Showing posts with label Guozhi Liu. Show all posts
Showing posts with label Guozhi Liu. Show all posts

Sunday, December 22, 2019

Abstract-A primary model of THz and far-infrared signal generation and conduction in neuron systems based on the hypothesis of the ordered phase of water molecules on the neuron surface I: signal characteristics




Zuoxian Xiang, Chuanxiang Tang, Chao Chang, Guozhi Liu,
Figure 1. Schematic diagram of the physical modelFigure 4. The field distribution and the spectrum of the field when the initial field is…Figure 5. Nonlinear model of the field

https://www.sciencedirect.com/science/article/pii/S2095927319307029

In this paper, we use the theory of quantum optics and electrodynamics to study the electromagnetic field problem in the nervous system based on the assumption of an ordered arrangement of water molecules on the neuronal surface. Using the Lagrangian of the water molecule-field ion, the dynamic equations for neural signal generation and transmission are derived. Perturbation theory and the numerical method are used to solve the dynamic equations, and the characteristics of high-frequency signals (the dispersion relation, the time domain of the field, the frequency domain waveform, etc.) are discussed. This model predicts some intrinsic vibration modes of electromagnetic radiation on the neuronal surface. The frequency range of these vibration modes is in the THz and far-infrared bands.

Wednesday, January 2, 2019

Abstract-Myelin Sheath as a Dielectric Waveguide for Signal Propagation in the Mid‐Infrared to Terahertz Spectral Range


Guozhi Liu,  Chao Chang,  Zhi Qiao,  Kaijie Wu,  Zhi Zhu,  Gangqiang Cui,   Wenyu Peng,  Yuzhao Tang,  Jiang Li, Chunhai Fan,

The myelin sheath, which serves as a dielectric waveguide for signal propagation, is experimentally confirmed using Fourier‐transform infrared microspectroscopy. The high contrast of reflectivity/refractivity between the myelin sheath and inner axon and outer medium at certain mid‐infrared to terahertz spectral range realize energy concentrates in myelin, and signal propagation is amplified when crossing the nodes of Ranvier via periodic relay.


https://onlinelibrary.wiley.com/doi/10.1002/adfm.201807862





The myelin sheath enables dramatic speed enhancement for signal propagation in nerves. In this work, myelinated nerve structure is experimentally and theoretically studied using synchrotron‐radiation‐based Fourier‐transform infrared microspectroscopy. It is found that, with a certain mid‐infrared to terahertz spectral range, the myelin sheath possesses a ≈2‐fold higher refraction index compared to the outer medium or the inner axon, suggesting that myelin can serve as an infrared dielectric waveguide. By calculating the correlation between the material characteristics of myelin and the radical energy distribution in myelinated nerves, it is demonstrated that the sheath, with a normal thickness (≈2 µm) and dielectric constant in nature, can confine the infrared field energy within the sheath and enable the propagation of an infrared signal at the millimeter scale without dramatic energy loss. The energy of signal propagation is supplied and amplified when crossing the nodes of Ranvier via periodic relay. These findings provide the first model for explaining the mechanism of infrared and terahertz neurotransmission through myelinated nerves, which may promote the development of biological‐tissue label‐free detection, biomaterial‐based sensors, neural information, and noninvasive brain–machine interfaces.