Electrolyte and all-solid-state battery containing same
A composite solid electrolyte with a cross-linked PEO-based polymer and vapor-deposited polar compound enhances ionic conductivity and structural integrity, addressing the limitations of high crystallinity and solvent addition in existing electrolytes.
Patent Information
- Application Number
- JP2025522786
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-09-11
- Filing Date
- 2024-09-13
- Publication Date
- 2025-10-24
- Estimated Expiration
- 2044-09-13
AI Technical Summary
Existing composite solid electrolytes face challenges in achieving high ionic conductivity due to the high crystallinity of polyethylene oxide (PEO) polymers, which restricts lithium ion mobility, and the addition of polar solvents to enhance conductivity compromises safety and stability.
A composite solid electrolyte comprising a PEO-based polymer with cross-linkable functional groups, a non-cross-linkable PEO-based polymer, and a polar compound, formed into a three-dimensional network structure with a trace amount of vapor-deposited polar compound, optimizing dispersion and mobility of ceramic particles.
The electrolyte exhibits improved ionic conductivity across various temperatures, maintaining structural integrity and safety, with low-temperature conductivity of 0.015 mS/cm, room-temperature conductivity of 0.5 mS/cm, and high-temperature conductivity of 1.1 mS/cm, while ensuring mechanical stability.
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Figure 2025535413000001_ABST
Abstract
Description
[Technical Field]
[0001] CROSS-REFERENCE TO RELATED APPLICATIONS
[0002] This application claims the benefit of priority based on Korean Patent Application No. 10-2023-0123075, filed September 15, 2023, Korean Patent Application No. 10-2024-0044702, filed April 2, 2024, and Korean Patent Application No. 10-2024-0123905, filed September 11, 2024, and all contents disclosed in the documents of these Korean patent applications are incorporated herein by reference.
[0003] The present invention relates to an electrolyte and an all-solid-state battery including the same. [Background technology]
[0004] Lithium-ion batteries that use liquid electrolytes have a structure in which the negative and positive electrodes are separated by a separator, so if the separator is damaged by deformation or external impact, a short circuit can occur, which can lead to risks such as overheating or explosion. Therefore, the development of a solid electrolyte that can ensure safety in the field of lithium-ion secondary batteries is a very important challenge.
[0005] Lithium secondary batteries using solid electrolytes have the advantages of increased battery safety, improved battery reliability due to the ability to prevent electrolyte leakage, and ease of fabrication of thin batteries. Furthermore, lithium metal can be used as the anode, improving energy density. Therefore, they are expected to be used in compact secondary batteries as well as high-capacity secondary batteries for electric vehicles, and are attracting attention as next-generation batteries.
[0006] Among solid electrolytes, polymer solid electrolytes can use ion-conductive polymer materials, and can be used in the form of a composite solid electrolyte in which such polymer materials are mixed with inorganic materials.
[0007] Such conventional hybrid (composite) solid electrolytes are made by dispersing inorganic powders such as oxide ceramics in a polymer matrix, and have the advantages of being more stable against ignition and combustion than existing liquid electrolytes and having higher ionic conductivity than polymer solid electrolytes.
[0008] However, existing composite solid electrolytes have had challenges in that basic prerequisites must be met, such as improving the dispersion of oxide ceramic particles within the polymer matrix and optimizing the physical properties of the polymer matrix used. In particular, when using a highly crystalline polymer such as polyethylene oxide (PEO) as the matrix, it is difficult to produce an electrolyte with improved ionic conductivity. The high crystallinity of the PEO polymer inhibits the chain mobility of the polymer, restricting the movement of lithium ions within the polymer solid electrolyte, limiting the ability to improve the ionic conductivity of the polymer solid electrolyte.
[0009] As a result, existing composite solid electrolytes have often been used with a significant amount of polar solvent added to exhibit a certain level of ionic conductivity, which has the drawback of not being able to fully exhibit the safety and stability inherent to solid electrolytes and not being able to exhibit sufficient ionic conductivity despite the addition of a significant amount of polar solvent. Summary of the Invention [Problem to be solved by the invention]
[0010] The present invention provides an electrolyte in the form of a composite solid electrolyte that exhibits excellent ionic conductivity.
[0011] The present invention also provides an all-solid-state battery that contains the electrolyte and exhibits excellent electrochemical and driving characteristics. [Means for solving the problem]
[0012] According to one embodiment of the present invention, there is provided an electrolyte comprising: a polymer mixture including a PEO (polyethylene oxide)-based polymer having a cross-linkable functional group and a non-cross-linkable PEO-based polymer; a ceramic compound; and a polar compound,
[0013] at least a part of the cross-linking functional groups forms cross-links, and the PEO-based polymer forms a three-dimensional network structure;
[0014] The polar compound is contained in an amount of 0.1 wt % or more and less than 10 wt % based on the total weight of the electrolyte, and the polar compound is dispersed among the polymer chains forming the three-dimensional network structure or bound to the polymer chains.
[0015] The electrolyte of this embodiment may exhibit excellent ionic conductivity, such as a low-temperature ionic conductivity of 0.015 mS / cm or more measured at temperatures between -30°C and -10°C, a room-temperature ionic conductivity of 0.5 mS / cm or more measured at 25°C, and a high-temperature ionic conductivity of 1.1 mS / cm or more measured at 50°C.
[0016] The electrolyte may further include a multifunctional crosslinking agent, and at least some of the crosslinkable functional groups may form crosslinks with each other via the multifunctional crosslinking agent.
[0017] In the electrolyte, the cross-linkable functional group is bonded to the PEO-based polymer via an alkylene linker or alkylene oxide linker having 0 to 10 carbon atoms (wherein an alkylene linker having 0 carbon atoms represents a single bond),
[0018] It can be selected from the group consisting of a hydroxyl group, a carboxyl group, an isocyanate group, a nitro group, a cyano group, an amine group, an amide group, an epoxy group, and an allyl group.
[0019] The electrolyte may further contain a lithium salt, which may be contained in an amount of 25 to 45 parts by weight relative to 100 parts by weight of the polymer mixture.
[0020] In the above-mentioned electrolyte, the polymer mixture may contain the PEO-based polymer having a cross-linkable functional group: the non-cross-linkable PEO-based polymer in a weight ratio of 5:5 to 9:1.
[0021] In a specific embodiment, the PEO-based polymer having a cross-linking functional group may be a copolymer containing repeating units of the following chemical formulas 1 to 3:
[0022] [Chemical formula 1]
[0023] [ka]
[0024] [Chemical formula 2]
[0025] [ka]
[0026] [Chemical formula 3]
[0027] [ka]
[0028] In the above chemical formulas 1 to 3, R1 is -CH2-O-(CH2-CH2-O) k -R3, k is 0 to 20, and R3 represents an alkyl group having 1 to 5 carbon atoms;
[0029] R2 represents a substituent in which one or more crosslinkable functional groups selected from the group consisting of a hydroxyl group, a carboxyl group, an isocyanate group, a nitro group, a cyano group, an amine group, an amide group, an epoxy group, and an allyl group are bonded to a polymer chain via an alkylene linker or alkylene oxide linker having 0 to 10 carbon atoms (however, an alkylene linker having 0 carbon atoms represents a single bond);
[0030] l, m, and n are the repeating numbers of the repeating unit, l and n are each independently an integer of 1 to 100,000, and m is an integer of 0 to 100,000.
[0031] The non-crosslinkable PEO-based polymer may also be a copolymer containing repeating units of the following chemical formulas 1 and 2:
[0032] [Chemical formula 1]
[0033] [ka]
[0034] [Chemical formula 2]
[0035] [ka]
[0036] In the above chemical formulas 1 and 2, R1 is -CH2-O-(CH2-CH2-O) k-R3, k is 0 to 20, and R3 represents an alkyl group having 1 to 5 carbon atoms;
[0037] l and m are the number of repeating units, and are each independently an integer of 1 to 100,000.
[0038] In the electrolyte, the polar compound may include at least one selected from the group consisting of carbonate-based compounds and sulfonyl-based compounds, and more specifically, may include at least one selected from the group consisting of ethyl methyl carbonate (EMC), dimethyl carbonate (DMC), diethyl carbonate (DEC), ethylene carbonate (EC), propylene carbonate (PC), vinylene carbonate (VC), and sulfolane.
[0039] The ceramic compound may include an oxide-based solid electrolyte of lithium metal oxide or lithium metal phosphate, and more specifically, may include one or more oxide-based solid electrolytes selected from the group consisting of lithium-lanthanum-zirconium oxide (LLZO) compounds, lithium-silicon titanium phosphate (LSTP) compounds, lithium-lanthanum-titanium oxide (LLTO) compounds, lithium-aluminum-titanium phosphate (LATP) compounds, lithium-aluminum-germanium phosphate (LAGP) compounds, and lithium-lanthanum-zirconium-titanium oxide (LLZTO) compounds.
[0040] The ceramic compound may be contained in the form of particles having a diameter of 100 nm to 1000 nm, and may be contained in an amount of 10 to 100 parts by weight relative to 100 parts by weight of the polymer mixture.
[0041] Meanwhile, according to another embodiment of the present invention, there is provided a method for manufacturing an electrolyte according to the above embodiment, comprising the steps of: mixing a polymer mixture including a PEO-based polymer having a cross-linkable functional group and a non-cross-linkable PEO-based polymer with a ceramic compound; causing a cross-linking reaction of the PEO-based polymer having a cross-linkable functional group contained in the mixture; and exposing the cross-linked resultant to a vaporized polar compound to vapor-deposit the polar compound on the cross-linked resultant.
[0042] In such a manufacturing method, the polar compound is vapor-deposited, so that the polar compound can be dispersed or bound to the electrolyte in a gaseous state and can be contained in the electrolyte at the low content described above.
