EP0814520A2

Process of manufacturing porous separator for electrochemical power supply

Abstract

A method of forming a porous composite separator layer for an electrochemical cell comprising the steps of printing a thin layer of a separator precursor solution on the surface of one of the electrochemical cell electrodes, drying and curing the thin layer of separator precursor solution so that it transforms into a microporous composite separator structure. In the preferred embodiment, the separator precursor solution is formulated as an ink comprising a silica aerogel filler material dispersed in a solution of polymer binder which is dissolved in a suitable solvent. The process allows the manufacture of thin and flexible composite separators which are conformally bonded to the underlying electrodes.

EP0814520A2, drawing sheet 1
Sheet 1 of 2

Term

Term ended

Projected expiry passed 2 June 2017, 9.3 years ago.

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40 claims: 9 independent, 31 dependent

  1. 1
    A process for fabricating a porous composite separator for an electrochemical cell which includes an electrode, comprising the steps of:disposing a solution of separator precursor on said electrode;and transforming said solution of separator precursor so that said solution of separator precursor forms a porous composite separator that adheres to said electrode.
  2. 13
    An electrochemical cell comprising:a first layer of electrode material;a layer of porous composite separator material disposed on said first layer of electrode material, wherein said composite material defines a plurality of micropores and wherein said layer of porous composite material adheres to said first layer of electrode material;a second layer of electrode material superjacent to said porous composite layer;and a liquid electrolyte contained within said plurality of pores of said porous composite separator material so that said electrolyte provides a conducting medium between said first and second electrode layers.
  3. 20
    An electrochemical cell having a liquid-electrolyte-permeable separator, comprising:an electrode;a layer of solid particulate material relying on said electrode for mechanical support;and a binder for said solid particulate material, the proportion of said binder to said solid particulate material being selected to permit liquid electrolyte to permeate throughout said layer of solid particulate material.
  4. 24
    A process of forming a microporous separator for an electrochemical cell which includes an electrode, comprising:printing a continuous layer of said separator on said electrode;and drying said layer to form micropores therein.
  5. 29
    An electrochemical cell having a liquid-electrolyte-permeable separator, comprising an electrode:a matrix of solid particulate material which is so thin that it would not be self supporting, which matrix is supported directly on said electrode;and sufficient binder to hold said solid particulate material in an open matrix which permits liquid electrolyte to permeate said layer of solid particulate material.
  6. 33
    A process of forming a microporous separator for an electrochemical cell which includes an electrode, comprising:conformally bonding a continuous layer of said separator on said electrode;and drying said layer to form micropores therein.
  7. 35
    The process of 34, wherein said step of disposing said solution on said electrode comprises using a printing technique to dispose said solution on said electrode.
  8. 36
    An electrochemical cell, comprising:an electrode;a discontinuous frangible layer of silica particles having voids therebetween supported directly on said electrode;and a fluid organic solution electrolyte contained within said voids.
  9. 40
    An electrochemical cell, comprising:an electrode;a discontinuous frangible layer of solid particles having voids therebetween adjacent said electrode;and a fluid organic solution electrolyte contained within said voids, wherein the ratio of the specific resistivity of the electrolyte to the specific resistivity of the electrolyte filled separator is greater than 0.10, using a complex impedance measurement over the frequency range of 100,000Hz to 0.01Hz and a sinusoidal voltage of 5mV.