Polycrystalline layered metal oxide containing nanocrystals
Polycrystalline layered lithiated metal oxides with nanocrystalline structures address the stability and cycle performance issues of lithium nickelate cathodes by synthesizing nanocrystals at low temperatures, achieving high capacity and reduced impedance in lithium-ion batteries.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2024-03-27
- Publication Date
- 2026-03-26
AI Technical Summary
Existing lithium nickelate materials for lithium-ion battery cathodes suffer from poor electrochemical stability and cycle performance, particularly when high nickel content is required for high capacity, leading to increased impedance during charge/discharge cycles.
The development of polycrystalline layered lithiated metal oxides with nanocrystalline structures, synthesized at temperatures below 700°C, featuring nanocrystals with sizes of 85 nm or less for the base material and 105 nm or less for grain boundary-enriched materials, to reduce impedance increase during cycling.
These materials exhibit improved electrochemical performance and stability, maintaining high discharge capacity while reducing the rate of impedance increase, thereby enhancing the cycle life of lithium-ion batteries.
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Abstract
Description
[Technical Field]
[0001] Cross-reference of related applications This application claims priority to U.S. Patent Application No. 62 / 328,447, filed on 27 April 2016, the disclosures of which are incorporated herein by reference.
[0002] field Polycrystalline metal oxide particles, a method for producing the same, and an electrochemical cell or battery containing the same are disclosed.
[0003] background Layered lithium nickelate (LiNiO2) materials are generally being developed for lithium-ion battery cathodes because they offer lower cost, higher capacity, and higher rate characteristics compared to conventional major LiCoO2 cathode materials. However, pure LiNiO2 materials have poor electrochemical stability and cycle performance. To address this, non-nickel elemental additives are incorporated into LiNiO2 to stabilize its structure, improving cycle performance but generally sacrificing discharge capacity. As energy density demands increase, research has focused on optimizing and reducing these non-nickel additives to achieve high capacity in high-Ni materials while simultaneously maintaining cycle performance.
[0004] Therefore, novel materials are needed to address the demand for high-capacity materials with long cycle life. The materials and methods for forming such materials provided herein address this need by maintaining high capacity over long cycle life.
[0005] overview The following summary is provided to facilitate understanding of some of the innovative features unique to this disclosure and is not intended to be a complete description. A full understanding of the various aspects of this disclosure can be obtained by reviewing the specification, claims, drawings, and abstract as a whole.
[0006] The object of this disclosure is to provide electrochemically active polycrystalline particles that exhibit superior capacity and improved cycle life when incorporated into lithium-ion cells. The electrochemically active polycrystalline particles comprise multiple nanocrystals, which are Li 1+x MO 2+y It has a first composition defined by . Optionally, x is between -0.1 and 0.3. Optionally, y is between -0.3 and 0.3. Optionally, M contains 10 atomic percent or more of nickel. Multiple nanocrystals have an average crystallite size of 85 nanometers or less, as measured by X-ray diffraction (XRD) of the base particles, or an average crystallite size of 105 nanometers or less, as measured by XRD of coated or grain boundary-enriched particles. In some embodiments, M further comprises one or more elements selected from the group consisting of Al, Mg, Co, Mn, Ca, Sr, Zn, Ti, Zr, Cr, Mo, Fe, V, Si, Ga, and B.
[0007] Another objective is to provide a method for producing electrochemically active polycrystalline particles, the method comprising preparing a first mixture and calcining this first mixture. The first mixture ("green body") optionally comprises lithium hydroxide or its hydrate and a precursor hydroxide containing nickel. The calcination of the first mixture involves a maximum temperature of less than 700°C to form a first material comprising multiple nanocrystals having a size of 85 nanometers or less. The method optionally further comprises coating the particles and subjecting these particles to a second calcination to enrich the grain boundaries between nanocrystals / crystal grains. For coated particles, the average crystallite size is 105 nm or less.
[0008] The obtained particles and the method described above achieve the aforementioned objective by providing a material for producing electrochemical cells that have superior capacity and improved cycle life compared to particles with relatively large crystals.
[0009] Brief explanation of the drawing The embodiments shown in the drawings are illustrative and not intended to limit the subject matter of the claims. A detailed description of the following illustrative embodiments can be understood in conjunction with the following drawings, in which the same structures are shown by the same reference numerals.
[0010] Detailed explanation The following descriptions of specific embodiments are illustrative only and are not intended to limit the scope of disclosure, application, or use, and are, of course, subject to change. Materials and methods are described with respect to the non-limiting definitions and terms contained herein. These definitions and terms are not intended to limit the scope or practice of this disclosure and are provided for illustrative and explanatory purposes only. Methods or compositions are described using the sequence of individual steps or specific materials, but since steps or materials are substitutable, it will be understood that the descriptions of the invention may include numerous parts or steps prepared in many ways that are readily apparent to those skilled in the art.
[0011] Herein, the present invention will be described more fully with reference to the accompanying drawings illustrating various embodiments. However, the present invention may be carried out in many different forms and should not be construed as being limited to the embodiments described herein. These embodiments are provided so as to give a complete and comprehensive view of the present disclosure and to those skilled in the art. The same reference numerals refer to the same elements throughout.
[0012] When an element is described as "on top of" another element, it will be understood that the element can either exist directly on top of the other element or there may be an intervening element between them. On the other hand, when an element is described as existing "directly on top of" another element, there is no intervening element.
[0013] The terms "first," "second," "third," etc. are used herein to describe various elements, components, regions, layers, and / or sections, but it will be understood that these elements, components, regions, layers, and / or sections should not be limited by these terms. These terms are only used to distinguish one element, component, region, layer, or section from another element, component, region, layer, or section. Thus, unless otherwise specified, the "first element," "component," "region," "layer," or "section" described below can be referred to as a second (or other) element, component, region, layer, or section without departing from the teachings herein.
[0014] The terms used herein are for the purpose of describing particular aspects only and are not limiting. As used herein, the singular forms "a," "an," and "the" are intended to include the plural forms as well, unless the context clearly dictates otherwise. "Or" means "and / or." As used herein, the term "and / or" includes any and all combinations of one or more of the associated listed items. The terms "comprises," "comprising," "includes," and "including," when used herein, specify the presence of the stated feature, region, integer, step, operation, element, and / or component, but do not preclude the presence or addition of one or more other features, regions, integers, steps, operations, elements, components, and / or groups thereof. The phrase "or combinations thereof" means a combination including at least one of the foregoing elements.
[0015] Unless otherwise specified, all terms (including technical and scientific terms) used in this specification have the same meaning as commonly understood by one of ordinary skill in the art to which this disclosure pertains. Terms defined in commonly used dictionaries are to be interpreted as having a meaning that coincides with their meaning in the context of the relevant art and this disclosure, and are not to be interpreted in an idealized or overly formal sense unless clearly defined herein.
[0016] The Ni-based layered material of the LiMO2 type is a dense polycrystalline aggregate of primary crystals. These materials are generally manufactured using standard solid-state methods at temperatures in the range of 700 °C to 900 °C starting from various precursor materials. The precursor materials are generally inorganic precursors for transition metal hydroxides (M(OH)2), lithium precursors (such as LiOH or Li2CO3), or other dopants (such as hydroxides, carbonates, nitrates). During the heating of the precursor mixture, polycrystalline LiMO2 is formed along with the release of gases such as H2O, CO2 or NO2. At the same time, the primary crystals in the polycrystalline material "sinter" to form larger primary crystals. The crystal growth rate during high-temperature synthesis increases significantly with the increase in temperature. This effect is fundamentally thermodynamically explicable and expected, however, the inventors have found that it has an adverse effect on the cycle performance.
[0017] During their research, the inventors found that larger primary crystals tend to increase the rate of impedance increase at the cathode during repeated charge / discharge cycles of Li-ion batteries. This is undesirable for normal battery operation because the power supply capacity of Li-ion batteries decreases with increasing cathode impedance. Several explanations exist for the higher impedance increase rate due to larger crystals. For example, it is known that repeated charge / discharge cycles damage the surface of the primary crystal, leading to an increase in the resistance to lithium transport from the grain boundaries to the crystal (i.e., an increase in impedance). For a given battery operating current, the lithium flux, or current per unit surface area of the crystal (i.e., surface current density), is higher for larger crystals than for smaller crystals. Even if the resistance increase per unit surface area of the crystal is the same for both smaller and larger crystals, a higher surface current density in larger crystals results in a more significant voltage drop, which manifests as an increase in impedance.
[0018] However, synthesizing active materials that exhibit a combination of high initial discharge capacity and low impedance increase during cycling is difficult. This is especially true when the nickel component of M reaches more than 90%. At such levels of nickel, the crystal growth rate at the synthesis temperature required to obtain a high degree of crystalline order is extremely high. Primary crystals with sizes well over 100 nm, often several hundred nanometers (nm) or larger, are common (measured by X-ray diffraction) under already known synthesis conditions.
[0019] Accordingly, this disclosure addresses the aforementioned problem by providing a cathode active material for Li-ion batteries having nanocrystals to reduce the rate of impedance increase during battery charge / discharge cycles. Various methods are provided for achieving a cathode active material with high discharge capacity in nickel-containing formulations, having an average crystallite size of 85 nm or less for the base particle material and 105 nm or less for the grain boundary enrichment material (both measured by XRD).
[0020] The polycrystalline layered lithiated metal oxides having a nanocrystalline structure described herein exhibit improved electrochemical performance and stability. These nanocrystalline compositions prevent performance degradation of electrochemically cycled Ni-containing polycrystalline LiMO2-based materials while maintaining other desired end-use article properties, such as the electrochemical capacitance of rechargeable lithium-ion cathodes produced from such nanocrystalline layered metal oxides, by reducing the rate of impedance increase during electrochemical cycling. Such nanocrystalline compositions can be readily produced by calcining a green compound containing LiOH and a precursor hydroxide or carbonate at a maximum temperature below 700°C.
[0021] Therefore, as a means of achieving high initial discharge capacity and low impedance increase during cycling, compositions, systems, and methods for producing polycrystalline layered lithiated metal oxides having a nanocrystalline structure, as well as their use in lithium-ion secondary cells, are provided, thereby solving the aforementioned problem of achieving nanocrystals having an average size of 105 nm or less in high nickel formulations, while also having a high discharge capacity (e.g., >205 mAh / g at C / 20).