[0043] Meanwhile, according to yet another embodiment of the present invention, there is provided an all-solid-state battery including an electrolyte layer containing the electrolyte of the above-described embodiment. [Effects of the Invention]
[0044] The electrolyte according to one embodiment of the present invention can improve the ionic conductivity of the electrolyte by improving the mobility of the polymer chains and uniformly distributing ceramic particles in the electrolyte while maintaining the original structural characteristics of the polymer without deformation or destruction of the polymer chains.
[0045] Furthermore, the electrolyte may exhibit improved ionic conductivity and mechanical properties by including a trace amount of polar compounds, for example, in a vapor-deposited state.
[0046] In particular, it was confirmed that the electrolyte contains both a crosslinkable PEO-based polymer and a non-crosslinkable PEO-based polymer, thereby optimizing the dispersion of the ceramic particles and exhibiting high ionic conductivity at the overall operating temperature of the battery.
[0047] Therefore, the electrolyte can significantly contribute to providing an all-solid-state battery that exhibits excellent driving characteristics. [Brief explanation of the drawings]
[0048] [Figure 1] 1 is a graph showing a comparison of the ionic conductivities of the electrolytes of Examples 1 to 3 and Comparative Examples 1 to 9 at room temperature (25° C.).
[0049] [Figure 2] 1 is a graph showing a comparison of the ionic conductivities of the electrolytes of Examples 3 to 6 and Comparative Examples 7, 10, and 11 at different temperatures. DETAILED DESCRIPTION OF THE INVENTION
[0050] Hereinafter, specific embodiments of the invention will be described in more detail for better understanding of the invention.
[0051] The terms and words used in this specification and claims should not be interpreted in a limited way to their ordinary or dictionary meanings, but should be interpreted in a way that is consistent with the technical idea of the present invention, in accordance with the principle that the inventor can appropriately define the concept of the term in order to best describe his or her invention.
[0052] The term "bonded" as used herein may refer to a state in which a polar compound is "bonded" to a polymer chain, for example, a PEO-based polymer chain having cross-linkable functional groups. This "bonding" broadly refers to a state in which a polar compound in a gaseous state is fixed to a polymer chain, for example, by vapor deposition of a polar solvent. The term "bonded" is not limited to a specific physical or chemical bond, but rather includes a state in which the polar compound is fixed by various bonds, including these physical or chemical bonds, a state in which the polar compound is fixed by simple adhesion, such as adsorption, or a state in which the polar compound is included in a three-dimensional network structure formed by cross-linking of the polymer, and is fixed adjacent to the polymer chain or cross-linked structure.
[0053] The term "three-dimensional network structure" as used herein refers to a structure including a three-dimensional frame and an internal space formed by the frame, and the frame may include polymer chains including crosslinks formed by the crosslinking functional groups, for example, crosslinks between crosslinking functional groups and / or crosslinks between the crosslinking functional groups and a crosslinking agent. The three-dimensional network structure may also be referred to as a crosslinked structure.
[0054] As used herein, the term "a gaseous state" for a polar compound (polar solvent) in an electrolyte refers to a state distinct from the case where the polar solvent or an electrolyte solution or polar solution containing the polar compound is injected in a liquid state. In other words, when the polar compound is deposited in a vapor state on the electrolyte, it exists in a state distinct from the case where the polar solvent is injected in a liquid state immediately after the electrolyte is manufactured or during the charge / discharge process of an all-solid-state battery containing the same. However, depending on the storage or operating conditions of the electrolyte and / or battery, the vapor-deposited polar compound may be locally or temporarily liquefied. Even in this case, the vapor-deposited polar compound exhibits higher mobility than the polar solvent injected in a liquid state, and therefore is considered to exist in a "gaseous state."
[0055] Meanwhile, in order to improve the ionic conductivity of solid electrolytes, electrolytes have been prepared by dispersing ceramic compounds such as oxides in a polymer matrix. However, such electrolytes have problems such as uneven distribution of oxide-based ceramic particles in the polymer matrix or reduced ionic conductivity when a highly crystalline polymer such as polyethylene oxide is used as the polymer.
[0056] Therefore, to improve the ionic conductivity of solid electrolytes and enhance the dispersibility of the ceramic compounds, the solid electrolyte has been immersed in or supported by an electrolyte solution or a liquid solvent, or the electrolyte solution or polar solvent has been directly injected into the solid electrolyte in a liquid state. Directly adding a significant amount of electrolyte solution or polar solvent to the solid electrolyte can improve the ionic conductivity of the solid electrolyte to some extent. However, this can impair the excellent safety and stability that can be achieved by using solid electrolytes. Furthermore, the improvement in ionic conductivity achieved by adding the electrolyte solution or polar solvent was insufficient, requiring the injection of a significant amount of polar solvent.
[0057] In addition, when a liquid electrolyte or polar solvent is directly added or injected into a solid electrolyte in a liquid state, unexpected side reactions between the polymer and the liquid phase can damage the polymer chain or break bonds within the polymer, causing the structure of the solid electrolyte to collapse and resulting in a decrease in ionic conductivity. Moreover, there is a disadvantage that this ionic conductivity decreases even further at low temperatures, where ionic mobility in the liquid electrolyte decreases.
[0058] Furthermore, when a polar solvent or liquid electrolyte is directly injected into a solid electrolyte, the rapid diffusion of liquid phase molecules into the solid electrolyte can rapidly cause relaxation of polymer chains, accelerating gelation on the surface and resulting in a decrease in mechanical properties. In addition, problems such as leakage of the liquid electrolyte or polar solvent can occur, which can reduce the safety of the battery.
[0059] Therefore, the inventors applied a method of vapor deposition of a polar compound derived from a polar solvent onto an electrolyte containing a polymer cross-linked with a PEO (polyethylene oxide)-based polymer modified with cross-linkable functional groups and a ceramic compound. In addition, the inventors mixed the PEO-based polymer with cross-linkable functional groups with a non-cross-linkable PEO-based polymer to optimize the degree of cross-linking and the formation of a three-dimensional network structure in the electrolyte.
[0060] The electrolyte thus prepared according to one embodiment is an electrolyte comprising a polymer mixture including a PEO (polyethylene oxide)-based polymer having a cross-linkable functional group and a non-cross-linkable PEO-based polymer; a ceramic compound; and a polar compound,
[0061] At least a portion of the cross-linkable functional groups form cross-links, and the PEO-based polymer forms a three-dimensional network structure. The polar compound is contained in an amount of 0.1 wt % or more and less than 10 wt % based on the total weight of the electrolyte, and the polar compound may be dispersed among the polymer chains forming the three-dimensional network structure or bonded to the polymer chains.
[0062] It has been confirmed that such electrolytes exhibit improved ionic conductivity despite containing a small amount of polar compounds derived from a polar solvent. In such electrolytes, the polar compounds can exhibit a different state from that of a polar solvent injected in large amounts as a liquid due to the vapor deposition and small amount of content. For example, the polar compounds may exist at least partially in a gaseous state in the electrolyte and may be locally or temporarily converted to a liquid or gas-liquid coexistence state during battery operation. Furthermore, the polar compounds may be uniformly dispersed within the three-dimensional network structure defined by the cross-linking, or may be bound or attached to the polymer chains between the three-dimensional network.
[0063] The different states of these polar compounds are expected to affect the physical properties of the PEO-based polymer, such as its crystallinity, increasing the chain mobility of the polymer chains and thereby improving the lithium ion conductivity contained in the electrolyte.Furthermore, the electrolyte can exhibit even better ion conductivity due to the ceramic compounds uniformly dispersed within the three-dimensional network structure.
[0064] The polar compound may be present in an amount of 0.1 wt % or more and less than 10 wt % based on the total weight of the electrolyte. For example, the content of the polar compound may be 0.1 wt % or more, 0.5 wt % or more, 1 wt % or more, 2 wt % or more, or 3 wt % or more, or 4 wt % or less, 5 wt % or less, 6 wt % or less, 7 wt % or less, 8 wt % or less, 9 wt % or less, or less than 10 wt %. If the polar compound content is less than 0.1 wt %, it is difficult to induce a change in chain conformation within the polymer, and the ionic conductivity of the electrolyte is not sufficiently improved despite the vapor deposition of the polar compound. Conversely, if the polar compound content is more than 10 wt %, it will exhibit the same state as a polar solvent injected in liquid form in the electrolyte, making it difficult to achieve the effects of vapor deposition. Therefore, the content of the polar solvent or electrolyte, which is essentially always in a liquid state in the electrolyte, is high, resulting in the characteristics of a semi-solid battery. This may lead to a decrease in the mechanical strength of the electrolyte due to gelation of the polymer, and the ionic conductivity of the electrolyte may also be insufficient.
[0065] The content of the polar compound can be calculated by measuring the content of the polar compound evaporated while heating the electrolyte. Specifically, taking into account the boiling point and vapor pressure of the polar compound at each temperature, the polar compound can be heated at a temperature at which the polar compound begins to evaporate, for example, 40°C or higher or 50°C or higher, to the boiling point or a temperature 10°C above the boiling point, collecting the liquid phase of the polar compound evaporated within the temperature range, and measuring the weight of the liquid phase. The calculation can be stopped when the measured amount reaches saturation (e.g., when the measured amount no longer increases) as the heating time at the elevated temperature elapses, and this is considered to be the total amount of polar compound contained in the electrolyte.
[0066] In addition, the content of the polar compound contained in the electrolyte can be adjusted by the amount of polar compound used in the vapor deposition step described below and / or the conditions of the vapor deposition, such as the vapor deposition time and temperature, as will be apparent from the examples described below.
