Lithium-iodine electrochemical cells exhibiting low discharge impedance
10790482 ยท 2020-09-29
Assignee
Inventors
- Lasantha Viyannalage (Pittsford, NY, US)
- Adrish Ganguly (Clarence, NY, US)
- Ashish Shah (East Amherst, NY, US)
- David Panek (Alden, NY, US)
Cpc classification
H01M4/13
ELECTRICITY
Y02P70/50
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y02E60/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H01M50/186
ELECTRICITY
International classification
H01M4/13
ELECTRICITY
Abstract
An lithium-iodine electrochemical cell and method of making is described. The cell comprises a lithium anode and a cathode of a charge transfer complex which includes iodine and preferably polyvinylpyridine. The iodine-containing cathode is in operative contact with both the anode the cell casing serving as the cathode current collector. Preferably the casing is composed of stainless steel that has been thermally annealed at temperatures of 1,800 F. or less. The annealed stainless steel has a grain size of about ASTM 7 or finer. When the iodine-containing cathode material in liquid form is filled into the casing, it contacts the inner casing surface. The passivation layer that subsequently forms at the contact interface affects cell impedance during discharge. It is desirable to maintain the internal impedance as low as possible.
Claims
1. An electrochemical cell, comprising: a) an open-ended casing closed by a lid, wherein the casing is 304L stainless-steel having a chromium content of from 15 wt % to 20 wt %, and wherein the casing is characterized as having been annealed at a temperature ranging from 1,750 F. to 1,800 F. so that the 304 L stainless-steel has a grain size that ranges from about ASTM 7 to about ASTM 8.5; b) a lithium-containing anode disposed inside the casing; and c) a cathode comprising a charge transfer complex of an organic donor component and iodine as an electron acceptor component disposed inside the casing, wherein the charge transfer complex is in operative contact with the lithium-containing anode and the casing so that the open-ended casing closed by the lid serves as a cathode current collector.
2. The electrochemical cell of claim 1, having an impedance of about 3,000 Ohm.cm.sup.2, or less, at a frequency of 0.1 Hz.
3. The electrochemical cell of claim 1, wherein iodine as the electron acceptor component of the charge transfer complex has a conductivity of greater than about 2.510.sup.4 ohm/cm.
4. The electrochemical cell of claim 1, wherein the organic donor component of the charge transfer complex is selected from the group of pyrene, perylene, anthracene, naphthalene, erythrosine, azulene, fluorene, polyethylene, polypropylene, polystyrene, polypyrrole, polyamides and polyvinyls, phenothiazine, phenazine, 10-phenylphenophiozine, thianthrene, 10-methylthiazinc, methalyineblue, poly-2-vinyl quinoline, poly-2-vinyl pyridine, poly-4-vinyl pyridine, poly-5-vinyl-2-methyl-pyridine, and poly-N-vinyl carbazole.
5. The electrochemical cell of claim 1, wherein an anode conductor is operatively connected to the lithium-containing anode, the anode conductor being electrically isolated from the casing by a glass-to-metal seal.
6. The electrochemical cell of claim 1 being configured to power a cardiac pacemaker.
7. An electrochemical cell, comprising: a) a casing comprised of 304L stainless-steel having a chromium content of from 15 wt % to 20 wt %, wherein the casing is characterized as having been annealed at a temperature ranging from 1,750 F. to 1,800 F. so that the 304 L stainless-steel has a grain size that ranges from about ASTM 7 to about ASTM 8.5; b) a lithium-containing anode disposed inside the casing; and c) a cathode comprising a charge transfer complex of an organic donor component and iodine as an electron acceptor component disposed inside the casing, wherein the charge transfer complex is in operative contact with the lithium-containing anode and the casing so that the casing serves as a cathode current collector.
8. The electrochemical cell of claim 7, wherein the organic donor component of the charge transfer complex is selected from the group of pyrene, perylene, anthracene, naphthalene, erythrosine, azulene, fluorene, polyethylene, polypropylene, polystyrene, polypyrrole, polyamides and polyvinyls, phenothiazine, phenazine, 10-phenylphenophiozine, thianthrene, 10-methylthiazinc, methalyineblue, poly-2-vinyl quinoline, poly-2-vinyl pyridine, poly-4-vinyl pyridine, poly-5-vinyl-2-methyl-pyridine, and poly-N-vinyl carbazole.
9. The electrochemical cell of claim 7, having an impedance of about 3,000 Ohm.cm.sup.2, or less, at a frequency of 0.1 Hz.
10. A method for making a low internal impedance alkali metal-iodine electrochemical cell, comprising the steps of: a) providing an open-ended casing of 304L, stainless-steel having a chromium content of from 15 wt % to 20 wt %; b) annealing the casing at a temperature ranging from 1,750 F. to 1,800 F. so that the 304 L stainless-steel has a grain size that ranges from about ASTM 7 to about ASTM 8.5 or finer; c) positioning a lithium-containing anode inside the open-ended casing; d) closing the open end of the casing with a lid; e) filling a charge transfer complex of an organic donor component and iodine as an electron acceptor component into the casing through a fill opening in the lid so that the charge transfer complex contacts the lithium-containing anode and the casing, wherein a passivation layer forms on an inner surface of the 304 L stainless-steel casing as a result of contact with the charge transfer complex; and f) closing the fill opening.