[0022] Throughout this disclosure, the crystallite sizes of nanocrystals in polycrystalline materials are referred to. These sizes are determined by XRD, optionally using an automated Shimadzu XRD-6000 diffractometer equipped with a Cu X-ray tube, by collecting powder X-ray diffraction patterns collected by continuous scanning at 0.75 degrees / min with 2θ = 12 degrees to 120 degrees. As used herein, the term “nanocrystal” refers to crystallite sizes of 85 nm or less for the base material and 105 nm or less for grain boundary-enriched materials with relatively low Co-enrichment. During the coating process for enriching grain boundaries with cobalt, it has been found that the crystallite size can increase slightly due to high-temperature exposure during firing. In such circumstances, the crystallite size measured by XRD increases, resulting in materials with measured crystallite sizes of 105 nm or less.
[0023] Figure 1 shows a schematic diagram (not to exact scale) of an exemplary polycrystalline layered lithiated metal oxide having a nanocrystalline structure. This material comprises particles containing multiple nanocrystals 10, each having a first composition. Particles having multiple nanocrystals can be called secondary particles. The particles provided herein are uniquely tuned to have nanocrystals much smaller than those considered appropriate in the prior art. For example, the particles provided herein contain multiple nanocrystals having an average crystallite size of 85 nanometers (nm) or less for the base material. The reduced crystallite size provided to reduce impedance increase during cycling improves the performance and cycle life of cells incorporating these particles as cathode components. Figure 1 further illustrates a specific embodiment in which the particles may further contain grain boundaries 20 formed from or having a second composition, where, for example, the cobalt concentration at the grain boundaries is greater than, for example, the cobalt concentration in the nanocrystals. The grain boundary-enriched particles provided herein contain multiple nanocrystals having an average crystallite size of 105 nanometers (nm). Optionally, as shown in Figure 1, layer 30 can be placed on the outer surface of the secondary particles to provide coated secondary particles.
[0024] In some embodiments of the particles provided herein, the first composition is Li 1+x MO 2+yThe material comprises a polycrystalline layered structure of lithiated metal oxide as defined by, and optionally, a cell or battery formed therefrom, wherein -0.1 ≤ x ≤ 0.3 and -0.3 ≤ y ≤ 0.3. In some embodiments, x is -0.1, optionally 0, optionally 0.1, optionally 0.2, or optionally 0.3. Arbitrarily, x is -0.10 or greater, -0.09, -0.08, -0.07, -0.06, -0.05, -0.04, -0.03, -0.02, -0.01, 0.00, 0.01, 0.02, 0.03, 0.04, 0.05, 0.06, 0.07, 0.08, 0.09, 0.10, 0.11, 0.12, 0.13, 0.14, 0.15, 0.16, 0.17, 0.18, 0.19, 0.20, 0.21, 0.22, 0.23, 0.24, 0.25, 0.26, 0.27, 0.28, 0.29, or 0.30. In some embodiments, y is -0.3, arbitrarily -0.2, arbitrarily -0.1, arbitrarily 0, arbitrarily 0.1, arbitrarily 0.2, or arbitrarily 0.3. Arbitrarily, y is -0.30 or greater, -0.29, -0.28, -0.27, -0.26, -0.25, -0.24, -0.23, -0.22, -0.21, -0.20, -0.19, -0.18, -0.17, -0.16, -0.15, -0.14, -0.13, -0.12, -0.11, -0.10, -0.09, -0.08, -0.07, -0.06, -0.05, -0.04, -0. The values are 03, -0.02, -0.01, 0.00, 0.01, 0.02, 0.03, 0.04, 0.05, 0.06, 0.07, 0.08, 0.09, 0.10, 0.11, 0.12, 0.13, 0.14, 0.15, 0.16, 0.17, 0.18, 0.19, 0.20, 0.21, 0.22, 0.23, 0.24, 0.25, 0.26, 0.27, 0.28, 0.29, or 0.3.
[0025] In some embodiments, it is understood that Li does not have to be Li alone, but may be partially substituted with one or more elements selected from the group consisting of Mg, Na, K, and Ca. The one or more elements substituting Li are optionally present in amounts of 10 atomic percent or less, optionally 5 atomic percent or less, optionally 3 atomic percent or less, and optionally 2 atomic percent or less.
[0026] The M provided in the first composition contains Ni. The amount of Ni is optionally between 10 atomic percent and 99 atomic percent (at%) of M. Optionally, the Ni component of M is 75 at% or more. Optionally, the Ni component of M is 80 at% or more. Optionally, the Ni component of M is 85 at% or more. Optionally, the Ni component of M is 90 at% or more. Optionally, the Ni component of M is 95 at% or more. The Ni component of M is, arbitrarily, 75 at% or more, 76 at%, 77 at%, 78 at%, 79 at%, 80 at%, 81 at%, 82 at%, 83 at%, 84 at%, 85 at%, 86 at%, 87 at%, 88 at%, 89 at%, 90 at%, 91 at%, 92 at%, 93 at%, 94 at%, 95 at%, 96 at%, 98 at%, or 99 at%.
[0027] In some embodiments, M is Ni and one or more further elements. The further elements are optionally metals. Optionally, the further elements may include Al, Mg, Co, Mn, Ca, Sr, Zn, Ti, Zr, Y, Cr, Mo, Fe, V, Si, Ga, or B, or one or more of these. In certain embodiments, the further elements may include Mg, Co, Al, or a combination thereof. Optionally, the further elements may be Mg, Al, V, Ti, B, Zr, or Mn, or a combination thereof. Optionally, the further elements consist of Mg, Al, V, Ti, B, Zr, or Mn. Optionally, the further elements consist of Mg, Co, and Al. Optionally, the further elements consist of Mg, Co, Al, and Zr. Optionally, the further elements consist of Ca, Co, and Al. In some embodiments, the further elements are Mn or Mg, or both Mn and Mg.
[0028] Further elements of the first composition may be present in amounts of approximately 1 at% to 90 at%, specifically approximately 5 at% to 80 at%, and more specifically approximately 10 at% to 70 at% of the first composition. Optionally, further elements may be present in amounts of approximately 1 at% to 20 at%, specifically approximately 2 at% to 18 at%, and more specifically approximately 4 at% to 16 at% of the first composition. In some exemplary examples, M is present in amounts of approximately 75 at% to 99 at% Ni, 3 at% to 15 at% Co, 0 at% to 15 at% Mn, and 0 at% to 10 at% of further elements.
[0029] In polycrystalline materials, each nanocrystal may have any preferred shape, and this shape may be the same or different within each particle. Furthermore, the shape of each nanocrystal may be the same or different in different particles. Due to its crystallinity, the nanocrystal may be faceted, may have multiple planes, and the shape of the nanocrystal may approximate a geometric shape. In some embodiments, nanocrystals may be fused with adjacent nanocrystals whose crystal planes do not coincide. The nanocrystal may have a linear shape, and when viewed in cross-section, part or all of the nanocrystal may be linear. The nanocrystal may be square, hexagonal, rectangular, triangular, or a combination thereof.
[0030] In some embodiments of the base material in which grain boundaries are not enriched, the average crystallite size of the nanocrystals is approximately 85 nm or less. Optionally, the average crystallite size of the nanocrystals is approximately 80 nm or less. Optionally, the average crystallite size of the nanocrystals is approximately 75 nm or less. Optionally, the average crystallite size of the nanocrystals is approximately 70 nm or less. Optionally, the average crystallite size of the nanocrystals is approximately 65 nm or less. Optionally, the average crystallite size of the nanocrystals is approximately 60 nm or less. Optionally, the average crystallite size of the nanocrystals is approximately 55 nm or less. Optionally, the average crystallite size of the nanocrystals is approximately 50 nm or less.
[0031] In some embodiments relating to a base material where grain boundaries are not enriched, the average crystallite size of the nanocrystals is between 50 nm and approximately 85 nm. Optionally, the average crystallite size of the nanocrystals is between approximately 50 nm and approximately 80 nm. Optionally, the average crystallite size of the nanocrystals is between approximately 50 nm and approximately 70 nm. Optionally, the average crystallite size of the nanocrystals is between approximately 55 nm and approximately 70 nm.
[0032] In another embodiment relating to a base material where grain boundaries are not enriched, the average crystallite size of the nanocrystals is approximately 85 nm or less, approximately 84 nm, approximately 83 nm, approximately 82 nm, approximately 81 nm, approximately 80 nm, approximately 79 nm, approximately 78 nm, approximately 77 nm, approximately 76 nm, approximately 75 nm, approximately 74 nm, approximately 73 nm, approximately 72 nm, approximately 71 nm, approximately 70 nm, approximately 69 nm, approximately 68 nm, approximately 67 nm, approximately 66 nm, approximately 65 nm, approximately 64 nm, approximately 63 nm, approximately 62 nm, approximately 61 nm, approximately 60 nm, approximately 59 nm, approximately 58 nm, approximately 57 nm, approximately 56 nm, approximately 55 nm, approximately 54 nm, approximately 53 nm, approximately 52 nm, approximately 51 nm, or approximately 50 nm.
[0033] When XRD measurements were performed on coated materials containing secondary particles with metal-enriched grain boundaries, such as Co-enriched grain boundaries, the average crystallite size of the nanocrystals was approximately 105 nm or less. Arbitrarily, the average crystallite size of the nanocrystals was approximately 100 nm or less. Arbitrarily, the average crystallite size of the nanocrystals was approximately 95 nm or less. Arbitrarily, the average crystallite size of the nanocrystals was approximately 90 nm or less. Arbitrarily, the average crystallite size of the nanocrystals was approximately 85 nm or less. Arbitrarily, the average crystallite size of the nanocrystals was approximately 80 nm or less. Arbitrarily, the average crystallite size of the nanocrystals was approximately 75 nm or less. Arbitrarily, the average crystallite size of the nanocrystals was approximately 70 nm or less.
[0034] In some embodiments of grain boundary enriched materials, the average crystallite size of the nanocrystals is between 70 nm and approximately 105 nm. Alternatively, the average crystallite size of the nanocrystals is between approximately 70 nm and approximately 100 nm. Alternatively, the average crystallite size of the nanocrystals is between approximately 70 nm and approximately 90 nm. Alternatively, the average crystallite size of the nanocrystals is between approximately 75 nm and approximately 90 nm.
