Looking for breakthrough ideas for innovation challenges? Try Patsnap Eureka!

A preparation method of fluorine-containing polymer porous nano-micron fiber electrode separator

A fiber electrode and polymer technology, used in circuits, electrical components, battery pack components, etc., can solve the problems of low liquid holding capacity, easy fusion and poor mechanical strength of non-porous fiber diaphragms, and achieve good thermal stability. The effect of stability and acid and alkali resistance, improving cycle life and improving power density

Active Publication Date: 2017-02-01
锦州凯美能源有限公司
View PDF7 Cites 0 Cited by
  • Summary
  • Abstract
  • Description
  • Claims
  • Application Information

AI Technical Summary

Problems solved by technology

[0003] CN 104022245A discloses a polyethylene terephthalate / polyolefin composite fiber prepared by a coaxial melt electrospinning method. The fiber outer layer material is a polyolefin material, which has a certain closed-cell protection function and prevents charging and discharging Thermal runaway occurs during the process, which improves the safety performance of energy storage devices, but the coaxial melt spinning process is difficult, and fusion is prone to occur during the spinning process, destroying the nano-micron structure of the fiber, and the polyester and polyolefin materials used Poor physical and chemical stability affects the cycle life of energy storage devices
[0004] CN 102587040A discloses a method for preparing a polyvinylidene fluoride electrospinning fiber diaphragm. The method is to electrospin an organic solution of polyvinylidene fluoride under a high-voltage electrostatic field to obtain a polyvinylidene fluoride electrospinning fiber Diaphragm: It has the characteristics of simple process and high processing efficiency, but the non-porous structure fiber diaphragm has low liquid holding capacity and poor ion permeability
[0005] CN 103258978A discloses a method for preparing an inorganic composite porous nanofiber diaphragm. The method is to electrospin an organic solution of polyvinylidene fluoride-hexafluoropropylene copolymer, water-soluble polymer and inorganic nanoparticles, and then water-soluble The polymer is removed to obtain a fluorine-containing polymer inorganic composite porous nanofiber diaphragm, thereby improving its hydrophilicity and liquid holding capacity, but adding inorganic nanoparticles in this method reduces the continuous fiber-forming ability of electrospinning, and the mechanical strength is poor. The porosity is low, and the wettability of the organic electrolyte to the separator is not ideal

Method used

the structure of the environmentally friendly knitted fabric provided by the present invention; figure 2 Flow chart of the yarn wrapping machine for environmentally friendly knitted fabrics and storage devices; image 3 Is the parameter map of the yarn covering machine
View more

Image

Smart Image Click on the blue labels to locate them in the text.
Viewing Examples
Smart Image
  • A preparation method of fluorine-containing polymer porous nano-micron fiber electrode separator
  • A preparation method of fluorine-containing polymer porous nano-micron fiber electrode separator
  • A preparation method of fluorine-containing polymer porous nano-micron fiber electrode separator

Examples

Experimental program
Comparison scheme
Effect test

Embodiment 1

[0032] 1.1. Preparation of spinning precursor

[0033] Dissolve 2.0g of polyvinylidene fluoride (number-average molecular weight: 200,000) and 2.0g of zinc acetate (mass ratio: 1:1) in N,N-dimethylformamide to prepare the mass ratio concentration of polyvinylidene fluoride 20% of the spinning precursor;

[0034] 1.2. Preparation of polyvinylidene fluoride-zinc acetate electrospun fiber membrane

[0035] The prepared spinning precursor is electrospun with the copper mesh as the receiver, the voltage of the electrospinning is 10kV, the distance between the needle and the receiver (spinning spacing) is 10cm, and polyvinylidene fluoride-acetic acid is obtained on the receiver. Zinc electrospun fiber membrane, after 30 minutes of electrospinning, the polyvinylidene fluoride-zinc acetate electrospun fiber membrane was vacuum-dried at 40°C for 24 hours for later use;

[0036] 1.3. Preparation of polyvinylidene fluoride-zinc oxide electrospun fibers

[0037] Add the polyvinylidene ...

Embodiment 2

[0042] 1.1. Preparation of spinning precursor

[0043] Dissolve 2.0 g poly(vinylidene fluoride-co-hexafluoropropylene) (number average molecular weight: 50,000) and 0.4 g copper acetate (mass ratio: 5:1) in N,N-dimethylacetamide / acetone ( In the mixed solution with a mass ratio of 3:7), it is prepared into a spinning precursor whose mass ratio concentration of poly(vinylidene fluoride-co-hexafluoropropylene) is 12%;

[0044] 1.2. Preparation of poly(vinylidene fluoride-co-hexafluoropropylene)-copper acetate electrospun fiber membrane

[0045]The prepared spinning precursor is electrospun with the copper mesh as the receiver, the voltage of the electrospinning is 15kV, the distance between the needle and the receiver is 15cm, and poly(vinylidene fluoride-co-hexafluoropropylene) is obtained on the receiver. )-copper acetate electrospinning fiber membrane, after electrospinning for 80 minutes, the poly(vinylidene fluoride-co-hexafluoropropylene)-copper acetate electrospinning fi...

