CROSSLINKED POLYMER BASED ON A RANDOM COPOLYMER AND A VOLATILE POLYAMINATED CROSSLINKING AGENT AND PROCESSES FOR PRODUCING SAME
20170327650 · 2017-11-16
Assignee
Inventors
- Jean-Christophe DAIGLE (Longueuil, Québec, CA)
- Serge VERREAULT (St-Tite, Québec, CA)
- Nancy TURCOTTE (Varennes, Québec, CA)
- Julie HÂMEL-PAQUET (Montréal, Québec, CA)
- Karim ZAGHIB (Longueuil, Québec, CA)
Cpc classification
C07C211/18
CHEMISTRY; METALLURGY
C08F220/286
CHEMISTRY; METALLURGY
C08F220/325
CHEMISTRY; METALLURGY
C08L55/005
CHEMISTRY; METALLURGY
C08J3/24
CHEMISTRY; METALLURGY
C08F220/286
CHEMISTRY; METALLURGY
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
C08F220/325
CHEMISTRY; METALLURGY
C08F2810/20
CHEMISTRY; METALLURGY
C08J2333/14
CHEMISTRY; METALLURGY
C08L55/005
CHEMISTRY; METALLURGY
International classification
C08G81/02
CHEMISTRY; METALLURGY
Abstract
Crosslinked polymers and their uses in electrochemical systems, for example, as electrolyte membrane, are described. More precisely, these crosslinked polymers are formed by the crosslinking of a random copolymer based on monomers of glycidyl methacrylate or acrylate and of poly(ethylene glycol) methyl acrylate or methacrylate with a volatile polyamine crosslinking agent.
Claims
1. Crosslinked polymer composed of a random copolymer based on glycidyl methacrylate or acrylate (Monomer A) and of poly(ethylene glycol) methyl acrylate or methacrylate (Monomer B) and of a volatile polyamine crosslinking agent.
2. Polymer according to claim 1, wherein the random copolymer is of Formula I: ##STR00007## wherein: R.sup.1 and R.sup.2, independently at each occurrence, is a hydrogen atom or a methyl group; n is such that units A (derived from Monomer A) represent from 10 to 45% molar of the copolymer composition; m is such that units B (derived from Monomer B) represent from 55 to 90% molar of the copolymer composition, where n+m=100%; and p defines the number of ethylene glycol units present in unit B and is between 2 and 30, limits included, or is such that unit B has a number molar weight between 200 and 1000 g/mol, limits included; the random copolymer of Formula I having a number molar weight between 100,000 and 400,000 g/mol, limits included.
3. Polymer according to claim 2, wherein R.sup.1 is a methyl group and R.sup.2 is a hydrogen atom.
4. Polymer according to claim 2, wherein the random copolymer is of Formula II: ##STR00008## wherein: n, m and p are as defined in claim 2; the random copolymer of Formula II having a number molar weight between 100,000 and 400,000 g/mol, limits included.
5. Polymer according to claim 2, wherein the number molar weight of the random copolymer is in the range of from 100,000 to 250,000 g/mol, limits included, and unit A represents from 15 to 35 mol % of the random copolymer composition.
6. Polymer according to claim 2, wherein the number molar weight of the copolymer is in the range of from 250,000 to 400,000 g/mol, limits included, and unit A represents from 35 to 45 mol % of the copolymer composition.
7. Polymer according to claim 2, wherein the number molar weight of the random copolymer is between 280,000 to 360,000 g/mol and unit A represents about 39 mol % of the copolymer composition.
8. Polymer according to claim 1, wherein the crosslinking agent is an alkyl compound comprising 1 or 2 carbon(s), and at least two amine groups, the crosslinking agent having a boiling point of less than 150° C.
9. Polymer according to claim 1, wherein the crosslinking agent is ethylenediamine, 1,3-diaminopropane, 1,2-diaminopropane or a mixture of at least two of them, preferably ethylenediamine.
