On Supercapacitors Time-Domain Spectroscopy. C/R Characteristic Slope
arXiv:2401.06409 · doi:10.1016/j.jpowsour.2024.234196
Abstract
A novel time-domain technique for supercapacitor characterization is developed, modeled numerically, and experimentally tested on a number of commercial supercapacitors. The method involves momentarily shorting a supercapacitor for a brief duration, denoted as , and measuring first and second moments of current along with the potential before and after shorting. The effective and are then obtained from charge preservation and energy dissipation invariants. A linear behavior in parametric plot is observed by several orders of . This gives a characteristic slope: how much we can ``gain'' if we are ready to ``lose'' in internal resistance. The characteristic slope characterizes possible energy and power properties of the device in terms of materials and technology used, this is a measure of supercapacitor perfection. The technique has been proven with experimental measurements and then validated through computer modeling, analytic analysis, and impedance spectroscopy on a number of circuit types: transmission line, binary tree, etc., a new n-tree element (nTE) is introduced. The approach offers an alternative to low-frequency impedance spectroscopy and methods outlined in the IEC 62391 standard. It provides valuable insights into the performance and characteristics of supercapacitors.
The technique from arXiv:1908.02559 was extended to obtain R(τ). A generalization from [Re Z(ω),Im Z(ω)] to [R(τ),C(τ)] is the main concept of Time Domain Spectroscopy