3.8 Proceedings Paper

Synthesis of PVDF/SiO2 nanofiber membrane using electrospinning method as a Li-ion battery separator

期刊

MATERIALS TODAY-PROCEEDINGS
卷 44, 期 -, 页码 3245-3248

出版社

ELSEVIER
DOI: 10.1016/j.matpr.2020.11.448

关键词

PVDF/SiO2; Separator; Membrane; Electrospinning; Li-ion battery

资金

  1. Ministry of Research, Technology and Higher Education of the Republic of Indonesia [719/UN27.21/PN/2019]

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In this study, PVDF/SiO2 nanofiber membrane was synthesized by electrospinning for use as a separator in li-ion batteries. The addition of SiO2 nanoparticles improved membrane characteristics such as porosity, temperature stability, mechanical strength, and battery capacity stability. The PVDF membrane showed enhanced performance with the addition of SiO2 nanoparticles, leading to increased specific capacity and improved stability over multiple cycles.
This work reported synthesis of PVDF/SiO2 (Polyvinilidene fluoride/Silica) nanofiber membrane by electrospinning method that was used as a separator in li-ion battery. The effect of the SiO2 nanoparticle addition to the PVDF nanofiber membrane to improve membrane characteristics which include porosity, temperature stability, mechanical strength and the stability of battery capacity were systematically investigated. The electrospinning parameter was adjusted at a voltage of 15 kV, the flow rate of 1,5 ml/hour, the distance between needle to collector 17 cm and spinning time for 1 h. The immersion of PVDF membrane in colloid SiO2 nanoparticles was carried out for 1 h. Nanofiber membrane was characterized by SEM (Scanning Electron Microscope), n-butanol intrusion, the dimensional changes before and after heat treatment, stress-strain mechanical measurements with autograph and battery analyzer. The PVDF nanofiber membrane has a beaded fiber with an average fiber size was similar to 656 nm. The nanoparticle SiO2 formed double layer on the PVDF membrane. The porosity of PVDF without SiO2 and PVDF/SiO2 3000 ppm is 57% and 70%, respectively. The effect of addition SiO2 to mechanical strength were increased until 2.7 MPa and the membrane were stable at 150 degrees C for 30 min. The electrochemical performance test by using the produced PVDF membrane has a higher specific capacity than using PP membrane that is 104.6 mAh/g. The addition of SiO2 nanoparticles increased the PVDF membrane capacity stability for 6 cycles by the decline of specific capacity of 42.7 mAh/g for PVDF membrane to 18.7 mAh/g with the addition of 3000 ppm SiO2 nanoparticles. (C) 2020 Elsevier Ltd. All rights reserved. Selection and peer-review under responsibility of the scientific committee of the 7th International Conference of Advanced Materials Science and Technology 2019.

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