Positive electrode active material, positive electrode, and lithium secondary battery including the same

The introduction of a lithium composite oxide with doped titanium in lithium secondary batteries addresses the challenges of output efficiency and high-temperature life characteristics, resulting in improved electrochemical performance.

JP7681759B2Active Publication Date: 2025-05-22ECOPRO BM CO LTD
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Patent Information

Application Number
JP2024069480
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-10-28
Filing Date
2024-04-23
Publication Date
2025-05-22
Estimated Expiration
2042-10-24

AI Technical Summary

Technical Problem

Lithium secondary batteries face challenges in achieving high output efficiency and maintaining high-temperature life characteristics due to issues with cation mixing and the synthesis difficulties of transition metal-based active materials.

Method used

A positive electrode active material is developed using a lithium composite oxide with nickel and titanium, where titanium is doped into the oxide and exists as an oxide on the surface, improving both output efficiency and high-temperature life characteristics.

Benefits of technology

The proposed solution effectively enhances the electrochemical characteristics of lithium secondary batteries, including improved charge/discharge efficiency, cycle capacity retention, and impedance characteristics, especially under high-temperature conditions.

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Abstract

To simultaneously improve output efficiency and high-temperature lifetime characteristics (high-temperature cycle capacity retention rate) of a lithium secondary battery using positive electrode active material.SOLUTION: The present invention relates to a positive electrode, the positive electrode comprising lithium composite oxides containing at least nickel and titanium, where the lithium composite oxides are secondary particles in which a plurality of primary particles are aggregated. A titanium content (mol%) satisfies 1.464≤{(a1+a2) / 2} / b1≤2.502, the lithium composite oxides calculated from a line sum spectrum of titanium obtained through an EDX line scan (line scanning) in a short axis direction of primary particles selected from a cross-sectional TEM image of the lithium composite oxides.SELECTED DRAWING: Figure 1
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Description

Technical Field

[0001] The present invention relates to a positive electrode active material, a positive electrode, and a lithium secondary battery including the same. More specifically, the present invention relates to a positive electrode active material including a lithium composite oxide containing at least nickel and titanium, wherein the titanium is doped into the lithium composite oxide and exists in the form of an oxide on at least a part of the surface of the lithium composite oxide, and a positive electrode and a lithium secondary battery including the positive electrode active material, which can simultaneously improve the output efficiency and high-temperature life characteristics (high-temperature cycle capacity retention rate) of the lithium secondary battery.

Background Art

[0002] A battery stores electric power by using substances capable of electrochemical reactions for a positive electrode and a negative electrode. As a typical example of such a battery, there is a lithium secondary battery that stores electrical energy by the difference in chemical potential when lithium ions are intercalated / deintercalated in the positive electrode and the negative electrode.

[0003] The lithium secondary battery is manufactured by using substances capable of reversible intercalation / deintercalation of lithium ions as the positive electrode and negative electrode active materials, and filling an organic electrolyte or a polymer electrolyte between the positive electrode and the negative electrode.

[0004] As the positive electrode active material of the lithium secondary battery, lithium composite oxides are used. Examples thereof include composite oxides such as LiCoO 2 , LiMn 2 O 4 , LiNiO 2 , LiMnO 2 and the like are being studied.

[0005] Among the positive electrode active materials, LiCoO 2is the most widely used due to its excellent life characteristics and charge / discharge efficiency, but has the disadvantage of being expensive due to the limited availability of cobalt as a raw material, limiting its price competitiveness.

[0006] LiMnO 2 , LiMn 2 O 4 Lithium manganese oxides such as LiNiO have the advantages of being thermally safe and inexpensive, but they have problems such as small capacity and poor high-temperature properties. 2 Although these positive electrode active materials show high discharge capacity as battery characteristics, their synthesis is difficult due to the problem of cation mixing between Li and transition metals, which causes serious problems in rate characteristics.