Embodiment 3

[0052] 1.1. Preparation of spinning precursor

[0053] Dissolve 20.0g poly(vinylidene fluoride-co-trifluoroethylene) (number average molecular weight: 150,000) and 2.0g tin chloride (mass ratio: 10:1) in N-methylpyrrolidone to prepare poly( Vinylidene fluoride-co-trifluoroethylene) mass ratio concentration is the spinning precursor of 5%;

[0054] 1.2. Preparation of poly(vinylidene fluoride-co-trifluoroethylene)-tin chloride electrospun fiber membrane

[0055] The prepared spinning precursor is electrospun with the copper mesh as the receiver, the voltage of the electrospinning is 30kV, and the distance between the needle and the receiver is 20cm, and poly(vinylidene fluoride-co-trifluoroethylene) is obtained on the receiver. )-tin chloride electrospinning fiber membrane, after electrospinning for 120 minutes, the poly(vinylidene fluoride-co-trifluoroethylene)-tin chloride electrospinning fiber membrane was vacuum-dried at 40°C for 24 hours for later use, and measured Its B...

the structure of the environmentally friendly knitted fabric provided by the present invention; figure 2 Flow chart of the yarn wrapping machine for environmentally friendly knitted fabrics and storage devices; image 3 Is the parameter map of the yarn covering machine
Login to View More

PUM

PropertyMeasurementUnit
specific surface areaaaaaaaaaaa
diameteraaaaaaaaaa
specific surface areaaaaaaaaaaa
Login to View More

Abstract

A method for preparing a fluorine-containing polymer porous nano-micron fiber electrode separator. The fluorine-containing polymer and a soluble metal salt are dissolved in an organic solvent to prepare a spinning precursor, and then the fluorine-containing polymer is prepared by high-voltage electrospinning ‑Metal salt electrospun fiber membrane, adding mineralizer for hydrothermal reaction to obtain fluoropolymer‑metal oxide nanometer fiber membrane, acid treatment in dilute acid aqueous solution to make fluoropolymer‑metal oxide The metal oxide nanoparticles in the nanometer fiber membrane are converted into soluble metal salts and dissolved in the inorganic acid aqueous solution to obtain the fluorine-containing polymer porous nanometer fiber electrode diaphragm. The advantages are: it can effectively increase the liquid holding capacity, wettability and migration rate of conductive ions of the diaphragm, reduce the resistance of the diaphragm, electrodes and electrolyte, improve the electrochemical performance of the supercapacitor such as power density and cycle life, and thus obtain high power density of supercapacitors.

Description

technical field [0001] The invention belongs to the field of electrode diaphragm preparation, in particular to a method for preparing a fluorine-containing polymer porous nanometer fiber electrode diaphragm for a supercapacitor. Background technique [0002] As a high-power energy storage device, supercapacitors work in continuous charging and discharging under high-power and high-current conditions. The diaphragm is placed between the two poles of the capacitor to separate the positive and negative poles, preventing the direct contact of the active materials of the two poles and causing a short circuit, while not preventing the migration of ions in the capacitor and allowing the ions to pass through freely. The electrospun nano-micron fiber separator can effectively increase the ion migration rate, reduce the concentration polarization, and ensure the supercapacitor's high-capacity, long-term stable charge-discharge mode. [0003] CN 104022245A discloses a polyethylene ter...

Claims

the structure of the environmentally friendly knitted fabric provided by the present invention; figure 2 Flow chart of the yarn wrapping machine for environmentally friendly knitted fabrics and storage devices; image 3 Is the parameter map of the yarn covering machine
Login to View More

Application Information

Patent Timeline
no application Login to View More
Patent Type & Authority Patents(China)
IPC IPC(8): H01M2/16H01M50/403H01M50/411H01M50/44H01M50/443H01M50/489H01M50/491H01M50/497
CPCH01M50/403H01M50/446Y02E60/10
Inventor 何铁石应俊曲蛟魏颖任雪王道林
Owner 锦州凯美能源有限公司
Who we serve
  • R&D Engineer
  • R&D Manager
  • IP Professional
Why Patsnap Eureka
  • Industry Leading Data Capabilities
  • Powerful AI technology
  • Patent DNA Extraction
Social media
Patsnap Eureka Blog
Learn More
PatSnap group products