related health hazards of ambient or environmental static and extremely low frequency (ELF) electric and magnetic fields (0-300 Hz). It was cosponsored by the World Health Organization (WHO), the International Commission on Non-Ionizing Radiation Protection (ICNIRP), the German, Japanese, and Swiss governments.…