[0007] In addition, a large amount of Li by-products will be generated depending on the depth of such cation mixing. Most of these Li by-products are LiOH and Li 2 CO 3 This causes problems such as gelling during the manufacture of the positive electrode paste and gas generation during charge and discharge after the electrode is manufactured. 2 CO 3 Not only does it increase cell swelling and reduce cycles, it also causes the battery to swell.

[0008] On the other hand, in order to manufacture lithium secondary batteries with higher specifications, high-Ni type positive electrode active materials with a high Ni content are attracting attention. However, such high-Ni type positive electrode active materials have the above-mentioned LiNiO 2 Since these cathode active materials, like those based on nickel, have problems due to cation mixing, attempts are ongoing to improve the stability of the cathode active material by doping or coating the high-Ni type cathode active material with metal elements other than the main transition metal elements. Summary of the Invention [Problem to be solved by the invention]

[0009] In the lithium secondary battery market, the growth of lithium secondary batteries for electric vehicles is playing a leading role in the market, while the demand for positive electrode materials used in lithium secondary batteries is also continuously changing.

[0010] For example, lithium secondary batteries using LFP have traditionally been used primarily for safety reasons, but in recent years there has been a trend toward the widespread use of nickel-based lithium composite oxides, which have a larger energy capacity per weight than LFP.

[0011] As a result, the positive electrode active material used in higher specification lithium secondary batteries must adequately meet all of the expected stability and reliability even under more severe operating conditions.

[0012] In consideration of such various circumstances, the present invention aims to provide a cathode active material that includes a lithium composite oxide containing at least nickel and titanium, in which the titanium is doped into the lithium composite oxide and is present in the form of an oxide on at least a portion of the surface of the lithium composite oxide, and that can simultaneously improve the output efficiency and high-temperature life characteristics (high-temperature cycle capacity retention rate) of a lithium secondary battery using the cathode active material.

[0013] Another object of the present invention is to provide a positive electrode comprising the positive electrode active material defined herein.

[0014] It is yet another object of the present invention to provide a lithium secondary battery using the positive electrode defined herein. [Means for solving the problem]

[0015] According to one aspect of the present invention, there is provided a cathode active material that includes a lithium composite oxide containing at least nickel and titanium, the titanium being doped into the lithium composite oxide and being present in the form of an oxide on at least a portion of the surface of the lithium composite oxide, and that can simultaneously improve the output efficiency and high-temperature life characteristics (high-temperature cycle capacity retention rate) of a lithium secondary battery using the cathode active material.

[0016] Specifically, the lithium composite oxide is a secondary particle formed by agglomeration of a plurality of primary particles, and the titanium content (mol%) calculated from a line sum spectrum of titanium obtained through EDX line scanning in the short axis direction of the primary particle selected from a cross-sectional TEM image of the lithium composite oxide may satisfy the following Equation 1:

[0017] [Formula 1] 1.4≦{(a1+a2) / 2} / b1≦3.25

[0018] (Here, if the minor axis diameter of the primary particle selected from the cross-sectional TEM image is r, a1 is the average titanium content (mol%) measured based on all metal elements excluding lithium within the region of 0 to 0.05r from the start of the line sum spectrum, a2 is the average titanium content (mol%) measured based on all metal elements excluding lithium within the region of 0.95r to r from the start of the line sum spectrum, b1 is the average titanium content (mol%) measured based on all metal elements excluding lithium within the region of 0.05r to 0.95r from the start of the line sum spectrum.

[0019] In one embodiment, titanium in the lithium composite oxide may be present in an amount of more than 0.2 mol % and less than 3.3 mol % based on the total metal elements excluding lithium.

[0020] In the lithium composite oxide, titanium is present in an amount of more than 0.2 mol % based on the total metal elements excluding lithium, so that the overall indices showing the electrochemical characteristics of a lithium secondary battery using the positive electrode active material (e.g., charge capacity, discharge capacity, charge / discharge efficiency, cycle capacity retention rate, impedance characteristics, output efficiency, etc.) can be improved, and in particular, the high-temperature life characteristics can be improved.

[0021] In an embodiment, at least a portion of titanium in the lithium composite oxide may be present in a doped state within the primary particles.