[0067] Meanwhile, the electrolyte contains both the crosslinkable polymer and the non-crosslinkable polymer, optimizing the crosslinking and three-dimensional network structure, and the content of the polar compound is satisfied, so that the electrolyte can exhibit excellent ionic conductivity at all operating temperatures of the battery.
[0068] In one example, the electrolyte can maximize the degree of dispersion of the ceramic compound and the mobility of lithium ions, even at low temperatures, for example, below 0° C. or between −30° C. and −10° C. As a result, the electrolyte can exhibit excellent ionic conductivity of 0.015 mS / cm or more, or 0.15 mS / cm or more, or 0.20 mS / cm or more, or 0.20 mS / cm to 0.50 mS / cm, even at the low temperatures described above.
[0069] The electrolyte can also exhibit excellent ionic conductivity at room temperature or at high temperatures. For example, the electrolyte may have a room temperature ionic conductivity of 0.5 mS / cm or more, or 1.3 mS / cm or more, or 1.5 mS / cm or more, or from 1.5 mS / cm to 2.5 mS / cm, measured at 25°C, and a high temperature ionic conductivity of 1.1 mS / cm or more, or 3.0 mS / cm or more, or 3.1 mS / cm or more, or from 3.1 mS / cm to 4.5 mS / cm, measured at 50°C.
[0070] In the electrolyte according to the above-described embodiment, the polar compound may be dispersed among the polymer chains forming the three-dimensional network structure, or may be attached, adsorbed, or bonded to the surface or inside of the polymer chains.
[0071] Such an electrolyte includes a polar compound incorporated or bonded in a small amount into a three-dimensional network structure by vapor deposition, as described below. Such a polar compound has a different state from a polar solvent that is injected into the electrolyte in a large amount in a liquid state. The state of such a polar compound can be confirmed, for example, by separating an electrolyte layer containing the polar compound from an all-solid-state battery at a temperature lower than the boiling point of the polar compound and observing it with the naked eye or an electron microscope. If no liquid component is observed on the surface of the electrolyte layer under such observation, the electrolyte is considered to be in a state similar to that of an embodiment in which the polar compound is vapor-deposited.
[0072] In contrast, when a liquid polar solvent or electrolyte solution is injected into the electrolyte, a liquid component or a component exhibiting wettability can be observed on the surface of the electrolyte layer. Furthermore, as confirmed by the examples described below, an electrolyte in which the polar compound is vapor-deposited exhibits improved ionic conductivity despite a lower polar compound content compared to when a liquid polar solvent or electrolyte solution is injected. Comparison of ionic conductivities also confirms that the electrolyte contains the polar compound in a gaseous state due to vapor deposition.
[0073] Meanwhile, in the electrolyte of one embodiment, the cross-linkable functional group may be directly bonded to the main chain of the PEO-based polymer, or may be bonded via an alkylene or alkylene oxide linker. Therefore, the cross-linkable functional group may be bonded via an alkylene linker or alkylene oxide linker having 0 to 10 carbon atoms (however, an alkylene linker having 0 carbon atoms represents a single bond), and may be one or more groups selected from the group consisting of a hydroxyl group, a carboxyl group, an isocyanate group, a nitro group, a cyano group, an amine group, an amide group, an epoxy group, and an allyl group.
[0074] In one embodiment of the present invention, the cross-linking functional groups may be of two or more types. The cross-linking functional groups may be the same or different. When the cross-linking functional groups are different, multiple types of repeating units each containing these functional groups may be included. In addition, when multiple types of cross-linking functional groups are included, it may be easier to control the mobility and ionic conductivity of the polymer chain.
[0075] The cross-linkable functional group means a functional group that can form a cross-link between itself and / or with itself via a cross-linking agent, and can be attached to a polymer chain in the form of a side chain.
[0076] In a more specific embodiment, the PEO-based polymer having a cross-linking functional group may be a copolymer having repeating units of the following chemical formulas 1 to 3:
[0077] [Chemical formula 1]
[0078] [ka]
[0079] [Chemical formula 2]
[0080] [ka]
[0081] [Chemical formula 3]
[0082] [ka]
[0083] In the above chemical formulas 1 to 3, R1 is -CH2-O-(CH2-CH2-O) k -R3, k is 0 to 20, and R3 represents an alkyl group having 1 to 5 carbon atoms;
[0084] R2 represents a substituent in which one or more crosslinkable functional groups selected from the group consisting of a hydroxyl group, a carboxyl group, an isocyanate group, a nitro group, a cyano group, an amine group, an amide group, an epoxy group, and an allyl group are bonded to a polymer chain via an alkylene linker or alkylene oxide linker having 0 to 10 carbon atoms (however, an alkylene linker having 0 carbon atoms represents a single bond);
[0085] l, m, and n are the repeat numbers of the repeat unit, l and n are each independently an integer of 1 to 100,000, or 50 to 80,000, or 100 to 50,000, and m is an integer of 0 to 100,000, or 50 to 80,000, or 100 to 50,000.
[0086] For example, the cross-linkable functional group of R2 may form a matrix polymer having a three-dimensional network structure formed by the cross-linking. The formation of the three-dimensional network structure by the cross-linking may improve the mechanical properties of the electrolyte. In addition, the vapor-deposited polar compound may be contained or bonded within the three-dimensional network structure, thereby providing an electrolyte having improved ionic conductivity.
[0087] It is also clear that the PEO-based polymer may contain two or more repeating units of Chemical Formula 3, in which R2 is a cross-linking functional group different from each other, and may also contain one or more repeating units of Chemical Formula 2.
[0088] If l, m, and n are each too small, the molecular weight is too small to form a polymer, and if l, m, and n are each too large, the viscosity increases, reducing solubility during preparation of a polymer solution, making it difficult to form the polymer for electrolyte preparation. In particular, if the number of repeating units containing cross-linking functional groups among l, m, and n is too large, the degree of cross-linking increases excessively, reducing the mobility of polymer chains and decreasing ionic conductivity.
[0089] Meanwhile, the non-crosslinked PEO-based polymer included in the electrolyte of one embodiment may have a structure in which, for example, the repeating unit having a crosslinkable functional group in the crosslinkable PEO-based polymer described above is omitted. By incorporating such a non-crosslinked PEO-based polymer, the degree of crosslinking and the formation of a three-dimensional network structure in the electrolyte can be optimized, thereby further improving the dispersibility of the ceramic compound and the mobility of lithium ions. As a result, the electrolyte of one embodiment may exhibit excellent ionic conductivity.
[0090] In a more specific embodiment, the non-crosslinkable PEO-based polymer may be a copolymer containing repeating units of the following chemical formulas 1 and 2, but not having the repeating unit of the above-mentioned chemical formula 3:
[0091] [Chemical formula 1]
[0092] [ka]
[0093] [Chemical formula 2]
[0094] [ka]
[0095] In the above chemical formulas 1 and 2, R1 is -CH2-O-(CH2-CH2-O) k-R3, k is 0 to 20, R3 is an alkyl group having 1 to 5 carbon atoms, l and m are the repeating numbers of the repeating unit and are each independently an integer of 1 to 100,000, or 50 to 80,000, or 100 to 50,000.
[0096] On the other hand, in this specification, the term "hydroxy group" refers to an --OH group.
[0097] As used herein, a "carboxyl group" refers to a -COOH group.
[0098] As used herein, an "isocyanate group" refers to a -N=C=O group.
[0099] As used herein, a "nitro group" refers to the -NO2 group.
[0100] As used herein, a "cyano group" refers to a -CN group.
[0101] As used herein, an "amide group" refers to -C(=O)NR'R", where R' and R" can each independently be hydrogen or a C1-C5 alkyl group, or R' and R" together with the N atom to which they are attached can form a heterocycle having C4-C8 atoms in the ring structure.
[0102] In this specification, the term "amine group" can be selected from the group consisting of monoalkylamine groups, monoarylamine groups, monoheteroarylamine groups, dialkylamine groups, diarylamine groups, diheteroarylamine groups, alkylarylamine groups, alkylheteroarylamine groups, and arylheteroarylamine groups. The number of carbon atoms is not particularly limited, but preferably ranges from 1 to 30. Specific examples of the amine group include, but are not limited to, methylamine groups, dimethylamine groups, ethylamine groups, diethylamine groups, phenylamine groups, naphthylamine groups, biphenylamine groups, dibiphenylamine groups, anthracenylamine groups, 9-methylanthracenylamine groups, diphenylamine groups, phenylnaphthylamine groups, ditolylamine groups, phenyltolylamine groups, triphenylamine groups, biphenylnaphthylamine groups, phenylbiphenylamine groups, biphenylfluorenylamine groups, phenyltriphenylenylamine groups, and biphenyltriphenylenylamine groups. Furthermore, the term "amino group" refers to -NH.
[0103] As used herein, an "allyl group" refers to the group -CH2-CH=CH2.
[0104] The weight-average molecular weight (Mw) of the crosslinkable and non-crosslinkable PEO-based polymers described above may be 100,000 g / mol to 4,000,000 g / mol, respectively. Specifically, it may be 100,000 g / mol or more, 200,000 g / mol or more, or 300,000 g / mol or more, or 3,000,000 g / mol or less, or 2,000,000 g / mol or less. If the weight-average molecular weight (Mw) of the polymer is too small, the mechanical properties of the resulting electrolyte may not be satisfactory. If the weight-average molecular weight (Mw) of the polymer is too large, the viscosity may increase, reducing solubility during the preparation of the polymer solution and making molding for electrolyte preparation difficult. Furthermore, the ionic conductivity of the electrolyte may decrease due to increased crystallinity and reduced chain mobility within the electrolyte.
[0105] In addition, if the number of repeating units of Formula 3 containing a cross-linking functional group is too large, the degree of cross-linking may increase excessively, reducing the mobility of polymer chains and decreasing the ionic conductivity of the electrolyte.