10. Polymer according to claim 9, wherein the crosslinking agent is ethylenediamine.
11. Process for the preparation of a crosslinked polymer as defined in claim 1, which comprises the following steps: (a) mixing of the random copolymer and the volatile polyamine crosslinking agent; (b) crosslinking of the mixture obtained in step (a); and (c) elimination of the residual volatile polyamine crosslinking agent by evaporation, steps (b) and (c) being performed simultaneously or in sequence.
12. Process according to claim 11, which further comprises a step of spreading the mixture obtained in step (a) on a support.
13. Process according to claim 11, which comprises the addition of a solvent in step (a).
14. Process according to claim 13, wherein the solvent comprises a lower alcohol (such as methanol, ethanol, isopropanol or n-propanol), water, or a mixture of at least two of these.
15. Process according to claim 14, wherein the solvent is a lower alcohol selected from methanol, ethanol, isopropanol, n-propanol and their mixtures.
16. Process according to claim 15, wherein the solvent is ethanol.
17. Process according to claim 13, which further comprises a solvent evaporation step prior to the crosslinking step (b), for example, by evaporation under atmospheric pressure at a temperature between 50 and 100° C., or between 60° C. and 90° C.
18. Process according to claim 11, wherein the crosslinking step (b) comprises a heating step.
19. Process according to claim 11, wherein step (c) comprises a step of evaporation by heating under vacuum.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0017]
[0018]
[0019]
[0020]
[0021]
DETAILED DESCRIPTION
[0022] The following detailed description and examples are illustrative and should not be interpreted as further limiting the scope of the invention.
[0023] The term about
as used in the present document means approximately, in the region of, and around. Where the term
about
is used in connection with a numerical value, it modifies the value by a variation of 10% above and below in comparison to the nominal value. This term may also take into account, for example, the experimental error of the measuring instrument.
[0024] The present application relates to the use of a random copolymer based on glycidyl methacrylate or acrylate (Monomer A) and poly(ethylene glycol) methyl acrylate or methacrylate (Monomer B) (random copolymer) and a volatile polyamine crosslinking agent for the formation of a crosslinked polymer. The technology also relates to the crosslinked polymer thus formed and its use in electrochemical applications. For example, for the formation of solid electrolyte membranes used in electrochemical cells.
[0025] According to the first aspect, the random copolymer is of Formula I
##STR00004##
wherein:
R.sup.1 and R.sup.2, independently and at each occurrence, is a hydrogen atom or a methyl group;
n is an integer and is such that units A (derived from Monomer A) represent from 10 to 45% molar of the copolymer composition;
m is an integer and is such that units B (derived from Monomer B) represent from 55 to 90% molar of the copolymer composition, where n+m=100%; and
p is an integer and defines the number of ethylene glycol units present in unit B and is between 2 and 30 or is such that the unit B has a number molar weight between 200 and 1000 g/mol, or between 250 and 600 g/mol, or between 400 and 750 g/mol, or between 400 and 600 g/mol, limits included;
the random copolymer of Formula I having a number molar weight between 100 000 and 400 000 g/mol, limits included.
[0026] According to one example, R.sup.1 is a methyl group and R.sup.2 is a hydrogen atom at each occurrence. According to another example, R.sup.1 and R.sup.2 both are a methyl group at each occurrence.
[0027] According to one embodiment, the random copolymer is of Formula II, defined as follows:
##STR00005##
[0028] Preferably, the random copolymer of Formula II possesses a number molar weight between 100 000 and 400 000 g/mol; where n is an integer and represents the number of units A (GMA) such that these compose between 10 to 45% molar of the copolymer composition; where m is an integer and represent the number of units B (PEGMA) such that these compose between 55 and 90% molar of the copolymer composition, and where n+m=100%; and where p is an integer and defines the number of ethylene glycol units present in unit B and is between 2 and 30. For example, the unit B has a number molar weight between 200 and 1000, or between 250 and 600, or between 400 and 750, or again between 400 and 600.
[0029] According to one example, the random copolymer of Formula I or II includes a unit A:unit B molar ratio between 15:85 and 45:55 limits included, a unit A:unit B molar ratio between 30:70 et 45:55, or a molar ratio of about 39:61. For instance, the number molar weight of random copolymer of Formula I or II is in the range between 100 000 to 250 000 g/mol limits included and the unit A represents from 15 to 35% in mole, or the molecular weight by number of the random copolymer is within the range of from 250 000 to 400 000 g/mol limits included and the unit A represents from 35 to 45 mole % of the copolymer composition. For example, the number molar weight of random copolymer may be between 280 000 and 360 000 g/mol and the unit A represents about 39 mole % of the copolymer's composition.
