English

Proton Transport Entropy Increase In Amorphous SiO$_2$

Computational Physics 2020-03-03 v2 Statistical Mechanics Applied Physics

Abstract

This paper presents a classical thermodynamic calculation of a Greens function that describes the declining rate of entropy growth as protons move under an applied electric field, through an amorphous SiO2_2 layer in a MOS field-effect device gate oxide. The analysis builds on work by McLean and Ausman (1977) and Brown and Saks (1991). Polynomial models of fitting parameters dB/dα\alpha, y0_0, and A/y0_0 based on interpolation TABLE I of McLean and Ausman are presented. Infinite boundary conditions are introduced for the parameter dB/dα\alpha. Polynomial representations are shown of dB/dα\alpha, y0_0, A/y0_0 and the Greens function as a function of the dispersion parameter α\alpha. The paper shows that parameters y0_0 and A/y0_0 are nearly conic sections with small residuals of a few percent. This work is intended as a first step toward a near-equilibrium thermodynamic continuous-time random walk (CTRW) model (anomalous diffusion) of damage introduced into thick-oxide silicon-based powerMOS parts by space radiation effects such as those found in the Jovian radiation belts. Charge transport in amorphous silica electrical insulators is by thermally activated tunneling, not Brownian motion.

Keywords

Cite

@article{arxiv.2002.07547,
  title  = {Proton Transport Entropy Increase In Amorphous SiO$_2$},
  author = {Randall T. Swimm},
  journal= {arXiv preprint arXiv:2002.07547},
  year   = {2020}
}

Comments

9 pages, 3 figures. Version 2 corrected missing colon in bib-cite [3] and updated text for improved clarity and qualification

R2 v1 2026-06-23T13:45:16.798Z