[0106] Furthermore, each of the polymers may be a random copolymer or a block copolymer.
[0107] Meanwhile, in one embodiment, the electrolyte may contain the crosslinkable and non-crosslinkable PEO-based polymers such that the weight ratio of the non-crosslinkable PEO-based polymer is greater than 0 and less than 0.55, or 0.05 to 0.53, or 0.3 to 0.5, based on the total weight of the polymer mixture containing the crosslinkable and non-crosslinkable PEO-based polymers. In this case, the weight ratio of the crosslinkable PEO-based polymer may be the remaining weight ratio excluding the non-crosslinkable polymer. In one embodiment, the PEO-based polymer having crosslinkable functional groups and the non-crosslinkable PEO-based polymer may be mixed in a weight ratio of, for example, 5:5 to 9:1, or 5:5 to 7:3.
[0108] By optimizing the ratio of each polymer, the cross-linking and three-dimensional network structure in the composite solid electrolyte can be optimized, thereby maximizing the degree of dispersion of the ceramic compound and the mobility of lithium ions, thereby further improving the ionic conductivity of the electrolyte of one embodiment.
[0109] If the content of the non-crosslinked PEO polymer is too high, the three-dimensional network structure due to crosslinking may not be formed well, and the vapor deposition of the polar compound may not be carried out well, which may result in a decrease in the mechanical properties and ionic conductivity of the electrolyte.In addition, if the content of the non-crosslinked PEO polymer is too low, the ionic conductivity may also decrease.
[0110] Meanwhile, in a specific embodiment of the present invention, the polar compound may be contained on or bonded to the surface or inside of the polymer chains by vapor deposition, for example, in a substantially gaseous state (including a local, temporary liquid state). Specifically, the polar compound may be diffused or dispersed among the polymer chains that form a three-dimensional network structure by crosslinking the crosslinkable PEO-based polymer, or may be adsorbed or bonded to the surface or inside of the polymer chains.
[0111] The polar compound may be a gas molecule of a polar solvent used in the vapor deposition process, and may be bound to the polymer chains by diffusing into the polymer chains after adsorbing onto the polymer during vapor deposition, or may be contained in a dispersed or diffused form in the internal space between the polymer chains. By containing the polar compound in a dispersed or diffused form in the internal space between the polymer chains, the ionic conductivity of the final electrolyte may be improved despite its low content.
[0112] Specifically, polar compounds bound to or contained between the polymer chains can act as plasticizers to plasticize the polymer. The plasticized polymer increases the amorphous region inside, improving the mobility of the polymer chains. The increased mobility of the polymer chains increases the ion hopping effect inside the polymer, improving the ionic conductivity of the electrolyte.
[0113] In addition, the polar compound can act as an intermediate for smooth ion transport through ion hopping. Because the affinity between lithium ions and polar compounds is stronger than the affinity between lithium ions and the ether oxygen of the PEO-based polymer, lithium ions can be transported more quickly and easily within the polymer with the polar compound adsorbed. In other words, as the polar compound flows into the polymer, the cation solvation effect of lithium ions increases, improving ion mobility and, therefore, the ionic conductivity of the electrolyte.
[0114] The polar compound may include one or more compounds selected from the group consisting of carbonate compounds and sulfonyl compounds.
[0115] Specifically, the polar compound may include one or more compounds selected from the group consisting of ethyl methyl carbonate (EMC), dimethyl carbonate (DMC), diethyl carbonate (DEC), ethylene carbonate (EC), propylene carbonate (PC), vinylene carbonate (VC), and sulfolane, or a combination thereof.
[0116] In one embodiment of the present invention, the electrolyte may include cross-links between cross-linkable functional groups. The electrolyte may further include a cross-linking agent, and may further include cross-links between the cross-linking agent and the cross-linkable functional groups. For example, at least some of the cross-linkable functional groups may form cross-links with each other via the cross-linking agent to form the above-described three-dimensional network structure.
[0117] The crosslink may be a urethane crosslink, an ester crosslink, a hydrogen bond, or a bond formed by a radical polymerization reaction of a vinyl group at the end of an allyl group (-CH-CH=CH), but is not limited to these examples.
[0118] Furthermore, when a crosslinking agent is added in the manufacturing process of the electrolyte, a crosslinking bond may be formed between the crosslinking agent and the crosslinkable functional group, and the crosslinking bond may be a hydrogen bond, a bond due to Lewis acid-base interaction, an ionic bond, a coordinate bond, or a bond formed by radical polymerization.
[0119] The crosslinking agent is not particularly limited as long as it is a polyfunctional crosslinking agent capable of forming a crosslink with the crosslinkable functional group. For example, the crosslinking agent may be trimethylolpropane trimethacrylate, polyethylene glycol diacrylate, polyethylene glycol dimethacrylate, ethylene glycol dimethylacrylate (hereinafter referred to as "EGDMA"), 1,3-diisopropenylbenzene (DIP), 1,4-diacryloyl piperazine, 2-(diethylamino)ethyl methacrylate, 2,6-bisacryloylamidopyridine, 3-(acryloyloxy)-2-hydroxypropyl methacrylate, 3,5-bis(acrylamido)benzoic acid (3,5-bis(acryloylamido)benzoic acid, 3-aminopropyltriethoxysilane, 3-isocyanatopropyltriethoxysilane, 3-methylacryloxypropyltrimethoxysilane, bis-(1-(tert-butylperoxy)-1-methylethyl)-benzene, dicumyl peroxide, dimethacrylate, divinylbenzene, ethylene glycol maleic rosinate acrylate, glycidyl methacrylate, hydroxyquinoline, iphenyldiethoxysilane, maleic rosin glycol acrylate, methylene bisacrylamide, N,N'-1,4-phenylenediacrylamine, N,O-bisacryloyl-phenylalaninol, N,O-bismethacryloylethanolamineThe crosslinking agent may be one or more polyfunctional crosslinking agents selected from the group consisting of 0-bismethacryloyl ethanolamine, pentaerythritol triacrylate, phenyltrimethoxysilane, tetramethoxysilane, tetramethylene, tetraethoxysilane, and triallyl isocyanurate, for example, a polyvalent compound having two or more functional groups.
[0120] The crosslinking agent may be included in an amount of 1 to 30 parts by weight based on 100 parts by weight of the PEO-based polymer having a crosslinkable functional group contained in the polymer mixture. If the content of the crosslinking agent is less than 1 part by weight, crosslinking with the crosslinkable functional group may be insufficient, while if the content is more than 30 parts by weight, crosslinking may be excessive, resulting in a decrease in the mobility of the polymer chain and therefore a decrease in ionic conductivity.
[0121] In one embodiment of the present invention, the electrolyte may further include a lithium salt. The lithium salt may be present in the internal space between the polymer chains in a dissociated ionic state, thereby improving the ionic conductivity of the electrolyte. At least a portion of the cations and / or anions dissociated from the lithium salt may be present in a state bound to the polymer chains, thereby exhibiting mobility during charge and discharge of the battery.
[0122] The lithium salts include (CF3SO2)2NLi (Lithium bis(trifluoromethanesulphonyl)imide, LiTFSI), (FSO2)2NLi (Lithium bis(fluorosulfonyl)imide, LiFSI), LiNO3, LiOH, LiCl, LiBr, LiI, LiClO4, LiBF4, and LiB 10 Cl 10, LiPF6, LiCF3SO3, LiCF3CO2, LiAsF6, LiSbF6, LiAlCl4, CH3SO3Li, CF3SO3Li, LiSCN, LiC(CF3SO2)3, lithium chloroborane, lithium lower aliphatic carboxylate, and lithium tetraphenylborate.
[0123] The lithium salt may be contained in an amount of 25 to 45 parts by weight, specifically, 25 parts by weight or more, 30 parts by weight or more, or 35 parts by weight or more, or 40 parts by weight or less, or 45 parts by weight or less, based on 100 parts by weight of the polymer mixture. If the content of the lithium salt is less than 25 parts by weight, the ionic conductivity of the electrolyte may decrease, and if it exceeds 45 parts by weight, the mechanical strength may decrease.
[0124] The electrolyte may include a ceramic compound having lithium ion transport ability for improving the conductivity of lithium ions, preferably containing lithium atoms but capable of transporting lithium ions without storing lithium, thereby improving the ionic conductivity of the electrolyte.
[0125] In addition, the ceramic compound may be included in a state of being uniformly dispersed among the cross-linked polymer chains, for example, within the three-dimensional network structure. The ceramic compound may be added during the cross-linking process and be uniformly dispersed without clumps among the polymer chains formed by the cross-linking. Such a uniformly dispersed ceramic compound may be advantageous for improving the mechanical strength and ionic conductivity of the electrolyte.
[0126] The ceramic compound may also be in the form of particles. Due to its morphological characteristics, the ceramic compound may be contained in a more uniformly dispersed state within the electrolyte. The ceramic compound particles may be spherical, and their diameter may be 100 nm to 1000 nm. If the diameter is less than 100 nm, the amorphization effect due to a decrease in the crystallinity of the polymer is slight, while if the diameter is more than 1000 nm, the dispersibility may decrease due to an increase in aggregation between particles, making it difficult to disperse uniformly.
[0127] The ceramic compound may be an oxide-based or phosphate-based compound, and may be an oxide-based solid electrolyte in the form of, for example, lithium metal oxide or lithium metal phosphate. More specifically, the ceramic compound may be a garnet-type lithium-lanthanum-zirconium oxide (LLZO, Li7La3Zr2O 12 ) compounds, perovskite-type lithium-lanthanum-titanium oxides (LLTO, Li3xLa 2 / 3-x TiO3) compounds, phosphate-based NASICON-type lithium-aluminum-titanium phosphate (LATP, Li 1+x Al x Ti 2-x (PO4)3) compounds, lithium-aluminum-germanium phosphate system (LAGP, Li 1.5 Al 0.5 Ge 1.5The solid electrolyte may be at least one selected from the group consisting of lithium-lanthanum-zirconium-titanium oxide (LLZTO), lithium-silicon-titanium phosphate (LSTP, LiSiOTiO(PO)), lithium-lanthanum-zirconium-titanium oxide (LLZTO), lithium-aluminum-titanium phosphate (LATP), lithium-aluminum-germanium phosphate (LAGP), and lithium-lanthanum-zirconium-titanium oxide (LLZTO).