[0035] In another embodiment relating to grain boundary-enriched materials, the average crystallite size of the nanocrystals is approximately 105 nm or less, approximately 104 nm, approximately 103 nm, approximately 102 nm, approximately 101 nm, approximately 100 nm, approximately 99 nm, approximately 98 nm, approximately 97 nm, approximately 96 nm, approximately 95 nm, approximately 94 nm, approximately 93 nm, approximately 92 nm, approximately 91 nm, approximately 90 nm, approximately 89 nm, approximately 88 nm, approximately 87 nm, approximately 86 nm, approximately 85 nm, approximately 84 nm, approximately 83 nm, approximately 82 nm, approximately 81 nm, approximately 80 nm, approximately 79 nm, approximately 78 nm, approximately 77 nm, approximately 76 nm, approximately 75 nm, approximately 74 nm, approximately 73 nm, approximately 72 nm, approximately 71 nm, or approximately 70 nm.
[0036] In contrast to base particles, grain boundary-enriched particles contain Co-enriched regions at grain boundaries compared to nanocrystals. The presence of Co-enriched regions artificially suppresses the measurement of nanocrystallite size when measured using XRD, and the increase in XRD measurement is suppressed as the level of Co-enrichment at grain boundaries increases. For example, the crystallite size of a material in which 6 at% Co (relative to the metal content of the base material) is added to the coating to create a grain boundary-enriched material (6 at% Co-enrichment) is smaller than that of a material with 4 at% Co-enrichment. Therefore, for coated particles, the measured nanocrystal size is arbitrarily at a specific Co-enrichment level. In some embodiments, the nanocrystal size at 4 at% Co-enrichment is 105 nm or less or other levels as described in the paragraph above. Optionally, at 6 at% Co-enrichment at grain boundaries, the nanocrystal size is 80 nm or less or other values less than 80 nm as described elsewhere herein.
[0037] In some embodiments, the grain boundaries are enriched with up to 4 at% Co, and the average crystallite size of the nanocrystals is approximately 105 nm or less, approximately 104 nm, approximately 103 nm, approximately 102 nm, approximately 101 nm, approximately 100 nm, approximately 99 nm, approximately 98 nm, approximately 97 nm, approximately 96 nm, approximately 95 nm, approximately 94 nm, approximately 93 nm, approximately 92 nm, approximately 91 nm, approximately 90 nm, approximately 89 nm, approximately 88 nm, approximately 87 nm, approximately 86 nm, approximately 85 nm, approximately 84 nm, approximately 83 nm, approximately 82 nm, approximately 81 nm, approximately 80 nm, approximately 79 nm, approximately 78 nm, approximately 77 nm, approximately 76 nm, approximately 75 nm, approximately 74 nm, approximately 73 nm, approximately 72 nm, approximately 71 nm, or approximately 70 nm.
[0038] In some embodiments, the grain boundaries are enriched with approximately 6 at% cobalt, and the average crystallite size of the nanocrystals is approximately 82 nm or less, approximately 81 nm, approximately 80 nm, approximately 79 nm, approximately 78 nm, approximately 77 nm, approximately 76 nm, approximately 75 nm, approximately 74 nm, approximately 73 nm, approximately 72 nm, approximately 71 nm, approximately 70 nm, approximately 69 nm, approximately 68 nm, approximately 67 nm, approximately 66 nm, approximately 65 nm, approximately 64 nm, approximately 63 nm, approximately 62 nm, approximately 61 nm, approximately 60 nm, approximately 59 nm, approximately 58 nm, approximately 57 nm, approximately 56 nm, approximately 55 nm, approximately 54 nm, approximately 53 nm, approximately 52 nm, approximately 51 nm, or approximately 50 nm.
[0039] In some embodiments, the grain boundaries are enriched with 1 at% Co, 2 at% Co, 3 at% Co, 4 at% Co, 5 at% Co, 6 at% Co, 7 at% Co, 8 at% Co, 9 at% Co, and 10 at% Co.
[0040] One further advantage of the particles provided herein in several embodiments is the increased atomic lattice arrangement of nanocrystals in the material. The combination of nanocrystals and improved structural arrangement can result in further improvements in the cycle lifetime and reduced impedance increase during cycling of cells into which such particles are incorporated as cathode components. The arrangement of nanocrystals involves Ni occupying the Li sites in the LiNiO2R-3m layered crystal structure. 2+ This can be obtained by measuring the relative amount of ions and the relative z position of the oxygen atom.2+ can occupy the Li site, can scatter X-rays, and has a relatively large electron density, Li + It is noted that it is intended to represent any element considered heavier than (e.g., Ca, Mg, Ni, Co, Al, etc.). Using these parameters, the Ni 2+ value is considered to have a size suitable for bringing about improved electrochemical performance of the material, along with the crystallite size. By preparing the grain boundary enrichment particles provided herein, it has been found that an average crystallite size of 105 nm or less can be formed while still maintaining the relative amount of Ni 2+ in the Li site of the crystal structure at 3.5 at% or less Ni. In some embodiments of particles with or without enriched grain boundaries, the relative Ni 2+ in the Li site of the crystal structure is 3.4 at% or less Ni, optionally 3.3 at% Ni, optionally 3.2 at% Ni, optionally 3.1 at% Ni, optionally 3.0 at% Ni, optionally 2.9 at% Ni, optionally 2.8 at% Ni, optionally 2.7 at% Ni, optionally 2.6 at% Ni, optionally 2.5 at% Ni, optionally 2.4 at% Ni, optionally 2.3 at% Ni, optionally 2.2 at% Ni, optionally 2.1 at% Ni, optionally 2.0 at% Ni, optionally 1.9 at% Ni, optionally 1.8 at% Ni, optionally 1.7 at% Ni, optionally 1.6 at% Ni, optionally 1.5 at% Ni, optionally 1.4 at% Ni. In some embodiments, after the primary firing provided herein, the relative amount of Ni 2+ in the Li site of the crystal structure is 1.6 at% or less Ni, optionally 1.4 at% Ni to 1.6 at% Ni, or any value or range therebetween.
[0041] In certain embodiments, the particles have enriched grain boundaries, optionally Co-enriched grain boundaries where the atomic percentage of Co at the grain boundary is higher than the atomic percentage of Co in the nanocrystal. Referring again to the illustrative figure 1, grain boundaries 41, 42 are located between adjacent nanocrystals / grains 40, on the surface of the nanocrystals / grains 40, and have a second composition. The second composition may be those described in U.S. Patent No. 9,391,317 and U.S. Patent No. 9,209,455, and can be formed substantially as described therein. The second composition may optionally have a layered α-NaFeO2 type structure, a cubic structure, or a combination thereof. As mentioned above, the concentration of cobalt at the grain boundaries may be greater than the concentration of cobalt in the nanocrystal. Embodiments in which the grain boundaries have a layered α-NaFeO2 type structure are specifically mentioned.
[0042] The second composition of the grain boundary is, optionally, composition Li 1+x MO 2+yThis includes metal lithiated oxides defined by the formulas -0.9 ≤ x ≤ 0.3 and -0.3 ≤ y ≤ 0.3. In some embodiments, x is -0.1, arbitrarily 0, arbitrarily 0.1, arbitrarily 0.2, or arbitrarily 0.3. Arbitrarily, x is -0.10 or greater, -0.09, -0.08, -0.07, -0.06, -0.05, -0.04, -0.03, -0.02, -0.01, 0.00, 0.01, 0.02, 0.03, 0.04, 0.05, 0.06, 0.07, 0.08, 0.09, 0.10, 0.11, 0.12, 0.13, 0.14, 0.15, 0.16, 0.17, 0.18, 0.19, 0.20, 0.21, 0.22, 0.23, 0.24, 0.25, 0.26, 0.27, 0.28, 0.29, or 0.30. In some embodiments, y is -0.3, arbitrarily -0.2, arbitrarily -0.1, arbitrarily 0, arbitrarily 0.1, arbitrarily 0.2, or arbitrarily 0.3. Arbitrarily, y is -0.30 or greater, -0.29, -0.28, -0.27, -0.26, -0.25, -0.24, -0.23, -0.22, -0.21, -0.20, -0.19, -0.18, -0.17, -0.16, -0.15, -0.14, -0.13, -0.12, -0.11, -0.10, -0.09, -0.08, -0.07, -0.06, -0.05, -0.04, -0. The values are 03, -0.02, -0.01, 0.00, 0.01, 0.02, 0.03, 0.04, 0.05, 0.06, 0.07, 0.08, 0.09, 0.10, 0.11, 0.12, 0.13, 0.14, 0.15, 0.16, 0.17, 0.18, 0.19, 0.20, 0.21, 0.22, 0.23, 0.24, 0.25, 0.26, 0.27, 0.28, 0.29, or 0.3.
[0043] In the second composition, M contains Ni. The amount of Ni is optionally between 10 atomic percent and 99 atomic percent (at%) of M. Optionally, the Ni component of M is 75 at% or more. Optionally, the Ni component of M is 80 at% or more. Optionally, the Ni component of M is 85 at% or more. Optionally, the Ni component of M is 90 at% or more. Optionally, the Ni component of M is 95 at% or more. The Ni component of M is, arbitrarily, 75 at% or more, 76 at%, 77 at%, 78 at%, 79 at%, 80 at%, 81 at%, 82 at%, 83 at%, 84 at%, 85 at%, 86 at%, 87 at%, 88 at%, 89 at%, 90 at%, 91 at%, 92 at%, 93 at%, 94 at%, 95 at%, 96 at%, 98 at%, or 99 at%.
[0044] In some embodiments, M in the second composition is one or more Ni-substituted elements. The Ni-substituted elements are optionally metals. Optionally, the substitution elements may include Al, Mg, Co, Mn, Ca, Sr, Zn, Ti, Zr, Y, Cr, Mo, Fe, V, Si, Ga, or B, or one or more of these. In certain embodiments, the substitution elements may include Mg, Co, Al, or combinations thereof.