11. The method of claim 10, including providing iodine as the electron acceptor component of the charge transfer complex having a conductivity of greater than about 2.510.sup.4 ohm/cm.
12. An open-ended casing for an electrochemical cell, the casing comprising: a) 304 L stainless-steel having a chromium content of from 15 wt % to 20 wt %, b) wherein the casing is characterized as having been annealed at a temperature ranging from 1,750 F. to 1,800 F. so that the 304 L stainless steel has a grain size that ranges from about ASTM 7 to about ASTM 8.5.
13. The method of claim 10, including selecting the organic donor component of the charge transfer complex from the group of pyrene, perylene, anthracene, naphthalene, erythrosine, azulene, fluorene, polyethylene, polypropylene, polystyrene, polypyrrole, polyamides and polyvinyls, phenothiazine, phenazine, 10-phenylphenophiozine, thianthrene, 10-methylthiazinc, methalyineblue, poly-2-vinyl quinoline, poly-2-vinyl pyridine, poly-4-vinyl pyridine, poly-5-vinyl-2-methyl-pyridine, and poly-N-vinyl carbazole.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
DETAILED DESCRIPTION OF THE INVENTIONS
(7) In this specification, the term ASTM grain size means the ASTM grain size number, G, which is defined as: NAE =2G1 where NAE is the number of grains per square inch at 100magnification.
(8) It is noted that the lower the ASTM number, the coarser the grain size of a stainless steel material according to the present invention. In that respect, it has been observed that when a stainless steel material serving as the casing current collector for a lithium-iodine electrochemical cell consists of relatively coarser grains (ASTM 6 or coarser), the internal passivation layer is more stable than the passivation layer formed on a stainless steel material consisting of relatively finer grains. However, a relatively more stable passivation layer results in undesirable higher internal resistance. On the other hand, a relatively more unstable internal passivation layer resulting from a stainless steel material having a relatively finer grain size (ASTM 7 or finer) provides a lithium-iodine electrochemical cell having relatively lower internal impedance, which is desirable.
(9) Referring now to the drawings,
(10) The electrochemical couple housed inside of the casing 12 according to the present invention includes an anode, generally designated 26 and comprising an alkali metal, preferably in the form of a pair of lithium plates 28, 30 pressed together and bonded against an anode current collector 32 of a metal such as nickel or nickel alloy. The anode current collector 32 sandwiched between plates 28, 30 can be of various forms such as a length of wire, a strand or ribbon, or a mesh or screen. Each of the lithium plates 28, 30 in the cell 10 of
(11) The open top of casing 12 with the anode 26 and anode current collector 32 positioned therein, as shown in
(12) The anode reaction is:
Li.fwdarw.Li.sup.++e
and the cathode reaction is:
I.sub.2+2e.sup..fwdarw.2I.sup.
giving an overall reaction of:
2Li+I.sub.2.fwdarw.2LiI
(13) This electrochemical system is especially advantageous in that lithium has a high energy density, as the most electropositive metal with the lowest equivalent weight. The electrolyte formed on discharge of the cell is LiI. This lithium salt has the highest ionic conductivity, much higher than the ionic conductivity of divalent halides.
(14) The cathode material 36 preferably comprises a charge transfer complex of an organic material and iodine, although any other cathode active material may be used that is electronically conductive and contains available iodine for the electrochemical reaction. Charge transfer complexes are a well-known class of materials that have two components, one an electron donor, the other an electron acceptor, and that form weakly bonded complexes exhibiting higher electronic conductivity than either component. Suitable charge transfer complexes for the present invention consist of an organic donor component and iodine, the electron acceptor component, and preferably have a conductivity of greater than about 2.510.sup.4 ohm/cm. The charge transfer complexes are in chemical equilibrium with some small amount of free iodine that is available for electrochemical reaction. These charge transfer complexes have a wide range of electronic conductivities. If the conductivity is low, the current output will be comparatively low because of the high internal ohmic resistance. Cathodes containing intimate mixtures of such low conductivity complexes combined with powdered graphite or inert metal have higher conductivities and can provide electrical discharge performance comparable to cells using high conductivity complexes.
(15) In particular, the cathode material 36 is prepared by heating the organic material mixed with iodine to a temperature greater than the crystallization temperature of iodine, for example about 300 F. The amount of iodine should be greater than about 50 percent by weight of the resulting mixture so that enough iodine is available in the cathode material to provide sufficient conductivity for proper cell operation. The resulting mixture is a viscous, flowable substance, which is preferably introduced into the cell casing 12 by flowing it through the above-mentioned fill opening in lid 34. When filling is completed, a closure element 38, preferably also of stainless steel, is welded to the lid 34 to close the fill opening. A terminal lead 40 is spot welded to the lid. That is done either before or after the closure element 38 is welded to lid 34.
