4.8 Article

Sodium-Intercalated Manganese Oxides for Achieving Ultra-Stable and Fast Charge Storage Kinetics in Wide-Voltage Aqueous Supercapacitors

Journal

ADVANCED FUNCTIONAL MATERIALS
Volume 32, Issue 46, Pages -

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adfm.202206539

Keywords

aqueous supercapacitors; charge storage mechanisms; energy storage; manganese oxides; wide voltage

Funding

  1. National Natural Science Foundation of China [51973088, 52063019, 51761135114]
  2. Double Thousand Plan Science and Technology Innovation High-end Talent Project of Jiangxi Province [jxsq2019201107]
  3. International Science and Technology Cooperation of Jiangxi Province [20203BDH80W011]

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In this study, nanostructured sodium-intercalated manganese oxides (NMOx) with modulated oxygen defects were fabricated, which exhibited good structural stability and fast ion diffusion ability, and the capacitive charge storage mechanism was governed by interlayer cation intercalation and deintercalation. Furthermore, a horizontally oriented carbon nanotube microfilm was reported as the electrode material for aqueous asymmetric supercapacitors (ASCs), achieving high energy density and excellent cycle performance. A flexible planar ASC with landmark volumetric energy/power densities and excellent mechanical flexibility was also prepared.
Nanostructured birnessite with tunneled structures and nearly ideal capacitive behaviors are attractive as electrode material for aqueous asymmetric supercapacitors (ASCs). However, their practical application is hindered by inadequate structural stability, sluggish reaction kinetics, and the lack of deeper understanding of electrochemical mechanisms. Herein, oxygen defect modulated sodium-intercalated manganese oxides (Na0.55Mn2O4-x center dot 1.5H(2)O, abbreviated as NMOx) with intercalating sodium ions and water crystals are massively fabricated, which can enable fast diffusion of cations and good structural stability. Systematical in situ and ex situ characterizations verify that the preeminent capacitive charge storage of NMOx is governed by interlayer cation intercalation and deintercalation, accompanied by interlayer spacing expansion/contraction. Subsequently, a horizontally oriented carbon nanotube microfilm with outstanding electrical conductivity and electrolyte wettability is reported for aqueous ASCs, which exhibits a wide operating voltage (2.4 V), a high energy density of 88.9 W h kg(-1), and a superb cycle performance (92.7% retention after 50 000 cycles). Furthermore, a flexible planar ASC is prepared with landmark volumetric energy/power densities (60.2 mW h cm(-3), 23.7 W cm(-3)), and excellent mechanical flexibility. This work provides not only an effective approach to fabricate tailoring structure and remarkable electrochemical properties of birnessite material, but also a deeper understanding of the charge storage mechanisms.

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