[0128] The oxide-based or phosphate-based oxide-based solid electrolyte generally has a maximum resistance of 10 -4 ~10 -3 It has an ionic conductivity of 100 S / cm, is stable in the high voltage range, is stable in air, and has the advantages of being easy to synthesize and handle.
[0129] In addition, the ceramic compound has high high-temperature stability because it does not easily burn or ignite even at high temperatures of 400° C. or higher. Therefore, when the electrolyte contains the ceramic compound, it is possible to improve the mechanical strength of the electrolyte as well as the high-temperature stability and ionic conductivity.
[0130] The ceramic compound may be contained in an amount of 10 to 100 parts by weight, or 10 to 60 parts by weight, relative to 100 parts by weight of the polymer mixture.
[0131] If the ceramic compound is contained in an excessively small amount, the polymer crystallinity and amorphous effect of the ceramic compound may be reduced, resulting in a smaller increase in the ionic conductivity of the electrolyte, and the overall mechanical properties of the electrolyte may also be insufficient.
[0132] If the ceramic compound is contained in an excessively large amount, the ceramic compound may not be uniformly dispersed in the polymer, and the ceramic compound particles may aggregate and clump together, resulting in an electrolyte with reduced ionic conductivity.
[0133] Meanwhile, the above-mentioned electrolyte can exhibit excellent ionic conductivity at substantially all temperatures at which the battery is operated, including low, room, and high temperatures. For example, such an electrolyte can exhibit excellent ionic conductivity, such as a low-temperature ionic conductivity of 0.015 mS / cm or more, 0.15 mS / cm or more, 0.20 mS / cm or more, or 0.20 mS / cm to 0.50 mS / cm, measured at temperatures of −30° C. to −10° C.
[0134] The electrolyte can also exhibit excellent ionic conductivity at room temperature or at high temperatures. For example, the electrolyte may have a room temperature ionic conductivity of 0.5 mS / cm or more, or 1.3 mS / cm or more, or 1.5 mS / cm or more, or from 1.5 mS / cm to 2.5 mS / cm, measured at 25°C, and a high temperature ionic conductivity of 1.1 mS / cm or more, or 3.0 mS / cm or more, or 3.1 mS / cm or more, or from 3.1 mS / cm to 4.5 mS / cm, measured at 50°C.
[0135] Such ionic conductivity can be calculated from the resistance (Ω) of the electrolyte measured by an electrochemical impedance spectrometer at a constant temperature using the following equation 1:
[0136] [Formula 1]
[0137]
number
[0138] In the above formula 1, σi is the low-temperature ionic conductivity (S / cm) of the electrolyte, R is the resistance (Ω) of the electrolyte measured by the electrochemical impedance spectrometer, L is the thickness (μm) of the electrolyte, and A is the area (cm 2 ) means
[0139] Electrolyte manufacturing method
[0140] In another embodiment of the present invention, there is provided a method for manufacturing the electrolyte of the above-described embodiment, which may include mixing a polymer mixture including a PEO-based polymer having a cross-linkable functional group and a non-cross-linkable PEO-based polymer with a ceramic compound, causing a cross-linking reaction of the PEO-based polymer having a cross-linkable functional group contained in the mixture, and exposing the cross-linked resultant to a vaporized polar compound to vapor-deposit the polar compound onto the cross-linked resultant.
[0141] At this time, the components including the PEO-based polymer having a cross-linkable functional group and the non-cross-linkable PEO-based polymer are as described above.
[0142] Each stage will be explained in more detail below.
[0143] First, a PEO (polyethylene oxide)-based polymer containing a cross-linkable functional group, the non-cross-linkable PEO-based polymer, and a ceramic compound are mixed together, and then a cross-linking reaction is carried out on the PEO-based polymer containing a cross-linkable functional group contained in the mixture, thereby producing a polymer mixture having the above-mentioned three-dimensional network structure.
[0144] The crosslinking reaction may proceed in the additional presence of one or more selected from the group consisting of a multifunctional crosslinking agent and an initiator.
[0145] In addition, a lithium salt may be added together in the mixing step and / or the crosslinking reaction step to form an electrolyte.
[0146] The ceramic compound can be the same as that used in the electrolyte described above, and the content can also be the same.
[0147] The crosslinking reaction may occur during a drying process after a solution containing the crosslinkable PEO-based polymer, the non-crosslinkable PEO-based polymer, and a ceramic compound is applied to a substrate to form a coating film.
[0148] Specifically, the mixed solution can be prepared by mixing the crosslinkable PEO-based polymer, the non-crosslinkable PEO-based polymer, and the ceramic compound in a solvent, and additionally mixing a crosslinker, an initiator, and / or a lithium salt together. Alternatively, a solution containing the crosslinkable PEO-based polymer, the non-crosslinkable PEO-based polymer, the crosslinker, the initiator, and / or the lithium salt can be prepared first, and then the ceramic compound can be added to prepare a mixed solution or suspension.
[0149] The solvent is not particularly limited as long as it can be mixed with the crosslinkable PEO-based polymer, the non-crosslinkable PEO-based polymer, the crosslinking agent, the initiator, and / or the lithium salt and can be easily removed by a drying process. For example, the solvent may be acetonitrile, methanol, ethanol, tetrahydrofuran, water, isopropyl alcohol, dimethyl sulfoxide (DMSO), N-methyl-2-pyrrolidone (NMP), or N,N-dimethyl formamide (DMF). Such solvents serve as reaction media for crosslinking and are distinct from polar solvents contained in liquid electrolytes, etc., and are completely removed by drying or the like after crosslinking.
[0150] The concentration of the mixed solution can be appropriately adjusted taking into consideration the smooth progress of the molding process for producing the electrolyte. Specifically, the concentration of the polymer solution may refer to the concentration (w / w%) of the polymer in the polymer solution. The concentration of the polymer may refer to the concentration of the crosslinkable PEO-based polymer and the non-crosslinkable PEO-based polymer. For example, the concentration of the polymer solution may be 5 wt% to 20 wt%, specifically, 5 wt% or more, 7 wt% or more, or 9 wt% or more, or 13 wt% or less, 17 wt% or less, or 20 wt% or less. If the concentration of the polymer solution is less than 5 wt%, the electrolyte may be too thin, resulting in a decrease in mechanical strength or runoff when applied to a substrate. If the concentration is more than 20 wt%, it may be difficult to dissolve the lithium salt in the polymer solution to the desired concentration, or the viscosity may be high, resulting in a decrease in solubility or difficulty in applying the solution to a uniform thin film.
[0151] The substrate is not particularly limited as long as it serves as a support for the coating film. For example, the substrate may be SUS (Steel Use Stainless Steel), a polyethylene terephthalate film, a polytetrafluoroethylene film, a polyethylene film, a polypropylene film, a polybutene film, a polybutadiene film, a vinyl chloride copolymer film, a polyurethane film, an ethylene-vinyl acetate film, an ethylene-propylene copolymer film, an ethylene-ethyl acrylate copolymer film, an ethylene-methyl acrylate copolymer film, or a polyimide film.
[0152] The coating method is not particularly limited as long as it can coat the polymer solution on the substrate to form a coating film, and may be, for example, bar coating, roll coating, spin coating, slit coating, die coating, blade coating, comma coating, slot die coating, lip coating, spray coating, or solution casting.
[0153] The coating film formed on the substrate by this coating method can be formed into a film-type polymer by a drying process, from which the residual solvent has been completely removed. The drying process can be divided into a primary drying process and a secondary drying process to prevent shrinkage of the polymer due to rapid evaporation of the solvent. The primary drying process can remove a portion of the solvent by drying at room temperature, and the secondary drying process can completely remove the solvent by high-temperature drying in a vacuum. The high-temperature drying can be performed at a temperature of 80°C to 130°C. If the high-temperature drying temperature is less than 80°C, the residual solvent cannot be completely removed, and if it exceeds 130°C, the polymer will shrink, making it difficult to form a uniform electrolyte membrane.
[0154] The crosslinking agent may form a bond with the crosslinkable functional group. The types of the crosslinking agent, the content of the crosslinking agent, and the types of bonds with the crosslinkable functional group are as described above.
[0155] The initiator can induce a radical polymerization reaction between the cross-linkable functional groups to form cross-links between the cross-linkable functional groups. The functional group that enables the radical polymerization reaction may be a functional group containing vinyl at its terminal, or may be, for example, an allyl group.
[0156] The initiator is not particularly limited as long as it is an initiator that can induce a radical polymerization reaction between the cross-linking functional groups. For example, the initiator may include one or more selected from the group consisting of benzoyl peroxide, azobisisobutyronitrile, lauroyl peroxide, cumene hydroperoxide, diisopropylphenyl hydroperoxide, tert-butyl hydroperoxide, paramethane hydroperoxide (p-methyl hydroperoxide), and 2,2'-azobis(2-methylpropionitrile).
[0157] The initiator can be used in an amount of 0.5 to 2 parts by weight per 100 parts by weight of the crosslinkable PEO-based polymer containing the crosslinkable functional group, and when used in this range, it can induce a radical polymerization reaction between the crosslinkable functional groups to efficiently form crosslinks.
[0158] The content and type of the lithium salt are as described above.