[0045] The substitutional elements of the second composition may be present in amounts of approximately 1 at% to 90 at% of the first composition, specifically approximately 5 at% to 80 at% and more specifically approximately 10 at% to 70 at%. Optionally, further elements may be present in amounts of approximately 1 at% to 20 at% of the first composition, specifically approximately 2 at% to 18 at% and more specifically approximately 4 at% to 16 at%.
[0046] The shape of the grain boundary is determined by the shape of a crystal grain that can represent one or more fused nanocrystals adjacent to the grain boundary. The shape of the grain boundary may approximate a geometric shape. The grain boundary may have a linear shape, and when viewed in cross-section, the grain boundary may be linear. The grain boundary may be a square, hexagon, rectangle, triangle, or a combination thereof.
[0047] The orientation of the grain boundary surface corresponds to the orientation of the adjacent nanocrystal surface. Furthermore, as shown in Figure 1, the grain boundary surface and the nanocrystal surface may have any various orientations with respect to the outer surface of the particle. Therefore, the orientation of the nanocrystal surface and the grain boundary surface may be parallel and different from the orientation of the surface closest to the outside of the secondary particle. In some embodiments, the tangential direction of the surface closest to the outside of the particle is different from the orientation of the grain boundary surface and the orientation of the adjacent particle surface.
[0048] As shown in Figure 1, grain boundaries may intersect and form an angle between them. In some embodiments, a first grain boundary 41 and a second grain boundary 42 are located on adjacent planes of nanocrystals / crystal grains 40. The first grain boundary 41 and the second grain boundary 42 intersect at an angle E. Angle E can be determined by the shape of the nanocrystal on which the first grain boundary 41 and the second grain boundary 42 are located. Generally, the shape of the nanocrystal is influenced by the crystal structure of the nanocrystal. Although we do not wish to be bound by theory, it is understood that the angle between the first grain boundary 41 and the second grain boundary 42 is influenced by the crystal structure of the first composition, since the crystal structure of the first composition determines the shape of the nanocrystal. The first grain boundary 41 and the second grain boundary 42 may intersect at any angle, specifically between approximately 10 degrees and 170 degrees, specifically between approximately 20 degrees and 160 degrees, and more specifically between approximately 30 degrees and 150 degrees, as long as the angle matches the crystal structure of the first composition which optionally has a layered α-NaFeO2 type structure.
[0049] The particles can be prepared by synthesizing a green body from at least two components in powder form, which may include a precursor hydroxide containing pulverized (or non-pulverized) lithium hydroxide or its hydrate, nickel, and one or more other elements. It is understood that the final overall elemental composition (not necessarily in a distributed state) in the final particles can be adjusted by increasing or decreasing the relative amounts of the precursor material in the formation of the green body. In some embodiments, the lithium hydroxide or its hydrate is pulverized. Two or more powders forming the green body are combined and shaken in a paint shaker to ensure complete mixing of the precursors. The green body is then calcined to a maximum temperature in a controlled air atmosphere, resulting in minimal water and CO2. The calcination is optionally carried out according to a heating curve to provide the desired average crystallite size. The calcined product can then be processed to form a fluid powder.
[0050] In some embodiments, the precursor hydroxide may be a mixed metal hydroxide. In some embodiments, this mixed metal hydroxide has a metal composition of Ni, Co, and Mg. Optionally, the mixed metal hydroxide contains 80 at% to 100 at% Ni, 0 at% to 15 at% Co, and 0 at% to 5 at% Mg as metal components. Optionally, the metals of the mixed metal hydroxide are 92 at% Ni and 8 at% Co. Optionally, the metals of the mixed metal hydroxide are 90 at% Ni, 8 at% Co, and 2 at% Mg. Optionally, the metals of the mixed metal hydroxide are 89 at% Ni, 8 at% Co, and 3 at% Mg. Optionally, the metals of the mixed metal hydroxide are 91 at% Ni, 8 at% Co, and 1 at% Mg. Optionally, the metal of the mixed metal hydroxide is 100 at% Ni. For example, the precursor hydroxide may be manufactured by a precursor supplier such as Hunan Brunp Recycling Technology Co. Ltd. using standard methods for preparing nickel hydroxide-based materials.
[0051] It has been found that by lowering the maximum temperature of the first firing, particulate materials having relatively small crystals (i.e., nanocrystals) can be produced. Therefore, the maximum temperature in the first firing may be less than 700°C. Optionally, the maximum temperature may be about 680°C or less. Optionally, the maximum temperature may be about 660°C or less. Optionally, the maximum temperature may be about 640°C or less. In yet another embodiment, the maximum temperature may be less than about 700°C, about 695°C, about 690°C, about 685°C, about 680°C, about 675°C, about 670°C, about 665°C, about 660°C, about 655°C, about 650°C, about 645°C, or about 640°C. The residence time at the maximum temperature is optionally less than 10 hours. The residence time at the maximum temperature is arbitrarily 8 hours or less; arbitrarily 7 hours or less; arbitrarily 6 hours or less; arbitrarily 5 hours or less; arbitrarily 4 hours or less; arbitrarily 3 hours or less; arbitrarily 2 hours or less.
[0052] In some embodiments, it was found that lowering the temperature below the minimum temperature reduced the observed electrochemical improvement. Therefore, in the case of the first firing, the maximum temperature in some embodiments is at least about 640°C, optionally about 645°C, and optionally about 650°C. In some embodiments, it is necessary to reach the maximum temperature, and such maximum temperatures are optionally about 640°C to about 695°C, optionally about 645°C to about 695°C, optionally about 650°C to about 695°C, optionally about 655°C to about 695°C, optionally about 645°C to about 680°C, optionally about 650°C to about 680°C, and optionally about 660°C to about 680°C.
[0053] In some embodiments, the heating curve of the first firing process follows two tilt / stand processes, followed by natural cooling to approximately 130°C, after which the fired material is processed. In an exemplary embodiment, the first tilt / stand may be performed at a rate of 5°C per minute from ambient temperature (e.g., approximately 25°C) to 450°C, with the temperature held at 450°C for 2 hours. Subsequently, the second tilt / stand may be performed at a rate of 2°C per minute from 450°C to the maximum temperature, with the temperature held at the maximum temperature for 6 hours.
[0054] After firing, subsequent processing may include crushing the fired material in a mortar and pestle so that the resulting powder passes through a desired sieve, optionally a #35 sieve. The powder is optionally ball-milled in a 1-gallon jar using a 2 cm drum YSZ medium for optionally 5 minutes, or for an appropriate time so that the material can optionally pass through a #270 sieve.
[0055] In some embodiments, the pulverized product may optionally be coated in such a manner that concentrated grain boundaries are obtained after a second calcination. Coating methods for concentrating grain boundaries within primary particles can be carried out using methods or compositions exemplified in U.S. Patent No. 9,391,317 and U.S. Patent No. 9,209,455. Coating may optionally be applied by suspending the pulverized product in an aqueous slurry containing a concentrating element, optionally cobalt, and lithium nitrate, at an optionally 60°C temperature. In this case, the slurry can be spray-dried to form a fluid powder, which is then subjected to a second calcination using a heating curve that optionally follows two gradient / stay processes. The first two gradient / stay temperature profiles may be carried out at a rate of 5°C per minute from ambient temperature (approximately 25°C) to 450°C, with a holding time at 450°C for 1 hour. Subsequently, a second incline / station may be performed at a rate of 2°C per minute from 450°C to the maximum temperature, and this maximum temperature may be maintained for 2 hours. In some embodiments, the maximum temperature is approximately 700°C. In other embodiments, the maximum temperature is approximately 725°C.