[0030] The random copolymer of Formula I or II is, for example, previously formed by random copolymerization of the following Monomers A and B:
##STR00006##
where R.sup.1, R.sup.2 and p are as defined above.
[0031] The crosslinking agent added to the random polymer of Formula I or II is a volatile alkyl polyamine compound, for example comprising from 1 to 3 carbon(s), preferably 1 or 2 carbon(s), and at least two amine groups, the crosslinking agent preferably having a boiling point of less than 150° C. Examples of crosslinking agents include ethylenediamine, 1,3-diaminopropane, 1,2-diaminopropane or their mixtures, preferably, the crosslinking agent is ethylenediamine. Advantageously, the diamine compounds have 4 protons, which allows for the crosslinking of 4 oxirane functions. Moreover, their low boiling point, i.e. about 116° C. for the ethylenediamine, facilitates the evaporation of the residues after crosslinking.
[0032] The crosslinked polymer of the present application allows to obtain solid electrolyte materials possessing a significant hardness (see
[0033] The present technology also relates to a process for the preparation of a crosslinked polymer as defined in the present application, which includes the steps of: (a) mixing of the random copolymer of Formula I or II and the volatile polyamine crosslinking agent, optionally in a solvent; (b) crosslinking (for example, by heating); and (c) elimination of residual volatile compounds, including the volatile polyamine crosslinking agent and eventually the solvent, by evaporation (for example, by heating under vacuum), steps (b) and (c) may be performed simultaneously or in sequence. Preferably, step (a) includes from 5 to 10 equivalent of the crosslinking agent as a function of the oxirane groups from units A. According to one example, the crosslinking agent may also be added in excess and serve as a solvent, i.e. without the addition of an additional solvent at step (a).
[0034] When step (a) includes the addition of a solvent, the process may include a solvent elimination step prior to step (b), which may be performed by heating at atmospheric pressure, for example, at a temperature between 50 to 100° C., preferably between 60° C. and 90° C. The drying temperature makes it possible, for example, to eliminate the solvent while preserving the higher boiling point crosslinking agent in the composition. Examples of solvents comprise lower alcohols (such as methanol, ethanol, isopropanol and/or n-propanol), water, or their mixtures, preferably a lower alcohol such as ethanol.
[0035] The mixture from step (a) may also contain other components such as lithium salts when used as an electrolyte membrane. This mixture could also serve as a matrix for an electrochemically active material such as, for example, in a cathode. In that case, the electrochemically active material may be added to the mixture of step (a) and optionally include a conductive material.
[0036] The crosslinking step by heating is preferably performed after spreading of the mixture obtained in step (a) on a support. This spreading may be performed by usual methods in the field of electrochemistry, for example by the Doctor blade
method. The support may be, for example, a polymer film or a battery component such as a cathode material prepared as a film. For example, the support is a polymer film and may be removed after the step (c).
[0037] The crosslinking step may be performed at a temperature of at least 60° C., or between 70 and 200° C., preferably between 80 and 180° C. The polymer thus crosslinked is then dried to remove any trace of volatile compound, including the volatile polyamine crosslinking agent, as well as traces of the solvent used during the mixing step as the case may be. The elimination is carried out at a temperature above the boiling point of the crosslinking agent at the pressure used (e.g. under vacuum). The drying may include an initial heating step at normal pressure followed by a drying step performed by heating under vacuum.
Example 1: Preparation of a Copolymer of Formula I
[0038] a) Preparation of the Reagents
[0039] A solution of poly(ethylene glycol) methyl methacrylate (PEGMA, M.sub.n=500, Sigma-Aldrich 447943) in toluene is passed over a bed of basic aluminum oxide (Al.sub.2O.sub.3). The concentration of the solution was determined after purification by .sup.1H NMR. The glycidyl methacrylate (GMA) is also passed over a bed of basic Al.sub.2O.sub.3. Azobisisobutyronitrile (AIBN) is purified by recrystallization in methanol dried under vacuum for 12 hours. The monomers are used immediately after purification. All other chemical products, which come from, for instance, Sigma Aldrich, are used as received.