[0159] Meanwhile, in the vapor deposition step, the crosslinked resultant can be vapor-deposited by exposing it to a vaporized polar compound (polar solvent).
[0160] Specifically, the vapor deposition can be performed by heating the polar solvent at a temperature equal to or higher than room temperature, contacting the vapor of the polar compound obtained with the crosslinked product, and allowing it to penetrate inside. Through such vapor deposition, the polar compound in a gaseous state can be uniformly dispersed on the surface and / or inside of the polymer, and the polar compound gas molecules can be bound to the polymer chains or contained in the internal space of the polymer chains in a uniformly dispersed or diffused form.
[0161] When the polar solvent is placed at room temperature during vapor deposition, a small amount of the polar solvent with a low boiling point gradually vaporizes at room temperature and penetrates into the polymer, effectively inducing a conformational change in the cross-linked polymer chains within the polymer.
[0162] Furthermore, the vapor deposition rate can be increased by heating the polar solvent during the vapor deposition. The heating temperature is not particularly limited as long as it is a temperature at which the polar solvent can change phase to vapor, and may be, for example, 30°C to 80°C. While typical PEO melts at 60°C, the PEO copolymer modified with cross-linking functional groups exhibits improved heat resistance and can withstand temperatures up to 80°C when a cross-linked structure is formed, thereby further increasing the vapor deposition rate. The heating method is not limited as long as it can provide energy to generate vapor. Examples of suitable methods include, but are not limited to, direct heating using a burner or fan, or indirect heating using a heater or steam tube.
[0163] If the heating temperature is too high, the polar solvent may boil above its boiling point, the solvent may undergo structural changes, or polymer deformation may occur. In addition, it is difficult to control the evaporation rate of the polar solvent during vapor deposition. Therefore, in order to vapor deposit a small amount of polar solvent, it is preferable to perform vapor deposition at a heating temperature within the appropriate range as defined above.
[0164] Meanwhile, the content of the polar compound in the final electrolyte can be controlled by adjusting the vapor deposition temperature, heating rate, amount of polar solvent (polar compound) used for evaporation during vapor deposition, and vapor deposition time and rate, as will be apparent from the following examples.
[0165] All solid state battery
[0166] An additional embodiment of the invention also relates to an all-solid-state battery including the electrolyte, the all-solid-state battery including a negative electrode, a positive electrode, and an electrolyte-containing electrolyte layer interposed between the negative electrode and the positive electrode, wherein the electrolyte is according to one of the embodiments described above.
[0167] Specifically, the electrolyte contains a polymer in which a PEO (polyethylene oxide)-based polymer containing a cross-linkable functional group is cross-linked, a non-cross-linked PEO-based polymer, and a polar compound, and the ceramic compound is uniformly dispersed, thereby exhibiting improved ionic conductivity not only at room temperature and high temperature but also at low temperature, making it suitable as an electrolyte for all-solid-state batteries.
[0168] Meanwhile, the positive electrode included in the all-solid-state battery may include a positive electrode active material layer, and the positive electrode active material layer may be formed on one surface of a positive electrode current collector.
[0169] The positive electrode active material layer includes a positive electrode active material, a binder, and a conductive material.
[0170] The positive electrode active material is not particularly limited as long as it is a material capable of reversibly absorbing and releasing lithium ions, and examples thereof include lithium cobalt oxide, lithium nickel oxide, Li[NixCoyMnzMv]O2 (wherein M is any one or more elements selected from the group consisting of Al, Ga, and In; 0.3≦x<1.0, 0≦y, z≦0.5, 0≦v≦0.1, and x+y+z+v=1), Li(LiaMb-a-b'M'b')O 2-c A c (wherein 0≦a≦0.2, 0.6≦b≦1, 0≦b'≦0.2, 0≦c≦0.2; M includes Mn and one or more elements selected from the group consisting of Ni, Co, Fe, Cr, V, Cu, Zn, and Ti; M' is one or more elements selected from the group consisting of Al, Mg, and B; and A is one or more elements selected from the group consisting of P, F, S, and N); layered compounds and compounds substituted with one or more transition metals, such as those represented by the formula Li 1+y Mn 2-yLithium manganese oxides such as LiMnO4 (where y is 0 to 0.33), LiMnO3, LiMn2O3, and LiMnO2; lithium copper oxide (Li2CuO2); vanadium oxides such as LiV3O8, LiFe3O4, V2O5, and Cu2V2O7; and the chemical formula LiNi 1-y Ni-site lithium nickel oxide represented by MyO2 (where M = Co, Mn, Al, Cu, Fe, Mg, B, or Ga, and y = 0.01 to 0.3); chemical formula LiMn 2-y M y Examples of such compounds include, but are not limited to, lithium manganese composite oxides expressed as Li2Mn3MO8 (where M is Co, Ni, Fe, Cr, Zn, or Ta, and y is 0.01 to 0.1) or Li2Mn3MO8 (where M is Fe, Co, Ni, Cu, or Zn); LiMn2O4, in which part of the Li in the chemical formula is replaced with an alkaline earth metal ion; disulfide compounds; and Fe2(MoO4)3.
[0171] The positive electrode active material may be included in an amount of 40 to 80 wt % based on the total weight of the positive electrode active material layer. Specifically, the content of the positive electrode active material may be 40 wt % or more, or 50 wt % or more, or 70 wt % or less, or 80 wt % or less. If the content of the positive electrode active material is less than 40 wt %, the connectivity between the positive electrode active materials and the electrical properties may be insufficient, and if it exceeds 80 wt %, the mass transfer resistance may be high.
[0172] The binder is a component that aids in bonding the positive electrode active material to the conductive material and the current collector, and is selected from the group consisting of styrene-butadiene rubber, acrylated styrene-butadiene rubber, acrylonitrile copolymer, acrylonitrile-butadiene rubber, nitrile butadiene rubber, acrylonitrile-styrene-butadiene copolymer, acrylic rubber, butyl rubber, fluororubber, polytetrafluoroethylene, polyethylene, polypropylene, ethylene / propylene copolymer, polybutadiene, polyethylene oxide, chlorosulfonated polyethylene, polyvinylpyrrolidone, polyvinylpyridine, polyvinyl alcohol, polyvinyl acetate, polyepichlorohydrin, polyphosphazene, and polyacrylonite. The binder may include one or more selected from the group consisting of styrene-butadiene rubber, polytetrafluoroethylene, carboxymethyl cellulose, polystyrene, latex, acrylic resin, phenolic resin, epoxy resin, carboxymethyl cellulose, hydroxypropyl cellulose, cellulose acetate, cellulose acetate butyrate, cellulose acetate propionate, cyanoethyl cellulose, cyanoethyl sucrose, polyester, polyamide, polyether, polyimide, polycarboxylate, polycarboxylic acid, polyacrylic acid, polyacrylate, lithium polyacrylate, polymethacrylic acid, polymethacrylate, polyacrylamide, polyurethane, polyvinylidene fluoride, and poly(vinylidene fluoride)-hexafluoropropene. Preferably, the binder may include one or more selected from the group consisting of styrene-butadiene rubber, polytetrafluoroethylene, carboxymethyl cellulose, polyacrylic acid, lithium polyacrylate, and polyvinylidene fluoride.
[0173] The binder may be contained in an amount of 1 wt % to 30 wt % based on the total weight of the positive electrode active material layer. Specifically, the binder content may be 1 wt % or more, or 3 wt % or more, or 15 wt % or less, or 30 wt % or less. If the binder content is less than 1 wt %, the adhesive strength between the positive electrode active material and the positive electrode current collector may be reduced. If the binder content exceeds 30 wt %, the adhesive strength may be improved, but the content of the positive electrode active material may be reduced accordingly, resulting in a reduced battery capacity.
[0174] Furthermore, the conductive material is not particularly limited as long as it prevents side reactions in the internal environment of the all-solid-state battery, has excellent electrical conductivity without inducing chemical changes in the battery, and is typically graphite or conductive carbon. Examples of the conductive material include graphite such as natural graphite and artificial graphite; carbon black such as carbon black, acetylene black, ketjen black, denka black, thermal black, channel black, furnace black, lamp black, and summer black; carbon-based substances having a graphene or graphite crystal structure; conductive fibers such as carbon fibers and metal fibers; carbon fluoride; metal powders such as aluminum powder and nickel powder; conductive whiskers such as zinc oxide and potassium titanate; conductive oxides such as titanium oxide; and conductive polymers such as polyphenylene derivatives. These may be used alone or in combination of two or more, but are not necessarily limited thereto.
[0175] The conductive material may typically be included in an amount of 0.5 wt % to 30 wt % based on the total weight of the positive electrode active material layer. Specifically, the content of the conductive material may be 0.5 wt % or more, or 1 wt % or more, or 20 wt % or less, or 30 wt % or less. If the content of the conductive material is too low, such as less than 0.5 wt %, it may be difficult to expect an improvement in electrical conductivity, or the electrochemical characteristics of the battery may be degraded. If the content of the conductive material is too high, such as more than 30 wt %, the amount of positive electrode active material may be relatively small, resulting in reduced capacity and energy density. The method for incorporating the conductive material into the positive electrode is not particularly limited, and conventional methods known in the art, such as coating the positive electrode active material, may be used.
[0176] The positive electrode current collector supports the positive electrode active material layer and plays a role in transferring electrons between an external conductor and the positive electrode active material layer.
[0177] The positive electrode current collector is not particularly limited as long as it has high electronic conductivity without inducing chemical changes in the all-solid-state battery, and examples of the positive electrode current collector that can be used include copper, stainless steel, aluminum, nickel, titanium, palladium, baked carbon, copper or stainless steel surface-treated with carbon, nickel, silver, or the like, and aluminum-cadmium alloys.