[0056] By combining the first firing using the aforementioned maximum temperature with the coating by the second firing as described above, it is possible to maintain an average crystallite size of 105 nm (XRD measurement) or less while simultaneously achieving a Ni content of 3.5 at% or less. 2+ It was found that the same continuous orientation of materials containing can be maintained. Such combinations were found to result in a reduction in impedance increase, which significantly improves the electrochemical performance of the material, in addition to cycle life. Therefore, in some embodiments, the particles are composed of Li 1+x MO 2+yIt is understood that the first composition comprises multiple nanocrystals containing polycrystalline layered lithiated metal oxides defined by the formula (wherein -0.1 ≤ x ≤ 0.3 and -0.3 ≤ y ≤ 0.3). In some embodiments, x is -0.1, arbitrarily 0, arbitrarily 0.1, arbitrarily 0.2, or arbitrarily 0.3. Arbitrarily, x is -0.10 or greater, -0.09, -0.08, -0.07, -0.06, -0.05, -0.04, -0.03, -0.02, -0.01, 0.00, 0.01, 0.02, 0.03, 0.04, 0.05, 0.06, 0.07, 0.08, 0.09, 0.10, 0.11, 0.12, 0.13, 0.14, 0.15, 0.16, 0.17, 0.18, 0.19, 0.20, 0.21, 0.22, 0.23, 0.24, 0.25, 0.26, 0.27, 0.28, 0.29, or 0.30. In some embodiments, y is -0.3, arbitrarily -0.2, arbitrarily -0.1, arbitrarily 0, arbitrarily 0.1, arbitrarily 0.2, or arbitrarily 0.3. Arbitrarily, y is -0.30 or greater, -0.29, -0.28, -0.27, -0.26, -0.25, -0.24, -0.23, -0.22, -0.21, -0.20, -0.19, -0.18, -0.17, -0.16, -0.15, -0.14, -0.13, -0.12, -0.11, -0.10, -0.09, -0.08, -0.07, -0.06, -0.05, -0.04, -0. The values are 0.3, -0.02, -0.01, 0.00, 0.01, 0.02, 0.03, 0.04, 0.05, 0.06, 0.07, 0.08, 0.09, 0.10, 0.11, 0.12, 0.13, 0.14, 0.15, 0.16, 0.17, 0.18, 0.19, 0.20, 0.21, 0.22, 0.23, 0.24, 0.25, 0.26, 0.27, 0.28, 0.29, or 0.3. The nanocrystals have an amount of Ni in the M element ranging from 10 atomic percent to 99 atomic percent (at%) of the particle. Optionally, the Ni component of M is 75 at% or more. Optionally, the Ni component of M is 80 at% or more. Optionally, the Ni component of M is 85 at% or higher. Optionally, the Ni component of M is 90 at% or higher. Optionally, the Ni component of M is 95 at% or higher.Optionally, the Ni component of M is 75 at% or more, 76 at%, 77 at%, 78 at%, 79 at%, 80 at%, 81 at%, 82 at%, 83 at%, 84 at%, 85 at%, 86 at%, 87 at%, 88 at%, 89 at%, 90 at%, 91 at%, 92 at%, 93 at%, 94 at%, 95 at%, 96 at%, 98 at%, or 99 at%. Component M may contain one or more further elements. The further elements are optionally metals. Optionally, the further elements may include Al, Mg, Co, Mn, Ca, Sr, Zn, Ti, Zr, Y, Cr, Mo, Fe, V, Si, Ga, or B, or one or more of these. In certain embodiments, the further elements may include Mg, Co, Al, or combinations thereof. Optionally, the additional elements may be Mg, Al, V, Ti, B, Zr, or Mn, or a combination thereof. Optionally, the additional elements consist of Mg, Al, V, Ti, B, Zr, or Mn. In some embodiments, the additional elements are Mn or Mg, or both Mn and Mg. The additional elements in the first composition may be present in amounts of about 1 at% to about 90 at%, specifically about 5 at% to about 80 at%, and more specifically about 10 at% to about 70 at% of the first composition. Optionally, the additional elements may be present in amounts of about 1 at% to about 20 at%, specifically about 2 at% to about 18 at%, and more specifically about 4 at% to about 16 at% of the first composition. In some exemplary examples, M is present in amounts of about 75 at% to 99 at% Ni, 3 at% to 15 at% Co, 0 at% to 15 at% Mn, and 0 at% to 10 at% of the additional elements. Furthermore, the average crystallite size of the nanocrystals (measured by the aforementioned X-ray diffraction method) is approximately 105 nm or less. Arbitrarily, the average crystallite size of the nanocrystals is approximately 100 nm or less. Arbitrarily, the average crystallite size of the nanocrystals is approximately 95 nm or less. Arbitrarily, the average crystallite size of the nanocrystals is approximately 90 nm or less. Arbitrarily, the average crystallite size of the nanocrystals is approximately 85 nm or less. Arbitrarily, the average crystallite size of the nanocrystals is approximately 80 nm or less. Arbitrarily, the average crystallite size of the nanocrystals is approximately 75 nm or less. Arbitrarily, the average crystallite size of the nanocrystals is approximately 70 nm or less.In some embodiments, the average crystallite size of the nanocrystals is between 70 nm and approximately 105 nm. Arbitrarily, the average crystallite size of the nanocrystals is between approximately 70 nm and approximately 100 nm. Arbitrarily, the average crystallite size of the nanocrystals is between approximately 70 nm and approximately 105 nm. Arbitrarily, the average crystallite size of the nanocrystals is between approximately 75 nm and approximately 100 nm. In another embodiment, the average crystallite size of the nanocrystals is approximately 105 nm or less, approximately 104 nm, approximately 103 nm, approximately 102 nm, approximately 101 nm, approximately 100 nm, approximately 99 nm, approximately 98 nm, approximately 97 nm, approximately 96 nm, approximately 95 nm, approximately 94 nm, approximately 93 nm, approximately 92 nm, approximately 91 nm, approximately 90 nm, approximately 89 nm, approximately 88 nm, approximately 87 nm, approximately 86 nm, approximately 85 nm, approximately 84 nm, approximately 83 nm, approximately 82 nm, approximately 81 nm, approximately 80 nm, approximately 79 nm, approximately 78 nm, approximately 77 nm, approximately 76 nm, approximately 75 nm, approximately 74 nm, approximately 73 nm, approximately 72 nm, approximately 71 nm, or approximately 70 nm.
[0057] Optionally, the particles occupy the Li sites in the LiNiO2R-3m layered crystal structure. 2+ The nanocrystal further comprises an atomic lattice arrangement indicated by the relative amount of ions, where Ni 2+ The values are 3.5% or less, arbitrarily less than 3.2 at% Ni, and arbitrarily 2.5% or less. The atomic percentage of Ni in the M element is arbitrarily between 75 at% and 99 at%, and arbitrarily between 80 at% and 95 at%.
[0058] Optionally, an outer layer, such as a passivation layer or protective layer, as shown in Figure 1, 30, may be placed on the outer surface of the particles. This outer layer may completely or partially cover the secondary particles. This layer may be amorphous or crystalline. This layer may contain Zr, Al, Y, Co, Ni, Mg, Mn,The outer layer may contain oxides, phosphates, pyrophosphates, fluorophosphates, carbonates, fluorides, oxyfluorides, or combinations thereof of elements such as Ti, Al, B, Li, or Si, or combinations thereof. In some embodiments, the outer layer contains borates, aluminates, silicates, fluoroaluminates, or combinations thereof. Optionally, the outer layer contains carbonates. Optionally, the outer layer contains ZrO2, Al2O3, TiO2, AlPO4, AlF3, B2O3, SiO2, Li2O, Li2CO3, or combinations thereof. Optionally, the outer layer contains AlPO4 or Li2CO3, or is AlPO4 or Li2CO3. This layer can be applied by any method or technique that does not adversely affect the desired properties of the particles. Typical methods include, for example, spray coating and dipping coating.
[0059] Electrodes are also provided that contain the particles described herein as either the sole electrochemical active material component or the sole electrochemical active material. The particles provided herein are optionally included as the active component of the cathode. Optionally, the cathode contains the particles disclosed above as the active material and further comprises a conductive agent and / or a binder. The conductive agent comprises any conductive agent that provides desirable properties and may be amorphous, crystalline, or a combination thereof. The conductive agent may include carbon black, e.g., acetylene black or lamp black, mesocarbon, graphite, carbon fiber, carbon nanotubes, e.g., single-walled carbon nanotubes or multi-walled carbon nanotubes, or a combination thereof. The binder may be any binder that provides desirable properties, and this binder may include, for example, polyvinylidene fluoride, a copolymer of polyvinylidene fluoride and hexafluoropropylene, poly(vinyl acetate), vinylbutyral-vinyl alcohol-vinyl acetate copolymer, methyl methacrylate-ethyl acrylate copolymer, acrylonitrile, vinyl chloride-vinyl acetate copolymer, polyvinyl alcohol, 1-vinylpyrrolidone-vinyl acetate copolymer, cellulose acetate, polyvinylpyrrolidone, polyacrylate, polymethacrylate, polyolefin, polyurethane, polyvinyl ether, acrylonitrile-butadiene rubber, styrene-butadiene rubber, acrylonitrile-butadiene-styrene, sulfonated styrene / ethylene-butylene / styrene triblock polymer, polyethylene oxide, or a combination thereof.
[0060] A cathode can be prepared by combining the particles, conductive agent, and binder described herein in a suitable ratio, for example, about 80% to about 98% by mass of particles, about 2% to about 20% by mass of conductive agent, and about 2% to about 10% by mass of binder, based on the total mass of the combined particles, conductive agent, and binder. The particles, conductive agent, and binder may be suspended in a suitable solvent, such as N-methylpyrrolidinone, and can be placed on a suitable substrate, such as aluminum foil, and dried in air. It should be noted that the substrate and solvent are shown for illustrative purposes only. Other suitable substrates and solvents may also be used or combined to form a cathode.
[0061] In some embodiments, a cathode comprising a polycrystalline material having an average crystallite size of nanocrystals of approximately 85 nm or less or 105 nm or less, depending on the presence or absence of concentrated grain boundaries, can exhibit an electrochemical discharge capacity of more than 205 mAh / g at a C / 20 rate when the electrode is charged to 4.3 V relative to the L metal and discharged to 3.0 V. In yet another embodiment, the cathode can exhibit an electrochemical discharge capacity of more than 200 mAh / g at a C / 20 rate when the electrode is charged to 4.3 V relative to the L metal and discharged to 3.0 V. In yet another embodiment, the cathode can exhibit an electrochemical discharge capacity of more than 190 mAh / g at a C / 20 rate when the electrode is charged to 4.3 V relative to the L metal and discharged to 3.0 V. In yet another embodiment, the cathode can exhibit an electrochemical discharge capacity of more than 180 mAh / g at a C / 20 rate when the electrode is charged to 4.3 V relative to the L metal and discharged to 3.0 V. In yet another embodiment, the cathode can exhibit an electrochemical discharge capacity of more than 175 mAh / g at a C / 20 rate when the electrode is charged to 4.3V relative to the L metal and discharged to 3.0V. In yet another embodiment, the cathode can exhibit an electrochemical discharge capacity of more than 170 mAh / g at a C / 20 rate when the electrode is charged to 4.3V relative to the L metal and discharged to 3.0V.
[0062] The cathode described above, when cycled in a 2025 coin cell with a lithium foil anode, a polyolefin separator, and an electrolyte of 1 M LiPF6 in 1 / 1 / 1 (volume) EC / DMC / EMC containing 1 mass% VC, optionally exhibits a significant decrease in impedance increase. One measure of impedance increase is demonstrated by charging this cell to 4.2 V (CCCV) at a 1 C rate and discharging it to 2.7 V. The time spent at a constant voltage during this characterization process can be used as a measure of impedance. Impedance measurements plotted against the number of cycles yield a curve with a given slope. The impedance slope is lower when the active particle material has the crystallite size or size described herein compared to particles with larger crystallite sizes (e.g., greater than 85 nm). In some embodiments, the impedance gradient is 0.025 or less, arbitrarily 0.024 or less, arbitrarily 0.023 or less, arbitrarily 0.022 or less, arbitrarily 0.021 or less, arbitrarily 0.020 or less, arbitrarily 0.019 or less, arbitrarily 0.018 or less, arbitrarily 0.017 or less, arbitrarily 0.016 or less, and arbitrarily 0.015 or less.
[0063] A battery including a cathode is also disclosed. This battery may be, for example, a lithium-ion battery, a lithium polymer battery, or a lithium battery. This battery may include a cathode, an anode, and a separator placed between the cathode and the anode. The separator may be a microporous membrane, and may include a porous coating including polypropylene, polyethylene, or a combination thereof, or it may be a woven or nonwoven material, such as a glass fiber mat. The anode may include a coating on a current collector. This coating may include, for example, suitable carbon, such as graphite, coke, hard carbon, or mesocarbon, such as mesocarbon microbeads. The current collector may be, for example, copper foil.
