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Updated: Aug 18, 2026

Evaluating the Electrochemical Properties of Supercapacitors using the Three-Electrode System
Published on: January 7, 2022
Millimeter-thick microsupercapacitors with linear thickness-scaling of energy and power densities via multilayer
Yifeng Lu1, Congming Li1, Xiangming Li2
1Micro- and Nano-Technology Research Center, State Key Laboratory for Manufacturing Systems Engineering, Xi'an Jiaotong University, Xi'an, 710049, Shaanxi, China.
Abstract:
The relentless miniaturization of microelectronics demands energy storage systems with ultrahigh energy and power densities in ultracompact footprints. Microsupercapacitors (MSCs) are promising due to their rapid charge-discharge capabilities, but conventional electrode architectures suffer from a trade-off between energy and power density as thickness increases, exacerbated by electron transport resistance and mechanical instability. Here, we present a paradigm-shifting, truly millimeter-thick (up to 1.2 mm), high-aspect-ratio (7:1), three-dimensional microelectrode architecture that fundamentally decouples electron transport distance from electrode thickness. By roll-to-roll calendering of alternating multilayer current collectors and electrode films, we achieve precisely aligned multilayer structures with total thicknesses exceeding 1 mm, specifically demonstrating a 1.2 mm-thick, 9-layer device in an ultracompact footprint, followed by precision laser engraving to define interdigitated gaps below 180 µm, establishing a parallel electron transport network. Therefore, the architecture enables linear scaling of both energy and power density with thickness, delivering a peak energy density of 1733 µWh cm-2, comparable to that of 3D micro-batteries, and a peak power density of 153 mW cm-2, surpassing that of the state-of-the-art microsupercapacitors, alongside exceptional stability demonstrated by 95% capacitance retention after 10,000 cycles at 2000 mV s-1. Roll-to-roll manufacturing combined with laser engraving enables large-area, industrial-scale production of microsupercapacitors, resolving the persistent trilemma among electrode thickness, microscale resolution, and mechanical stability. This advancement delivers a transformative solution for next-generation micro-energy systems achieving high energy density, high power density, and strong mechanical stability.
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