[0178] The positive electrode current collector may have a micro-irregular structure or a three-dimensional porous structure on its surface to strengthen the bonding strength with the positive electrode active material layer, and may include various forms such as a film, sheet, foil, mesh, net, porous body, foam, or nonwoven fabric.
[0179] Such a positive electrode can be manufactured by a conventional method. Specifically, the positive electrode active material, conductive material, and binder are mixed in an organic solvent to form a positive electrode active material layer. The resulting composition is then applied to a positive electrode current collector, dried, and optionally, compressed into a current collector to improve electrode density. Preferably, the organic solvent is one that can uniformly disperse the positive electrode active material, binder, and conductive material and is easily evaporated. Specific examples include acetonitrile, methanol, ethanol, tetrahydrofuran, water, isopropyl alcohol, dimethyl sulfoxide (DMSO), and N-methyl-2-pyrrolidone (NMP).
[0180] Meanwhile, the negative electrode included in the all-solid-state battery may include a negative electrode active material layer, and the negative electrode active material layer may be formed on one surface of a negative electrode current collector.
[0181] In another example of the all-solid-state battery, the negative electrode may include only a negative electrode current collector without a negative electrode active material layer. In this case, lithium ions that migrate from the positive electrode during charge and discharge of the battery may be electrodeposited on the negative electrode current collector to form a lithium metal layer, which may act as a negative electrode active material.
[0182] On the other hand, the negative electrode active material is lithium (Li + The lithium ion-containing compound may include a material capable of reversibly intercalating or deintercalating lithium ions, a material capable of reacting with lithium ions to reversibly form a lithium-containing compound, lithium metal, or a lithium alloy.
[0183] The lithium ion (Li + The material capable of reversibly inserting or desorbing lithium ions (Li) may be, for example, crystalline carbon, amorphous carbon, or a mixture thereof. + The material capable of reacting with lithium (Li) to reversibly form a lithium-containing compound may be, for example, tin oxide, titanium nitrate, or silicon. The lithium alloy may be, for example, an alloy of lithium (Li) and a metal selected from the group consisting of sodium (Na), potassium (K), rubidium (Rb), cesium (Cs), francium (Fr), beryllium (Be), magnesium (Mg), calcium (Ca), strontium (Sr), barium (Ba), radium (Ra), aluminum (Al), and tin (Sn).
[0184] Preferably, the negative electrode active material may be lithium metal, specifically in the form of a lithium metal thin film or lithium metal powder.
[0185] The negative electrode active material may be included in an amount of 40 to 80 wt % based on the total weight of the negative electrode active material layer. Specifically, the content of the negative electrode active material may be 40 wt % or more or 50 wt % or more, or 70 wt % or less or 80 wt % or less. If the content of the negative electrode active material is less than 40 wt %, the electrical properties may be insufficient, and if it exceeds 80 wt %, the mass transfer resistance may be high.
[0186] The binder is the same as that described above in the positive electrode active material layer.
[0187] The conductive material is the same as that described above in the positive electrode active material layer.
[0188] The negative electrode current collector is not particularly limited as long as it is conductive and does not induce chemical changes in the battery, and examples of the negative electrode current collector that can be used include copper, stainless steel, aluminum, nickel, titanium, calcined carbon, copper or stainless steel surface-treated with carbon, nickel, titanium, silver, etc., aluminum-cadmium alloy, etc. As with the positive electrode current collector, the negative electrode current collector can be in various forms such as a film, sheet, foil, net, porous material, foam, nonwoven fabric, etc., with a finely textured surface.
[0189] The method for manufacturing the negative electrode is not particularly limited, and the negative electrode may be manufactured by forming a negative electrode active material layer on a negative electrode current collector using a layer or film formation method commonly used in the art, such as compression bonding, coating, deposition, etc. Furthermore, the negative electrode of the present invention also includes a case where a thin metallic lithium film is formed on a metal plate by initial charging after a battery is assembled without a thin lithium film on the negative electrode current collector.
[0190] Meanwhile, according to additional embodiments of the present invention, there are provided a battery module including the all-solid-state battery as a unit cell, a battery pack including the battery module, and a device including the battery pack as a power source.
[0191] Specific examples of the device include, but are not limited to, power tools powered by electric motors; electric vehicles including electric vehicles (EVs), hybrid electric vehicles (HEVs), and plug-in hybrid electric vehicles (PHEVs); electric two-wheeled vehicles including electric bicycles (E-bikes) and electric scooters; electric golf carts; and power storage systems.
[0192] Hereinafter, preferred examples will be presented for the understanding of the invention. However, the following examples are provided merely to facilitate understanding of the invention, and the invention is not limited thereto.
[0193] Examples 1 to 3 and Comparative Examples 1 to 3: Electrolyte production
[0194] First, a polyethylene oxide (PEO) copolymer having a crosslinkable functional group and represented by the following formula 1a was prepared:
[0195] [Chemical formula 1a]
[0196] [ka]
[0197] In the above chemical formula 1a, R1 is -CH2-O-(CH2-CH2-O) k R2 was -CH2-O-CH2-CH=CH2, k was 2, the l:m:n ratio was 85:13:2, and the weight average molecular weight (Mw) of the copolymer was about 2,000,000 g / mol.
[0198] Meanwhile, a polyethylene oxide (PEO)-based copolymer having a non-crosslinkable structure and represented by the following formula 1b was prepared:
[0199] [Formula 1b]
[0200] [ka]
[0201] In the formula 1b, the ratio of l:m was 85:15, and the weight average molecular weight (Mw) of the copolymer was about 2,000,000 g / mol.
[0202] In each example and comparative example, the weight ratio of the non-crosslinkable copolymer of Formula 1b to the total combined weight of the copolymer having a crosslinkable functional group of Formula 1a and the non-crosslinkable copolymer of Formula 1b was 0 (Comparative Example 1), 0.15 (Example 1), 0.3 (Example 2), 0.5 (Example 3), 0.7 (Comparative Example 2), and 1 (Comparative Example 3), with the copolymer of Formula 1a being used in the remaining weight ratio. These copolymers of Formula 1a and 1b were mixed in the above weight ratios to prepare polymer blends.
[0203] The polymer mixture was added to an acetonitrile solvent and further mixed with trimethylolpropane trimethacrylate as a crosslinker, benzoyl peroxide as an initiator, LiTFSI as a lithium salt, and LSTP as a ceramic compound to prepare a mixed solution of the polymer and ceramic compound. The mixed solution was stirred for 24 hours using a magnetic bar. The mixed solution of the polymer mixture and ceramic compound consisted of 36 parts by weight of LiTFSI (lithium salt) and 40 parts by weight of LSTP (ceramic compound) per 100 parts by weight of the polymer mixture. Additionally, 20 parts by weight of trimethylolpropane trimethacrylate (crosslinker) and 1 part by weight of benzoyl peroxide (initiator) were added to 100 parts by weight of the copolymer having crosslinkable functional groups of Formula 1a in the mixed solution. The acetonitrile solvent was used so that the concentration of the polymer mixture in the mixed solution was 11.1 wt %, and the concentration of the polymer mixture and ceramic compound was 14.9 wt %.
[0204] The prepared mixed solution was solution-cast on the lower substrate of a coin cell, and then primarily dried at room temperature for 12 hours, and then secondary dried in a vacuum oven at 100°C for 12 hours to prepare an electrolyte film with a thickness of 200 μm.
[0205] The electrolyte film was attached to the upper plate of a chamber, and 50 μL of ethyl methyl carbonate (EMC) solvent was filled in the lower part of the chamber and allowed to evaporate at room temperature for 72 hours, allowing EMC vapor to flow into the electrolyte film attached to the upper part of the chamber, thereby causing vapor deposition on the electrolyte film to produce an electrolyte.
[0206] Examples 4 to 6: Electrolyte production
[0207] An electrolyte membrane was produced in the same manner as in Examples 1 to 3.
[0208] The electrolyte film was attached to the upper plate of a chamber, and the lower part of the chamber was filled with 300 μL of ethyl methyl carbonate (EMC) solvent, which was then allowed to evaporate at room temperature for 72 hours, allowing EMC vapor to flow into the electrolyte film attached to the upper part of the chamber, thereby producing an electrolyte by vapor deposition on the electrolyte film.
[0209] Comparative Examples 4 to 9: Electrolyte Production (Vapor Deposition Not Performed)
[0210] In Examples 1 to 3 and Comparative Examples 1 to 3, the electrolytes were prepared in the same manner as in Examples 1 to 3 and Comparative Examples 1 to 3, except that the step of vapor depositing ethyl methyl carbonate (EMC) solvent was omitted.
[0211] Comparative Examples 10 to 12: Preparation of electrolytes (containing large amounts of polar solvents)
[0212] An electrolyte membrane was produced in the same manner as in Examples 1 to 3.
[0213] An electrolyte was prepared in the same manner as in Examples 1 to 3, except that the EMC solvent was directly injected as a liquid solvent without vapor deposition. The EMC solvent was directly injected so that the content of the EMC solvent was 12 wt % based on the total weight of the prepared electrolyte.
[0214] Experimental Example
[0215] Experimental Example 1: Measurement of polar compound content
[0216] The polar compound content can be measured by monitoring the weight of the liquid phase evaporated over time while heating the solid electrolyte test piece using a balance. For example, a heated electronic balance (AND Corp. MS-70) can be used to monitor the weight of the liquid phase evaporated over time while heating the test piece at an elevated temperature starting from 55°C. When the amount of polar compound evaporated over time reached a saturation point, this was considered to be the total amount of polar compound contained within the solid electrolyte. In the examples and comparative examples, the polar compound was ethyl methyl carbonate (EMC; boiling point: approximately 101°C), and heating to approximately 110°C was performed to measure the polar compound content.