[0022] In this case, the average titanium content (mol%) measured based on all metal elements excluding lithium within the region of 0.05r to 0.95r from the start point of the line sum spectrum is preferably more than 0.083 mol% and less than 0.832 mol%.

[0023] Titanium present within a region of 0.05r to 0.95r from the start of the line sum spectrum may correspond to titanium present in a doped state in the primary particles, and an average content (mol%) of titanium based on all metal elements excluding lithium within a region of 0.05r to 0.95r from the start of the line sum spectrum exceeds 0.083 mol%, thereby improving the output efficiency of a lithium secondary battery using the positive electrode active material.

[0024] The lithium composite oxide may further contain at least one metal element selected from cobalt, manganese, and aluminum.

[0025] Specifically, the primary particles are represented by the following formula 1.

[0026] [C1] Li w Ni 1-(x+y+z) Ti x M1 y M2 z O 2 (where: M1 is at least one selected from Co, Mn, and Al; M2 is at least one selected from P, Sr, Ba, Zr, Co, Mn, Al, W, Ce, Hf, Ta, F, Mg, Cr, V, Fe, Zn, Si, Y, Ga, Sn, Mo, Ge, Nd, B, Nb, Gd, and Cu; M1 and M2 are different from each other, 0.5≦w≦1.5, 0≦x≦0.50, 0≦y≦0.40, 0≦z≦0.20.)

[0027] In one embodiment, the primary particles may be core-shell particles including a core and a shell existing on at least a part of the surface of the core, and a metal oxide represented by the following Chemical Formula 2 may be present in the shell.

[0028] [C2] Li a Ti b M3 c O d

[0029] (where: M3 is at least one selected from Ni, Mn, Co, Fe, Cu, Nb, Mo, Ti, Al, Cr, Zr, Zn, Na, K, Ca, Mg, Pt, Au, B, P, Eu, Sm, W, Ce, V, Ba, Ta, Sn, Hf, Gd, and Nd; 0≦a≦10, 0 <b≦8、0≦c≦8、2≦d≦13である。)

[0030] The metal oxide may include at least one selected from titanium oxide and lithium titanium oxide.

[0031] The metal oxide represented by Chemical Formula 2 is present on at least a portion of the surface of the core, so that the titanium content in the surface of the primary particle can be greater than or equal to a predetermined amount, thereby improving the impedance characteristics and high-temperature cycle capacity retention rate of a lithium secondary battery using the positive electrode active material.

[0032] According to another aspect of the present invention, there is provided a positive electrode comprising the positive electrode active material defined herein.

[0033] According to yet another aspect of the present invention, there is provided a lithium secondary battery using the positive electrode defined herein. Effect of the Invention

[0034] According to the present invention, titanium is present in a doped state in the lithium composite oxide and in the form of an oxide on at least a portion of the surface of the lithium composite oxide, thereby making it possible to simultaneously improve the output efficiency and high-temperature life characteristics (high-temperature cycle capacity retention rate) of a lithium secondary battery.

[0035] In this case, when the content of titanium doped in the lithium composite oxide is greater than a predetermined ratio relative to the content of titanium present in the form of oxide on at least a portion of the surface of the lithium composite oxide, the surface resistance of the lithium composite oxide may increase, and impedance characteristics and cycle capacity retention rate may decrease.

[0036] In addition, when the content of titanium present in the form of oxide on at least a portion of the surface of the lithium composite oxide is greater than a certain ratio relative to the content of titanium doped in the lithium composite oxide, the output efficiency of a lithium secondary battery using the lithium composite oxide as a positive electrode active material may be reduced.