(16) Suitable charge transfer complexes may be prepared using as organic donor components polycyclic aromatic compounds, such as, for example, pyrene, perylene, anthracene, naphthalene, erythrosine, azulene and fluorene; organic polymers, such as, for example, polyethylene, polypropylene, polystyrene, polypyrrole, polyamides and polyvinyls; or heterocyclic compounds, containing nitrogen or sulfur, such as, for example, phenothiazine, phenazine, 10-phenylphenophiozine, thianthrene, 10-methylthiazinc and methalyineblue; and polymerized or polymerizable compounds in which a heterocyclic nitrogen moiety is incorporated as a side chain or substituent, especially vinyl compounds and polymers, such as poly-2-vinyl quinoline, poly-2-vinyl pyridine, poly-4-vinyl pyridine, poly-5-vinyl-2-methyl-pyridine and poly-N-vinyl carbazole. The proportions of iodine as the electron acceptor component to the organic donor component can be varied over a wide range, although a high proportion of uncomplexed iodine in the cathode generally increases internal cell resistance. Other iodine-containing cathodes that are electronically conductive may also be used, such as mixtures of iodine and carbon or graphite.
(17) A lithium-iodide electrolyte 42 is formed in situ through reaction of iodine present in the cathode with the lithium anode. It is equally satisfactory, and in some instances preferable, to form a film of lithium salt electrolyte on the anode surface abutting the cathode prior to cell assembly. That is done most conveniently by exposing the anode surface to dry air or an argon atmosphere containing halogen gas or vapor. It will be recognized that additional lithium-iodide electrolyte is formed by the electrochemical reaction of the cell.
(18) A strip or band of electrical insulating material 44 serves to insulate anode 26 from the metal lid 34 of casing 12 in a completed or assembled cell. An anode lead (not shown) extends from the anode current collector 32, through a glass-to-metal seal serving as an insulator and seal structure 46, to thereby serve as an anode terminal lead 48 extending outwardly from the lid 34. For a more detailed description of such an alkali metal-halogen cell, reference is made to U.S. Pat. No. 4,401,736, issued Aug. 30, 1983 and entitled Anode Assembly For Lithium Halogen Cell. This patent is assigned to the assignee of the present invention and incorporated herein by reference.
(19) According to the present invention, it has been observed that the stability of the passivation layer that forms on the inner surface of the casing 12 upon exposure to the iodine-containing cathode material is related to the grain size of the stainless steel material of the casing. A passivation layer formed on the inner surface of a stainless steel casing 12 having grains sizes that are coarser than ASTM 6 is believed to be more stable or uniform than a passivation layer formed on stainless steel having finer grain sizes. Therefore, lithium-iodine electrochemical cells made with stainless steel casings 12 having coarser grains (ASTM 6 or coarser) are believed to exhibit higher internal resistance/impedance in comparison to those made with stainless steel casings 12 having finer grains (ASTM 7 or finer).
(20) This is depicted in
(21) In accordance with the present invention, the grain size of stainless steel used to construct a casing for a lithium-iodine electrochemical cell is about ASTM 6 or finer, preferably, about ASTM 7 or finer, and more preferably from about ASTM 7.5 to about ASTM 8.5, to thereby lower the impedance of the interface between the cathode and the passivation layer that forms on the inner surface of the casing 12 serving as the cathode current collector upon contact with the iodine-containing cathode material. As used herein and in the claims, the term grain size or grain number are meant to refer to the average grain size.
(22) Accordingly, thermal annealing parameters related to the casing manufacturing process govern the grain size of the final microstructure. Experiments were conducted to lower the final annealing soak temperature, and their results are shown in
(23) In order to achieve the desired dimensions for a casing, cold working of stainless steel may need to involve multiple steps of successive deep drawing and annealing. In each cycle, the 304 L stainless steel is first drawn, then annealed at a temperature of about 1,750 F. for a soak time of about 30 minutes, drawn again, then annealed at a temperature of about 1,800 for a soak time of about 10 minutes.
(24) Each dot in
(25)
(26) Thus, it is preferred that the stainless steel grain size for the casing of a lithium-iodine electrochemical cell be about ASTM 7 or finer to maintain an internal impedance at or below 3,000 Ohm.Math.cm.sup.2 at a frequency of 0.1 Hz. More preferably, the stainless steel grain size is about ASTM 7 to about ASTM 8.5. Such fine grain sizes desirably lower the impedance during cell discharge.
(27) While 304 L stainless steel was used in all of the experiments discussed herein, it is believed that the parameters of the present invention can be reasonably extended to other stainless steels, which have similar features, especially other good corrosion resistance grades of stainless steel, namely grades 300 stainless steel, 304 stainless steel, and 316 stainless steel, to thereby provide similar grain sizes that similarly lower impedance during discharge. Moreover, the phenomenon of grain size dependence on the discharge voltage performance of a lithium-iodine electrochemical cell holds for any casing material made out of austenitic or precipitation hardened stainless steel with a chromium content of 15 to 20 wt.
(28) It should thus be understood that, while the present invention has been described in detail herein, the invention can be embodied otherwise without departing from the principles thereof, and such other embodiments are meant to come within the scope of the present invention as defined by the appended claims.