4.8 Article

Multi-Foldable and Environmentally-Stable All-Solid-State Supercapacitor Based on Hierarchical Nano-Canyon Structured Ionic-Gel Polymer Electrolyte

Journal

ADVANCED FUNCTIONAL MATERIALS
Volume 32, Issue 13, Pages -

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adfm.202109907

Keywords

flexibility; ionic-gel polymer electrolytes; nano-canyon structures; solvating ionic liquids; supercapacitors

Funding

  1. Hanyang University [HY-2017-N]
  2. National Research Foundation of Korea (NRF) - Korea government (MSIT) [2020R1A2C1008968, 2019R1C1C1002161]
  3. National Research Foundation of Korea [2019R1C1C1002161, 2020R1A2C1008968] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

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New ionic-gel polymer electrolytes are designed for all-solid-state supercapacitors with excellent deformability and stability, featuring high ionic conductivity, dielectric constant, and mechanical robustness. These electrolytes aim to provide stable and superior electrochemical performance for foldable electronics.
New ionic-gel polymer electrolytes (IGPEs) are designed for use as electrolytes for all-solid-state supercapacitors (ASSSs) with excellent deformability and stability. The combination of the photochemical reaction-based polymer matrix, weak-binding lithium salt with ionic liquid, and ion dissociating solvator is employed to construct the nano-canyon structured IGPE with high ionic conductivity (sigma(DC) = 1.2 mS cm(-1) at 25 degrees C), high dielectric constant (epsilon(s) = 131), and even high mechanical robustness (bending deformation for 10 000 cycles with superior conductivity retention [approximate to 91%]). This gives rise to ASSS with high compatibility and stability, which is compliant with foldable electronics. Consequently, this ASSS delivers remarkable electrochemical performance (specific capacitance of approximate to 105 F g(-1) at 0.22 A g(-1), maximum energy density and power density of 23 and 17.2 kW kg(-1)), long lifetime (approximate to 93% retention after 30 days), wider operating temperature (approximate to 0-120 degrees C), and mechanical stabilities with no significant capacitance reduction after mechanical bending and multiple folding, confirming the superior electrochemical durability under serious deformation states. Therefore, this ultra-flexible and environmentally stable ASSS based on the IGPE having the nano-canyon morphology can be a novel approach for powering up the ultra-deformable and durable next-generation wearable energy storage devices.

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