4.8 Review

Supercapatteries as High-Performance Electrochemical Energy Storage Devices

期刊

ELECTROCHEMICAL ENERGY REVIEWS
卷 3, 期 2, 页码 271-285

出版社

SPRINGERNATURE
DOI: 10.1007/s41918-020-00063-6

关键词

Supercapattery; Supercapacitor; Capacitive and non-capacitive Faradic processes; Nanocomposites; Non-aqueous electrolyte; Device engineering

资金

  1. Ningbo Municipal Government (3315 Plan)
  2. Ningbo Municipal Government (IAMET Special Fund) [2014A35001-1]
  3. Zhejiang Provincial Applied Research Programme for Commonweal Technology [2017C31104]
  4. Engineering and Physical Sciences Research Council [EP/J000582/1, GR/R68078]
  5. EPSRC [EP/J000582/1] Funding Source: UKRI

向作者/读者索取更多资源

The development of novel electrochemical energy storage (EES) technologies to enhance the performance of EES devices in terms of energy capacity, power capability and cycling life is urgently needed. To address this need, supercapatteries are being developed as innovative hybrid EES devices that can combine the merits of rechargeable batteries with the merits of supercapacitors into one device. Based on these developments, this review will present various aspects of supercapatteries ranging from charge storage mechanisms to material selection including electrode and electrolyte materials. In addition, strategies to pair different types of electrode materials will be discussed and proposed, including the bipolar stacking of multiple supercapattery cells internally connected in series to enhance the energy density of stacks by reducing the number of bipolar plates. Furthermore, challenges for this stack design will also be discussed together with recent progress on bipolar plates.Graphic AbstractSupercapattery is an innovated hybrid electrochemical energy storage (EES) device that combines the merit of rechargeable battery and supercapacitor characteristics into one device. This article reviews supercapatteries from the charge storage mechanisms to the selection of materials including the materials of electrodes and electrolytes. Strategies for pairing different kinds of electrode materials and device engineering are discussed.

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