Exploring vibrational resonance in biophysical systems with fractional-order damping

Journal article


Roy-Layinde, T. O., Olonade, K. O., Omoteso, K., Oladunjoye, H. T., Oyero, B. A. and Laoye, J. A. 2025. Exploring vibrational resonance in biophysical systems with fractional-order damping. Journal of the Nigerian Society of Physical Sciences. 7 (3), pp. 1-8. https://doi.org/10.46481/jnsps.2025.2594
AuthorsRoy-Layinde, T. O., Olonade, K. O., Omoteso, K., Oladunjoye, H. T., Oyero, B. A. and Laoye, J. A.
Abstract

Vibrational Resonance (VR), which is characterised by the enhancement of the maximum response of a weakly driven system’s output signal induced by a high-frequency (HF) periodic signal, was numerically examined in a bi-harmonically driven dimensionless model of an enzymesubstrate reaction with fractional-order damping, which models coherent oscillations in brain waves. The model incorporates a damping force that depends on a non-integer (fractional) order derivative rather than the typical first-order derivative in classical damping models. The output response was obtained by solving the model numerically using Grunwald-Letnikov’s fractional derivatives definition. The response amplitude,¨ computed from the Fourier spectrum of the output signal, was used to characterise VR. The effect of the fractional-order damping coefficient on the observed VR was considered for different damping strength coefficients. Single-peak resonances were observed. The fractional-order damping modulated the observed VR in a manner similar to the damping strength in an integer-order system, by reducing the high-frequency signal amplitude at which VR occurs. Increased brain wave activity from enzyme-substrate reaction may be due to inherent energy transfers from changes in the rate of decay, hence significant behavioural changes in brain wave activity could be linked to inherent changes in the decay rate of the excited enzymes, even when there is no change in the number of enzyme-substrate carriers. This study reveals the potential of fractional-order damping for enhancing biophysical system modelling, with implications for understanding brain wave activities.

KeywordsVibrational Resonance; Biological System; Enzyme; Brain Wave; Differential Equation
Year2025
JournalJournal of the Nigerian Society of Physical Sciences
Journal citation7 (3), pp. 1-8
PublisherNigerian Society of Physical Sciences
ISSN2714-2817
Digital Object Identifier (DOI)https://doi.org/10.46481/jnsps.2025.2594
Publisher's version
License
Output statusPublished
Publication datesAug 2025
Online17 May 2025
Publication process dates
Accepted04 Apr 2025
Deposited02 Jun 2025
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https://repository.derby.ac.uk/item/qy636/exploring-vibrational-resonance-in-biophysical-systems-with-fractional-order-damping

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