[0064] The battery also includes an electrolyte that can come into contact with the positive electrode (cathode), the negative electrode (anode), and the separator. This electrolyte may include an organic solvent and a lithium salt. This organic solvent may be a linear or cyclic carbonate. Typical organic solvents include ethylene carbonate, propylene carbonate, butylene carbonate, trifluoropropylene carbonate, γ-butyrolactone, sulfolane, 1,2-dimethoxyethane, 1,2-diethoxyethane, tetrahydrofuran, 3-methyl-1,3-dioxolane, methyl acetate, ethyl acetate, methyl propionate, ethyl propionate, dimethyl carbonate, diethyl carbonate, ethylmethyl carbonate, dipropyl carbonate, methylpropyl carbonate, propanesultone, or combinations thereof. In another embodiment, the electrolyte is a polymer electrolyte.
[0065] Representative lithium salts useful as electrolytes include, but are not limited to, LiPF6, LiBF4, LiAsF6, LiClO4, LiCF3SO3, Li(CF3SO2)2N, LiN(SO2C2F5)2, LiSbF6, LiC(CF3SO2)3, LiC4F9SO3, and LiAlCl4. Lithium salts can be dissolved in organic solvents. Combinations containing at least one of the aforementioned lithium salts can be used. The concentration of the lithium salt in the electrolyte may be 0.1 M to 2.0 M.
[0066] The battery may have a suitable configuration or shape, and may be circular or prism-shaped.
[0067] Various aspects of this disclosure are illustrated by the following non-limiting embodiments. These embodiments are for illustrative purposes only and do not limit the implementation of the invention. It will be understood that modifications and changes can be made without departing from the spirit and scope of the invention. [Brief explanation of the drawing]
[0068] [Figure 1] A schematic cross-sectional perspective view of electrochemically active polycrystalline particles according to one or more embodiments described herein. [Figure 2]A graph showing the discharge performance of cathode materials having a large crystallite size (109 nm) and a small crystallite size (78 nm) in a double cell according to one or more embodiments described herein, over 100 to 200 cycles. [Figure 3] A graph showing the impedance values of a dual cell containing a cathode material having large and small crystals corresponding to the discharge performance data shown in Figure 3, according to one or more embodiments described herein. [Figure 4] A graph showing the impedance values over 100 to 200 cycles of a double cell containing a cathode material having a crystallite size range formed by firing at a temperature of 700°C or less according to one or more embodiments described herein.
[0069] Examples The average crystallite size of nanocrystals can be determined using powder X-ray diffraction patterns collected by continuous scanning at 0.75 degrees / min from 2θ = 12 to 120 degrees using an automated Shimadzu XRD-6000 diffractometer equipped with a Cu X-ray tube. Atomic structure analysis and crystallite size analysis can be performed using Rietveld techniques performed with the MDI Jade 7 program or other equivalent programs. The procedure for atomic structure refinement is apparent to those skilled in the art. Using such refinement, the a-lattice and c-lattice parameters of the LiNiO2R-3m layered crystal structure and the Ni occupying the Li sites can be determined. 2+ The relative amounts of ions and the relative z-positions of oxygen atoms can be obtained. A cubic polynomial background curve and a Pseudo-Voigt profile shape function can be used for peak fitting. Peak broadening can be fitted in MDI Jade for both crystallite size and strain, or for crystallite size only. Crystallite size fitting only (without strain) is used to measure the average primary crystallite size of materials synthesized under different reaction conditions. FWHM calibration curves using the instrument can be obtained by profile-fitting diffraction patterns of calibration standards such as NIST SRM 640 Si or SRM 660 LiB6 powder.
[0070] Example 1: Two samples of polycrystalline 2D α-NaFeO2-type layered structure particles with different crystallite sizes. Two electrochemically active polycrystalline 2D α-NaFeO2-type layered structure particles with different crystallite sizes and high nickel content were prepared using a cathode material. The two prepared polycrystalline 2D α-NaFeO2-type layered structure samples had an overall Li (0.98) Mg (0.02) Ni (0.881) Co (0.115) Al (0.004) O (2.0) It had the following properties. One sample was prepared by calcining the green body at 700°C and then performing a second calcination at 680°C. Two materials were prepared from the same green body formulation containing 80.21 g of finely powdered LiOH and 288.2 g of precursor hydroxide. This precursor hydroxide contained an atomically mixed combination of 90.2 at% Ni, 7.8 at% Co, and 2.0 at% Mg.
[0071] Next, two quantities of the green blend were subjected to firing with different heating curves while flowing CO2-free dry air. The "high temperature" used to produce "large crystallites" involved a soaking time of 2 hours, with a gradient of 5°C / min from 25°C to 450°C, followed by a second gradient of 2°C / min to a maximum temperature of 700°C, and a soaking time of 6 hours. The "low temperature" used to produce "small crystallite size" (meaning nanocrystals) involved a soaking time of 2 hours, with a gradient of 5°C / min from 25°C to 450°C, followed by a second gradient of 2°C / min to a maximum temperature of 680°C, and a soaking time of 6 hours.
[0072] Next, each material was allowed to cool naturally to 100°C. First, the calcined materials were ground in a mortar and pestle, and then pulverized in a ball mill. The product with "large crystallites" was pulverized for 10 minutes, while the material with "small crystallite size" was pulverized for 5 minutes.
[0073] The properties of the two materials are summarized in Table 1. These two materials were subjected to a series of tests to identify the mean oxidation state, residual lithium hydroxide, and ion mixture in the layered crystal. The synthesized materials were substantially identical to typical metrics commonly used to characterize cathode powders (oxidation state, residual lithium hydroxide, and cation mixture). The only significant difference was the mean crystallite.
[0074] [Table 1]
[0075] Before forming the electrodes, the synthesized powder was coated with a mixture of cobalt and aluminum to a sufficient extent to produce the aforementioned compound, using the same method, to enrich the grain boundaries. After coating both materials, they were subjected to another heat treatment while flowing CO2-free dry air. The heating curve used for this treatment sloped from 25°C to 450°C at a rate of 5°C / min over a soaking time of 1 hour, followed by a second slope of 2°C / min up to 700°C, and a soaking time of 2 hours. These materials were then allowed to cool naturally to 100°C and ground in a ball mill for 5 minutes. The obtained parameters of the grain boundary enriched materials are shown in Table 2.
[0076] [Table 2]
[0077] These materials were blended with PVDF binder and conductive carbon in an NMP slurry solvent, respectively, and coated onto an aluminum foil current collector. For electrochemical cycle life testing, cathode electrodes were punched out from this foil and combined with an MCMB graphite anode, a porous polypropylene separator, and a carbonate-based electrolyte to form a "full" coin cell. For electrochemical discharge capacity testing, the cathode electrodes were also combined with a lithium metal anode, a porous polypropylene separator, and a carbonate-based electrolyte to form a "half" coin cell.
[0078] The results of the half-cell test are shown in Table 3 below. For both samples, a high discharge capacity of over 205 mAh / g was achieved at C / 20.
[0079] [Table 3]
[0080] In these full cells, a series of charge-discharge cycles were repeated, first at room temperature and then at 45°C. The results of the tests at 45°C for 100–200 cycles are shown in Figures 2 and 3 below. Figure 2 is a graph of discharge capacity degradation at 45°C for 100–200 cycles for a dual cell containing cathode material with large crystallite size or nanocrystal size. Figure 3 shows the increase in dimensionless impedance value for a dual cell containing cathode material with large or small crystallite size (e.g., nanocrystal) corresponding to the cycle data shown in Figure 2. This impedance value was measured every 20 charge / discharge cycles. It should be noted that for materials with small nanocrystals, there is an improvement in initial high discharge capacity and initial low impedance. More specifically, a residual capacity of over 85% is achieved at 200 cycles. Furthermore, for materials with small nanocrystals, capacity retention during cycling is better and the rate of impedance increase is lower.
[0081] Example 2: Li with different crystallite sizes (0.98) Mg (0.02) Ni (0.863) Co (0.131) Al (0.006) O (2) Four cathode powders with the following composition Four electrochemically active, high-nickel, polycrystalline 2D α-NaFeO2-type layered structure particles with different crystallite sizes were prepared. Each of the four prepared polycrystalline 2D α-NaFeO2-type layered structure samples had a total Li content. (0.98) Mg (0.02) Ni (0.863) Co (0.131) Al (0.006) O (2.0) He possessed it.
[0082] A green blend was synthesized from two powder components substantially identical to those in Example 1. These powders were combined in a 1 / 2-gallon HDPE bottle and shaken in a paint shaker for 10 minutes to ensure complete mixing. The green blend was then calcined in a controlled air atmosphere, resulting in minimal water and CO2 content. The calcination formed a sintered ceramic product, which was then processed to form a fluid powder.
[0083] The two powders combined in the green body were finely pulverized lithium hydroxide and a mixed metal hydroxide. The lithium hydroxide was pulverized by shaking 250 g of it with 1200 g of yttrium-stabilized zirconia (YSZ) medium (spherical, 1 / 4 inch in diameter) in a 1 / 2 gallon HDPE vial for 45 minutes. The mixed metal hydroxide had a metal composition of 90 at% Ni, 8 at% Co, and 2 at% Mg. It was manufactured by precursor supplier Hunan Brunp Recycling Technology Co. Ltd. using standard methods for preparing nickel hydroxide-based materials.
[0084] The heating curve for the first firing followed two ramps / rest periods, after which the material was allowed to cool naturally to 130°C. The first ramp / rest period was maintained for 2 hours from ambient temperature to 450°C at a rate of 5°C / min, while the second ramp / rest period was maintained for 6 hours from 450°C to the maximum temperature at a rate of 2°C / min. The four materials described were fired at different maximum temperatures of 640°C, 660°C, 680°C, and 700°C.
[0085] For the materials produced at the three lowest temperatures (i.e., 640°C, 660°C, and 680°C), a single green blend was prepared from 252 g of lithium hydroxide and 961 g of mixed metal hydroxide powder. This was then divided into three portions, each of which was placed in one of three crucibles for firing. After firing, the subsequent processing involved first crushing the sintered cake using a mortar and pestle so that the resulting powder would pass through a #35 sieve. This powder was then ball-milled in a 1-gallon jar with a 2 cm drum of YSZ medium for 5 minutes and passed through a #270 sieve.
