4.7 Article

Designing Na2Zn2TeO6-Embedded 3D-Nanofibrous Poly(vinylidenefluoride)-co-hexafluoropropylene-Based Nanohybrid Electrolyte via Electrospinning for Durable Sodium-Ion Capacitors

期刊

ACS APPLIED ENERGY MATERIALS
卷 4, 期 8, 页码 8475-8487

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsaem.1c01682

关键词

PVDF-HFP; Na2Zn2TeO6; Electrospun polymer membranes; Na-ion capacitor; Nanohybrid electrolyte

资金

  1. University Grants Commission (UGC), New Delhi [F.19-214/2018]

向作者/读者索取更多资源

A novel solid-state electrospun nanohybrid polymer membrane electrolyte (esHPME) was developed to improve the ionic conductivity and energy density of sodium-ion capacitors. The hybrid electrolyte showed promising potential in enhancing the performance and durability of Na-ion capacitors.
A novel solid-state electrospun nanohybrid polymer membrane electrolyte (esHPME) for sodium-ion capacitors to improve the ionic conductivity and energy density is demonstrated. A Na2Zn2TeO6 (NZTO)-embedded 3D- nanofibrous poly-(vinylidene fluoride-co-hexafluoropropylene) (PVDF-HFP) nano-hybrid electrolyte has been reported as a high-sodium-ion conducting electrolyte for sodium-ion capacitor applications. PVDF-HFP based esHPMEs with different loadings (0, 5, 10, and 15 wt %) of NZTO nanoparticles are prepared by electrospinning and further activated by soaking them in a liquid electrolyte (1M of NaPF6 in EC/DMC, 1:1 v/v) to employ as the electrolyte-separator. Among the prepared esHPMEs, the 10 wt % NZTO-embedded esHPME exhibits the maximum ionic conductivity and electrochemical window of 2.5 V. The influence of hybridization between inorganic nanoparticles (NZTO) and the organic polymer (PVDF-HFP) is investigated by physical characterization and their electrochemical performance. A coin cell-type Na-ion supercapacitor is fabricated using battery-type Na0.67Co0.7Al0.3O2 as the anode and activated carbon as the cathode. The fabricated Na-ion supercapacitor [Na0.67Co0.7Al0.3O2/esHPME (10 wt % NZTO)/AC] delivered an energy density of 99.375 F g(-1) at 1 A g(-1) current density and exhibits 84% of capacity retention up to 1000 cycles of charge discharging. The Na-ion capacitor showed a maximum energy density and power density of 35.33 W h kg(-1) and 1.6 kW kg(-1), respectively. Thus, the present work demonstrates the great potential of the electrospun PVDF-HFP/NZTO-based nanohybrid membrane electrolyte for durable Na-ion capacitors.

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