[0040] b) Copolymerization of GMA and PEGMA
[0041] A solution of 22.0 g of PEGMA in toluene (32 mol %) and of 1.0 g of GMA is introduced in a 50-mL round-bottomed flask. The solution is stirred for 30 minutes under nitrogen atmosphere. The round-bottomed flask is connected to a condenser and 50.0 mg of AIBN is added. The solution is heated to 80° C. under nitrogen for 8 hours, then cooled and poured into 10 volumes of cold diethyl ether. The viscous polymer is precipitated and the supernatant is decanted. The polymer is poured a second time in 10 volumes of hexanes and the supernatant is again decanted. The polymer is dried at 60° C. under vacuum for 12 hours.
[0042] A standard result obtained is a 75% conversion with a 4.5 g yield. According to this example, the insertion of GMA is of 30 mol % and the molecular weight is 100 000 g/mol.
[0043] The same process is used, including an adjustment of the initial reagents quantities, for the preparation of a copolymer having a molecular weight of 140 000 g/mol and a GMA insertion rate of about 18 mol %, and of a copolymer having a molecular weight of 320 000 g/mol and a GMA insertion rate of about 39 mol %.
Example 2: Preparation of a Crosslinked Polymer
[0044] The preparation of a crosslinked polymer is done in a cleanroom environment with a dew point of −56° C. The copolymer PEGMA-GMA prepared in Example 1 is first dissolved into a minimum of dry ethanol, in order to obtain the right viscosity, thus allowing for the casting on a polypropylene film. For example, 1.92 g of the polymer of M.sub.n=100 000 g/mol is dissolved in 2.0 ml of ethanol. After dissolution, 0.27 g of LiTFSI (ratio 30:1, Li:O) is added to the mixture and the solution is stirred at 60° C. for 2 hours. 0.155 g of ethylenediamine is then added to the mixture. The mixture is stirred for 15 minutes and then casted on a polypropylene film (200 μm) by the Doctor Blade method. The film is dried and then crosslinked at 60° C. for 12 hours. The heating temperature is increased to 120° C. for a period of 6 hours. Finally, the film is maintained at 120° C. under vacuum for a period of 6 additional hours to insure the complete evaporation of residual ethylenediamine.
[0045] An example of reaction profile between the polymer and the ethylenediamine is presented in
Example 3: Capacity of the Crosslinked Polymer
[0046] A battery using an electrolyte membrane composed of the polymer presented in Example 2 has a capacity of between 130 and 150 mAh/g at 80° C. The cathode of the battery tested includes carbon coated LiFePO.sub.4 and a PEO-based polymer binder. The anode of the battery is a lithium film with a thickness of 45 μm.
[0047] The cycling is optimal at a C/6 rate. Moreover, at this rate, the batteries are stables for a period of over 100 cycles with minimal capacity loss. The capacity is a function of the molecular weight of the polymer and the GMA ratio. The best results under these conditions were obtained with a polymer having a molecular weight of 320 000 g/mol and 39 mol % of GMA. The formation of lithium dendrites was not observed.
[0048] In fact, the images of a vertical cut of this battery (after cycling) done by scanning electron microscopy (SEM) are presented in
Example 4: Thermal Stability of the Crosslinked Polymer
[0049] The improvement in mechanical strength by crosslinking is demonstrated by a decrease in the degradation rate at a given temperature. The thermogravimetric analysis presented in
[0050] It may be observed that, at 250° C., the crosslinked polymer retained 97% of its integrity in comparison to the non-crosslinked polymer, which retained only 91%. At elevated temperature, this difference in stability is even greater. No significant mass loss is observed between 120-150° C. for the crosslinked polymer, demonstrating the complete evaporation of the ethylenediamine (boiling point of 116° C.) during the film formation. This also supports the fact that the membrane does not contain any residual crosslinking agent.