[0086] The material, fired at 700°C, contained a green blend made from 252 g of lithium hydroxide and 941 g of mixed metal hydroxides. This blend was fired in nine crucibles evenly spaced in three identically programmed furnaces. Following firing, the subsequent processing involved first crushing the sintered cake using a mortar and pestle so that the resulting powder would pass through a #35 sieve. This powder was then ball-milled in a 1-gallon jar with a 2 cm drum of YSZ medium for 10 minutes and passed through a #270 sieve.
[0087] Before forming the electrodes, the synthesized powder was coated with a mixture of cobalt and aluminum to a sufficient extent to produce the aforementioned compound, using the same method. After coating both materials, they were subjected to another heat treatment while flowing CO2-free dry air. The heating curve used for this treatment consisted of a slope from 25°C to 450°C at a rate of 5°C / min with a soaking time of 1 hour, followed by a second slope to 700°C at a rate of 2°C / min with a soaking time of 2 hours. These materials were then allowed to cool naturally to 100°C and ground in a ball mill for 5 minutes.
[0088] For each of the four cathode powders, a slurry was formed by combining this cathode powder with PVdF (Kureha KF-1120) and carbon (Denka black) in N-methylpyrrolidinone. Then, electrode coatings were manufactured by coating each slurry onto an aluminum foil current collector. Next, the cathodes were punched out from the coated aluminum foil.
[0089] Half-cells were assembled by combining this cathode with lithium foil, a polyolefin separator (Celgard 2500), and an electrolyte (Kishida Chemical) of 1 M LiPF6 in 1 / 1 / 1 (volume) EC / DMC / EMC containing 1 mass% VC, forming a 2025 coin cell. The capacity of each cell was calculated and measured from the electrode mass, assuming a cathode material with a capacity of 200 mAh / g. These cells were then charged to 4.3V at C / 20 and discharged at a rate of C / 20~5C. In terms of charge rate or discharge rate, C refers to the C rate, which is the rate at which the cell is charged and discharged in one hour. The results of the half-cell analysis are shown in Table 4.
[0090] [Table 4]
[0091] A full 2025 coin cell was assembled by combining the cathode with a graphite anode, a polyolefin separator (Celgard 2500), and an electrolyte (Kishida Chemical) of 1 M LiPF6 in 1 / 1 / 1 (volume) EC / DMC / EMC containing 1 mass% VC. Half of the cathode was coated with aluminum. The capacity of each cell was calculated and measured from the electrode mass, assuming a cathode material with a capacity of 200 mAh / g. The anode was matched to the cathode mass so that the anode capacity exceeded the cathode by 1.27 to 1.30 times.
[0092] Graphite anode coatings using the MCMB 1028 active material were manufactured by blending the active material with PVdF (Kureha KF-1120) and carbon (Denka black) in N-methylpyrrolidinone to form a slurry, and then coating each slurry onto a copper foil current collector. Subsequently, anodes were punched out from the coated copper foil.
[0093] Next, a full coin cell was formed at C / 5 at 25°C and discharged at 45°C with a charging current of 1.5C to 4.25V and a discharge current of 1C to 2.7V. Every 20 cycles, the cell was charged to 4.2V (CCCV) at a rate of 1C and discharged to 2.7V to characterize its capacitance and impedance. The time spent at a constant voltage during this characterization process (i.e., the CV process) was used as a measure of impedance.
[0094] [Table 5]
[0095] Crystallite size was determined using powder X-ray diffraction patterns collected by continuous scanning at 0.75 degrees / min from 2θ = 12 degrees to 120 degrees using an automated Shimadzu XRD-6000 diffractometer equipped with a Cu X-ray tube. Atomic structure analysis and crystallite size analysis were performed using the Rietveld method technique executed in the MDI Jade 7 program. The procedure for atomic structure refinement is apparent to those skilled in the art. Using such refinement, the a-lattice and c-lattice parameters of the LiNiO2R-3m layered crystal structure and the Ni occupying the Li sites were determined. 2+The relative amounts of ions and the relative z-positions of oxygen atoms were obtained. A cubic polynomial background curve and a Pseudo-Voigt profile shape function were used for peak fitting. Peak broadening was fitted only for crystallite size (unstrained). FWHM calibration curves using the instrument were obtained by profile-fitting diffraction patterns of the NIST 640c Si calibration standard. Unstrained crystallite size fitting was used to measure the average primary crystallite size of materials synthesized under different reaction conditions. The results are shown in Table 6.
[0096] [Table 6]
[0097] After coating and briefly re-sintering the material, some crystal growth is observed by XRD for most of the material. At 700°C, a noticeably slight decrease in crystallite size is observed as a result of slight lattice parameter distortion caused by grain boundary enrichment. However, the same continuous orientation of the same size created in the initial sintering is maintained. Furthermore, disorder of the arrangement is also observed in Ni. 2+ The value of Ni remains below 3.5 at%, maintaining a low level.
[0098] [Table 7]
[0099] Referring to Figure 4, this is a graph showing the impedance values for 100–200 cycles for two samples of each of the four cathode powders, where it is shown that the first firing was performed at a temperature below 700°C. As shown, the crystallite size decreases as the maximum firing temperature decreases. Furthermore, the impedance gradient quantified in Table 5 also decreases with firing temperature, although the impedance gradient increases with firing at 640°C. As shown in Table 4, setting the maximum firing temperature below 700°C and above 640°C achieves a low impedance increase rate and high discharge capacity during the battery's charge / discharge cycle.
[0100] It should be understood that the embodiments described herein may relate to compositions and methods for producing cathode active materials for lithium-ion batteries having small nanocrystals to reduce the rate of impedance increase during battery charge / discharge cycles. The described compositions and methods for producing the same include active polycrystalline particles that form a cathode having an average crystallite size of 85 nm or less (or 105 nm or less in the case of grain boundary-enriched particles) in a high nickel composition, and also having a high discharge capacity of 205 mAh / g or more at C / 20. The provided compositions and methods for producing this cathode active material exhibit a significant improvement in electrochemical performance and stability, thereby deintercalating and reintercalating lithium within the crystal lattice.
[0101] List of exemplary embodiments 1. Electrochemically active polycrystalline particles: It contains multiple nanocrystals, and these multiple nanocrystals are Li 1+x MO 2+y (In the formula, -0.1 ≤ x ≤ 0.3, -0.3≦y≦0.3, and M has a first composition defined by (containing 10 atomic percent or more of nickel); and The aforementioned multiple nanocrystals are electrochemically active polycrystalline particles having an average crystallite size of 85 nanometers or less, as measured by X-ray diffraction. 2. The particle according to embodiment 1, wherein the aforementioned sizes of the plurality of nanocrystals have an average crystallite size of 50 nanometers or more and 85 nanometers or less. 3. The particle according to embodiment 1, wherein the crystallite size of the aforementioned plurality of nanocrystals is 80 nanometers or less. 4. The particle according to embodiment 1, wherein the aforementioned size of the plurality of nanocrystals is 70 nanometers or less. 5. The particle according to embodiment 1, wherein the aforementioned size of the plurality of nanocrystals is 55 nanometers to 70 nanometers. 6. A particle according to any one embodiment of embodiments 1 to 5, wherein M further comprises one or more elements selected from the group consisting of Al, Mg, Co, Mn, Ca, Sr, Zn, Ti, Zr, Y, Cr, Mo, Fe, V, Si, Ga, and B. 7. A particle according to any one embodiment of embodiments 1 to 6, further comprising a grain boundary located between adjacent crystal grains of the aforementioned plurality of nanocrystals and having a second composition having an α-NaFeO2 type layered structure, a cubic structure, or any combination thereof, wherein the concentration of cobalt at the aforementioned grain boundary is greater than the concentration of cobalt in the aforementioned nanocrystal. 8. Particles according to any one of embodiments 1 to 7, wherein M contains nickel in an atomic percentage of 75% or more, optionally 80% or more, and optionally 85% or more. 9. A particle according to any one embodiment of embodiment 1 to 7, wherein M contains 90% or more, optionally 95% or more, atomic percent nickel. 10. The aforementioned particles further include an outer coating on their surface, and this outer coating is: Oxides of one or more elements selected from Al, Zr, Y, Co, Ni, and Li; Fluorides containing one or more elements selected from Al, Zr, and Li; A carbonate containing one or more elements selected from Al, Co, and Li; or Phosphates containing one or more elements selected from Al and Li A particle according to any one of embodiments 1 to 9, including the above. 11. A particle according to any one embodiment of embodiments 1 to 10, wherein M contains 85% or more, optionally 95% or more, atomic percent nickel, and the aforementioned sizes of the aforementioned plurality of nanocrystals have an average size of 50 nanometers or more and 85 nanometers or less. 12. A particle according to any one of embodiments 7 to 11, wherein the average size of the aforementioned nanocrystals is 10⁵ nanometers or less. 13. The particle according to embodiment 7 or 10, wherein the average size of the aforementioned nanocrystals is 10⁵ nanometers or less. 14. Particles according to any one embodiment of embodiment 7, 10, 8, or 9, wherein the average size of the aforementioned nanocrystals is 105 nanometers or less. 15. Electrochemically active particles, a method for producing electrochemically active particles according to any one embodiment of embodiments 1 to 14: A step of preparing a first mixture containing lithium hydroxide or its hydrate and a precursor hydroxide or carbonate containing nickel; A step of firing the aforementioned first mixture at a maximum temperature of less than 700°C to form a first material containing multiple nanocrystals having a size of 85 nanometers or less. A method that includes this. 16. The method according to embodiment 15, wherein the aforementioned maximum temperature is 680°C or less. 17. The method according to embodiment 15, wherein the aforementioned maximum temperature is 660°C or less. 18. The aforementioned process of calcining the aforementioned first mixture, To raise the temperature from approximately 25°C to approximately 450°C at a rate of approximately 5°C / minute. The mixture is subjected to a soaking heat treatment at the aforementioned temperature of approximately 450°C for approximately 2 hours. Raising the aforementioned temperature from approximately 450°C to a maximum temperature of approximately 650°C to approximately 699°C; and The material is subjected to a soaking heat treatment at the aforementioned maximum temperature of approximately 650°C to 699°C for approximately 6 hours. The method according to embodiment 15, including the method described in embodiment 15. 