Compact 3D Metal Collectors Enabled by Roll-to-Roll Nanoimprinting for Improving Capacitive Energy Storage.

Small Methods

Micro-/Nanotechnology Research Center, State Key Laboratory for Manufacturing Systems Engineering, Xi'an Jiaotong University, Xi'an, Shaanxi, 710049, China.

Published: April 2022

AI Article Synopsis

  • The study focuses on reducing contact resistance between energy storage materials and current collectors to enhance capacitive energy storage, emphasizing the potential of 3D current collectors.
  • A new roll-to-roll nanoimprinting technique allows for the efficient transformation of flat aluminum foils into complex 3D structures, significantly lowering contact resistance and boosting capacitance performance.
  • These 3D current collectors occupy only 7.8% of the electrode volume, leading to impressive energy and power densities, and the fabrication method is cost-effective and applicable to various energy systems.

Article Abstract

Reducing the contact resistance between active materials and current collectors is of engineering importance for improving capacitive energy storage. 3D current collectors have shown extraordinary promise for reducing the contact resistance, however, there is a major obstacle of being bulky or inefficient fabrication before they become viable in practice. Here a roll-to-roll nanoimprinting method is demonstrated to deform flat aluminum foils into 3D current collectors with hierarchical microstructures by combining soft matter-enhanced plastic deformation and template-confined local surface nanocracks. The generated 3D current collectors are inserted by and interlocked with active electrode materials such as activated carbon, decreasing the contact resistance by at least one order of magnitude and quadrupling the specific capacitance at high current density of 30 A g for commercial-level mass loading of 5 mg cm . The 3D current collectors are so compact that they have a low volume percentage of 7.8% in the entire electrode film, resulting in energy and power density of 29.1 Wh L and 12.8 kW L , respectively, for stack cells in organic electrolyte. Furthermore, roll-to-roll nanoimprinting of metal microstructures is low-cost, high-throughput, and can be extended to other systems that involve the microstructured metal interface, such as batteries and thermal management.

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Source
http://dx.doi.org/10.1002/smtd.202101539DOI Listing

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