[0217] Table 1 below shows the results of measuring the content of EMC vapor-deposited (or contained) in the electrolyte.
[0218] [Table 1]
[0219] Experimental Example 2: Measurement of ionic conductivity of electrolytes
[0220] To measure the ionic conductivity of the electrolytes prepared in the examples and comparative examples, a 1.7671 cm 2 The electrolyte was formed on the lower substrate of a coin cell having a size of 1 / 4 mm, and then SUS was used as a blocking electrode to prepare a coin cell for measuring ionic conductivity.
[0221] Resistance was measured using an electrochemical impedance spectrometer (EIS, VM3, Bio Logic Science Instrument) at a constant temperature, for example, a constant temperature selected from -40°C to 80°C (20°C, -10°C, 25°C, room temperature, or 50°C), at an amplitude of 10 mV, and in a scan range of 1 Hz to 0.1 MHz. The ionic conductivity of the electrolyte was then calculated using the following Equation 1:
[0222] [Formula 1]
[0223]
number
[0224] In the above formula 1, σ i is the ionic conductivity of the electrolyte (S / cm), R is the resistance of the electrolyte (Ω) measured by the electrochemical impedance spectrometer, L is the thickness of the electrolyte (μm), and A is the area of the electrolyte (cm 2 The electrolyte sample had a thickness of L = 200 μm and an A = 1.7671 cm 2 The following items were used.
[0225] The ionic conductivities of the electrolytes of the Examples and Comparative Examples measured by this method at different temperatures are summarized in Table 2 below and FIG.
[0226] [Table 2]
[0227] * "Not measured": The cross-linking structure of the electrolyte itself has collapsed, making it impossible to measure ionic conductivity. Referring to Table 2 and Figure 2, it was confirmed that the electrolytes of the Examples exhibited superior ionic conductivity compared to the Comparative Examples across all temperatures, including low, room, and high temperatures. In particular, it was confirmed that the electrolytes of the Examples exhibited superior ionic conductivity compared to Comparative Examples 10 to 12, which had very high polar compound (polar solvent) contents. This is presumably because the polar compound in the electrolytes of the Examples was vapor-deposited, resulting in its inclusion or binding in a gaseous state in the solid electrolyte. This can be confirmed by the fact that Example 3, in which the polar compound was vapor-deposited at a relatively low content and the state of the polar compound was optimized by vapor deposition, exhibited improved ionic conductivity.
[0228] Meanwhile, the ionic conductivities at room temperature (25° C.) of the electrolytes of Examples 1 to 3 and Comparative Examples 1 to 9 measured by the above-mentioned method are shown in FIG.
[0229] Referring to FIG. 1, it was confirmed that the electrolytes of Comparative Examples 4 to 9, which were prepared without adding a polar compound (EMC) or vapor deposition, exhibited lower ionic conductivities than the Examples, and the change in ionic conductivity was completely different from that of the Examples.
[0230] Furthermore, Examples 1 to 3, in which the weight ratio of the non-crosslinked and crosslinked polymers in the polymer mixture was optimized, exhibited excellent ionic conductivity, whereas Comparative Examples 2 and 3, in which the weight ratio of the non-crosslinked polymer was excessively high, showed that the crosslinked structure of the electrolyte itself had collapsed, making it impossible to measure ionic conductivity (shaded area in Figure 1).Comparative Example 1, in which the weight ratio of the non-crosslinked polymer was excessively low, also exhibited lower ionic conductivity than the Examples.
[0231] Therefore, it was confirmed that the electrolytes of the examples exhibited excellent ionic conductivity at low, room, and high temperatures despite containing significantly reduced polar compounds (polar solvents) due to the application of a polymer mixture in which the weight ratio of non-crosslinkable and crosslinkable polymers was optimized and the vapor deposition of polar compounds.
Claims
1. An electrolyte comprising: a polymer mixture including a PEO (polyethylene oxide)-based polymer having a cross-linkable functional group and a non-cross-linkable PEO-based polymer; a ceramic compound; and a polar compound, at least a part of the cross-linking functional groups forms cross-links, and the PEO-based polymer forms a three-dimensional network structure; The polar compound is contained in an amount of 0.1 wt % or more and less than 10 wt % based on the total weight of the electrolyte, and is at least one of dispersed among the polymer chains forming the three-dimensional network structure and bonded to the polymer chains.
2. 2. The electrolyte according to claim 1, which has a low-temperature ionic conductivity of 0.015 mS / cm or more measured at temperatures of −30° C. to −10° C.
3. 2. The electrolyte according to claim 1, which has a room temperature ionic conductivity measured at 25°C of 0.5 mS / cm or more.
4. 2. The electrolyte of claim 1, wherein the high-temperature ionic conductivity measured at a temperature of 50°C is 1.1 mS / cm or more.
5. The electrolyte of claim 1 further comprising a multifunctional crosslinker.
6. The electrolyte according to claim 5 , wherein at least a portion of the cross-linkable functional groups form cross-links with each other via the multifunctional cross-linking agent.
7. the cross-linkable functional group is bonded to the PEO-based polymer via an alkylene linker or alkylene oxide linker having 0 to 10 carbon atoms (wherein an alkylene linker having 0 carbon atoms represents a single bond); 2. The electrolyte of claim 1, wherein the group is selected from the group consisting of a hydroxyl group, a carboxyl group, an isocyanate group, a nitro group, a cyano group, an amine group, an amide group, an epoxy group, and an allyl group.
8. 10. The electrolyte of claim 1 further comprising a lithium salt.
9. The electrolyte according to claim 8, wherein the lithium salt is contained in an amount of 25 to 45 parts by weight based on 100 parts by weight of the polymer mixture.
10. 2. The electrolyte according to claim 1, wherein the weight ratio of the PEO-based polymer having cross-linkable functional groups to the non-cross-linkable PEO-based polymer is 5:5 to 9:
1.
11. The electrolyte according to claim 1, wherein the PEO-based polymer having a cross-linking functional group is a copolymer containing repeating units of the following chemical formulas 1 to 3: [Chemical formula 1] 【Chemical 1】 [Chemical formula 2] 【Chemistry 2】 [Chemical formula 3] 【Chemistry 3】 In the above chemical formulas 1 to 3, R 1 is -CH 2 -O-(CH 2 -CH 2 -O) k -R 3 where k is 0 to 20, and R 3 represents an alkyl group having 1 to 5 carbon atoms, R 2 represents a substituent in which one or more crosslinkable functional groups selected from the group consisting of a hydroxyl group, a carboxyl group, an isocyanate group, a nitro group, a cyano group, an amine group, an amide group, an epoxy group, and an allyl group are bonded to a polymer chain via an alkylene linker or alkylene oxide linker having 0 to 10 carbon atoms (however, an alkylene linker having 0 carbon atoms represents a single bond), l, m and n are the number of repeating units, l and n are each independently an integer of 1 to 100,000, and m is an integer of 0 to 100,000.
12. The electrolyte of claim 1, wherein the non-crosslinkable PEO-based polymer is a copolymer containing repeating units of the following chemical formulas 1 and 2: [Chemical formula 1] 【Chemistry 4】 [Chemical formula 2] 【Chemistry 5】 In the above formulas 1 and 2, R 1 is -CH 2 -O-(CH 2 -CH 2 -O) k -R 3 where k is 0 to 20, and R 3 represents an alkyl group having 1 to 5 carbon atoms, l and m are the number of repeating units, and are each independently an integer of 1 to 100,000.
13. 2. The electrolyte of claim 1, wherein the PEO-based polymer having cross-linkable functional groups and the non-cross-linkable PEO-based polymer each have a weight average molecular weight (Mw) of 100,000 g / mol to 4,000,000 g / mol.
14. The electrolyte according to claim 1 , wherein the polar compound comprises at least one selected from the group consisting of carbonate-based compounds and sulfonyl-based compounds.
15. 2. The electrolyte of claim 1, wherein the polar compound comprises at least one selected from the group consisting of ethyl methyl carbonate (EMC), dimethyl carbonate (DMC), diethyl carbonate (DEC), ethylene carbonate (EC), propylene carbonate (PC), vinylene carbonate (VC), and sulfolane.
16. 10. The electrolyte of claim 1, wherein the ceramic compound comprises an oxide-based solid electrolyte of lithium metal oxide or lithium metal phosphate.
17. 2. The electrolyte of claim 1, wherein the ceramic compound comprises one or more oxide-based solid electrolytes selected from the group consisting of lithium-lanthanum-zirconium oxide (LLZO) compounds, lithium-silicon titanium phosphate (LSTP) compounds, lithium-lanthanum-titanium oxide (LLTO) compounds, lithium-aluminum-titanium phosphate (LATP) compounds, lithium-aluminum-germanium phosphate (LAGP) compounds, and lithium-lanthanum-zirconium-titanium oxide (LLZTO) compounds.
18. 2. The electrolyte of claim 1, wherein the ceramic compound is contained in particles having a diameter of 100 nm to 1000 nm.
19. 2. The electrolyte according to claim 1, wherein the ceramic compound is contained in an amount of 10 to 100 parts by weight based on 100 parts by weight of the polymer mixture.
20. A method for producing an electrolyte according to any one of claims 1 to 19, comprising: mixing a polymer mixture including a PEO-based polymer having a cross-linkable functional group and a non-cross-linkable PEO-based polymer with a ceramic compound; Promoting a crosslinking reaction on the PEO-based polymer having a crosslinking functional group contained in the mixture; exposing the cross-linked resultant to a vaporized polar compound to vapor deposit the polar compound on the cross-linked resultant.
21. The method for producing an electrolyte according to claim 20 , wherein the polar compound is dispersed on or bound to the electrolyte in a gaseous state.
22. An all-solid-state battery comprising an electrolyte layer comprising the electrolyte according to any one of claims 1 to 19.
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