19. The method according to embodiment 15, wherein the aforementioned maximum temperature is approximately 660°C to approximately 680°C. 18. The step of combining the aforementioned first material with a second material containing at least one of cobalt, aluminum, or a combination thereof to form a second mixture; and A step of heating the aforementioned second mixture to a second maximum temperature of 725°C or less to produce particles further containing grain boundaries between adjacent nanocrystals and having a second composition having an α-NaFeO2 type layered structure, a cubic structure, or any combination thereof, wherein the concentration of cobalt in the aforementioned grain boundaries is greater than the concentration of cobalt in the aforementioned nanocrystals; and wherein the aforementioned plurality of nanocrystals have a size of 10⁵ nanometers or less. The method according to any one embodiment of embodiments 15 to 19, further including the method described above. 20. The method according to embodiment 19, wherein the second maximum temperature mentioned above is 700°C or less. 21. The method according to any one embodiment of embodiments 15 to 20, wherein the aforementioned particles contain nickel in an atomic percentage of 75% or more, optionally 80% or more, and optionally 85% or more. 22. The method according to any one of embodiments 15 to 20, wherein the aforementioned particles contain 90% or more, optionally 95% or more, atomic percent nickel. 23. The method according to any one embodiment of embodiments 15 to 22, wherein the average size of the aforementioned plurality of nanocrystals is 50 nanometers or more and 85 nanometers or less. 24. The method according to any one embodiment of embodiments 15 to 22, wherein the aforementioned size of the aforementioned plurality of nanocrystals is 80 nanometers or less. 25. The method according to any one embodiment of embodiments 15 to 22, wherein the aforementioned size of the plurality of nanocrystals is 70 nanometers or less. 26. The method according to any one embodiment of embodiments 15 to 22, wherein the aforementioned size of the plurality of nanocrystals is 66 nanometers or less. 27. The method according to any one embodiment of embodiments 15 to 22, wherein the aforementioned size of the plurality of nanocrystals is 50 nanometers to 80 nanometers, and optionally 55 nanometers to 70 nanometers. 28. The method according to embodiment 18, wherein the aforementioned nanocrystals have sizes of 100 nanometers or less, arbitrarily 95 nanometers, arbitrarily 90 nanometers, arbitrarily 85 nanometers, arbitrarily 80 nanometers, arbitrarily 75 nanometers, and arbitrarily 70 nanometers. 29. The method according to embodiment 28, wherein the second maximum temperature mentioned above is 700°C or less. 30. The method according to embodiment 28 or 29, wherein the aforementioned particles contain nickel in an atomic percentage of 75% or more, optionally 80% or more, and optionally 85% or more. 31. The method according to embodiment 28 or 29, wherein the aforementioned particles contain 90% or more, optionally 95% or more, atomic percent nickel. 32. Electrochemically active polycrystalline secondary particles: Li 1+x MO 2+y (In the formula, -0.0 ≤ x ≤ 0.3, -0.3≦y≦0.3, and M has a first composition defined by (containing 80 atomic percent or more of nickel); Multiple nanocrystals having a size of 10⁵ nanometers or less, as measured by X-ray diffraction, An electrochemically active polycrystalline secondary particle comprising grain boundaries located between adjacent nanocrystals of the aforementioned multiple nanocrystals, and having a second composition which has an α-NaFeO2-type layered structure, a cubic structure, or any combination thereof, wherein the cobalt concentration at the aforementioned grain boundaries is greater than the cobalt concentration in the aforementioned nanocrystals. 33. The cobalt concentration in the aforementioned nanocrystals is approximately 0.25 atomic percent to approximately 17 atomic percent. The particle according to embodiment 32, wherein the cobalt concentration at the aforementioned grain boundary is approximately 0.5 atomic percent to approximately 32 atomic percent, each based on the total atomic composition of the aforementioned particle. 34. The particle according to embodiment 32, wherein M further comprises one or more elements selected from the group consisting of Al, Mg, Co, Mn, Ca, Sr, B, Zn, Ti, Zr, Y, Cr, Mo, Fe, V, Si, Ga, and B, and the aforementioned one or more elements are present in the Li layer, the M layer, or both layers of the aforementioned nanocrystal. 35. A particle according to any one of embodiments 32 to 34, wherein the aforementioned size of the aforementioned plurality of nanocrystals is 100 nanometers or less. 36. A particle according to any one of embodiments 32 to 34, wherein the aforementioned size of the plurality of nanocrystals is 70 nanometers to 100 nanometers, and optionally 75 nanometers to 90 nanometers. 37. A particle according to any one embodiment of embodiments 32 to 36, wherein M contains nickel in an atomic percentage of 75% or more, optionally 80% or more, and optionally 85% or more. 38. A particle according to any one of embodiments 32 to 36, wherein M contains 90% or more, optionally 95% or more, atomic percent nickel. 39. An electrochemical cell comprising a cathode active material containing particles according to any one of the embodiments 1 to 14 or 32 to 37. 40. A cathode comprising a cathode active material containing particles according to embodiment 1 or 26.
[0102] Various modifications other than those shown and described herein will be apparent to those skilled in the art of the foregoing description. Such modifications are also intended to be included within the scope of this disclosure.
[0103] It is understood that all reagents, unless otherwise specified, are obtained from sources known in the art.
[0104] The patents, publications, and applications referenced herein represent the level of expertise of those skilled in the art to which this disclosure relates. These patents, publications, and applications are incorporated herein by reference to the same extent as each individual patent, publication, or application is specifically and individually incorporated herein by reference.
[0105] The foregoing description illustrates specific aspects of the present invention, but is not intended to limit its implementation. The following claims, including all equivalents thereof, are intended to define the scope of the present invention.
Claims
1. Electrochemically active polycrystalline secondary particles: It contains multiple nanocrystals, and these multiple nanocrystals are Li 1+x MO 2+y (In the formula, -0.1 ≤ x ≤ 0.3, -0.3 ≤ y ≤ 0.3, and M has a first composition defined by (containing 80 atomic percent or more of nickel); and The plurality of nanocrystals are electrochemically active polycrystalline secondary particles having an average crystallite size of 50 nanometers or more and 105 nanometers or less, as measured by X-ray diffraction. The α-NaFeO 2 The material further comprises grain boundaries having a second composition having a layered structure, a cubic structure, or a combination thereof, wherein the cobalt concentration at the grain boundaries is greater than the cobalt concentration in the nanocrystal, and the grain boundaries are Li 1+x MO 2+y Electrochemically active polycrystalline secondary particles enriched with up to 6 atomic percent of Co relative to the total M atoms within them.
2. The aforementioned grain boundary is Li 1+x MO 2+y The secondary particle according to claim 1, which is enriched with up to 4 atomic percent of Co relative to the total M atoms inside.
3. The secondary particle according to claim 1, wherein the size of the plurality of nanocrystals has an average crystallite size of 50 nanometers or more and 100 nanometers or less.
4. The secondary particle according to claim 1, wherein the size of the plurality of nanocrystals is 80 nanometers or less.
5. The secondary particle according to claim 1, wherein the size of the plurality of nanocrystals is 70 nanometers or less.
6. The secondary particle according to claim 1, wherein the size of the plurality of nanocrystals is 70 nanometers to 100 nanometers.
7. The secondary particle according to claim 1, wherein M further comprises one or more elements selected from the group consisting of Al, Mg, Co, Mn, Ca, Sr, Zn, Ti, Zr, Y, Cr, Mo, Fe, V, Si, Ga, and B, and the one or more elements are present in the Li layer, the M layer, or both layers of the nanocrystal.
8. A secondary particle according to any one of claims 1 to 7, wherein M contains 95% or more atomic percent nickel.
9. A secondary particle according to any one of claims 1 to 7, wherein M contains 96% or more atomic percent nickel.
10. The secondary particles further include an outer coating on their surface, wherein the outer coating is: Oxides of one or more elements selected from Al, Zr, Y, Co, Ni, Mg, and Li; Fluorides containing one or more elements selected from Al, Zr, and Li; A carbonate containing one or more elements selected from Al, Co, Ni, Mn, and Li; or Phosphates containing one or more elements selected from Al and Li A secondary particle according to any one of claims 1 to 7, including
11. The secondary particle according to any one of claims 1 to 7, wherein M contains 85% or more atomic percent nickel, and the plurality of nanocrystals have an average size of 50 nanometers or more and 100 nanometers or less.
12. A method for producing electrochemically active secondary particles according to any one of claims 1 to 7: A step of preparing a first mixture containing lithium hydroxide or its hydrate and a precursor hydroxide containing nickel; A step of firing the first mixture at a maximum temperature of less than 700°C to form a first material containing a plurality of nanocrystals having a size of 85 nanometers or less; A step of combining the first material with a second material containing cobalt, or a combination of cobalt and aluminum, to form a second mixture; and A step of heat-treating the second mixture to a second maximum temperature of 725 °C or lower to produce secondary particles further including grain boundaries that are between adjacent nanocrystals and have a second composition, wherein the concentration of cobalt in the grain boundaries is greater than the concentration of cobalt in the nanocrystals, and the plurality of nanocrystals have a size of 105 nanometers or less, and the grain boundaries are enriched with Co up to 6 atomic % with respect to all M atoms in Li 1+x MO 2+y and are concentrated with Co up to 6 atomic % with respect to all M atoms in A method that includes this.
13. The method according to claim 12, wherein the maximum temperature is 680°C or less.
14. The method according to claim 12, wherein the maximum temperature is 660°C or less.
15. The step of calcining the first mixture is To raise the temperature from 25°C to 450°C at a rate of 5°C / min. The above temperature of 450°C is used for a soaking treatment for 2 hours. Raising the temperature from 450°C to a maximum temperature of 650°C to 699°C; and The material is subjected to a soaking treatment at the aforementioned maximum temperature of 650°C to 699°C for 6 hours. The method according to claim 12, including the method described in claim 12.
16. The method according to claim 13, wherein the maximum temperature is 660°C to 680°C.
17. The method according to claim 12, wherein the second maximum temperature is 700°C or less.
18. An electrochemical cell comprising a cathode active material containing secondary particles according to any one of claims 1 to 7.
19. A cathode comprising a cathode active material comprising secondary particles according to any one of claims 1 to 7.
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