[0037] According to the present invention, the content of titanium doped in the lithium composite oxide and the content of titanium present in the form of an oxide on at least a portion of the surface can be controlled to improve overall indicators related to the electrochemical characteristics of the lithium secondary battery, including output efficiency, impedance characteristics, and high-temperature life characteristics (high-temperature cycle capacity retention rate). [Brief description of the drawings]

[0038] [Figure 1]FIG. 1 is a cross-sectional TEM image of a lithium composite oxide contained in a positive electrode active material according to Example 1. The direction of the arrow in FIG. 1 indicates a line scanning direction along the minor axis direction of a primary particle, and the dashed line indicates a line sum spectrum section. [Diagram 2] This shows the line sum spectrum of titanium in the line scanning direction shown in Figure 1. [Diagram 3] 2 shows a cross-sectional TEM image of the lithium composite oxide contained in the positive electrode active material according to Example 1 taken at an angle different from that of FIG. 1 and an EDX mapping result for titanium. [Figure 4] 5 is a cross-sectional TEM image of the lithium composite oxide contained in the positive electrode active material according to Comparative Example 1, and the direction of the arrow in FIG. 4 indicates the line scanning direction along the minor axis direction of the primary particles. [Diagram 5] FIG. 5 shows the line sum spectrum of titanium according to the line scanning direction shown in FIG. 4, and the dashed lines show the intervals of the line sum spectrum. [Figure 6] 5 shows a cross-sectional TEM image of the lithium composite oxide contained in the positive electrode active material according to Comparative Example 1 taken at an angle different from that of FIG. 4 and an EDX mapping result for titanium. [Figure 7] 7 is a cross-sectional TEM image of a lithium composite oxide contained in a cathode active material according to Comparative Example 4. In FIG. 7, the direction of the arrow indicates a line scanning direction along the minor axis direction of the primary particle, and the dashed line indicates a line sum spectrum section. [Figure 8] The line sum spectrum of titanium is shown in FIG. 7 along the line scanning direction. [Figure 9] 8 shows a cross-sectional TEM image of the lithium composite oxide contained in the positive electrode active material according to Comparative Example 4 taken at an angle different from that in FIG. 7 and an EDX mapping result for titanium. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0039] Hereinafter, the positive electrode active material according to the present invention and the lithium secondary battery including the positive electrode active material will be described in more detail.

[0040] positive electrode active material According to one aspect of the present invention, there is provided a positive electrode active material comprising a lithium composite oxide containing at least nickel and titanium. The lithium composite oxide is a composite metal oxide that contains lithium in addition to nickel and titanium and has a layered crystal structure capable of intercalating and deintercalating lithium ions.

[0041] The lithium composite oxide contained in the positive electrode active material defined in the present application may be a secondary particle including at least one primary particle. In this case, the primary particle can be expressed as a crystallite.

[0042] Here, "secondary particles containing at least one primary particle" should be interpreted as including both "particles formed by agglomeration of multiple primary particles" and "non-agglomerated single particles consisting of a single crystallite."

[0043] The primary particles and the secondary particles may each independently be rod-shaped, elliptical and / or irregular.

[0044] When the average major axis length is used as an index showing the size of the primary particles and the secondary particles, the average major axis length of the primary particles constituting the lithium composite oxide may be 0.1 μm to 5 μm, and the average major axis length of the secondary particles may be 1 μm to 30 μm. The average major axis length of the secondary particles may vary depending on the number of the primary particles constituting the secondary particles, and the positive electrode active material may contain particles having various average major axis lengths.

[0045] When the lithium composite oxide is a "non-aggregated single particle consisting of a single crystallite" or a "particle formed by aggregating a relatively small number of primary particles", the size (average particle size) of the primary particles contained in the "non-aggregated single particle consisting of a single crystallite" or the "particle formed by aggregating a relatively small number of primary particles" may be larger than the primary particles (average particle size) contained in the "secondary particle formed by aggregating tens to hundreds or more primary particles".

[0046] Thus, lithium composite oxides that are "non-aggregated single particles consisting of a single crystallite" or "particles formed by aggregating a relatively small number of primary particles" generally require stronger heat treatment conditions (high heat treatment temperature / long heat treatment time) than those that are used to produce "secondary particles formed by aggregating tens to hundreds or more primary particles." It is known that when heat treatment is performed for a long time at a relatively high temperature (e.g., 800°C or higher), particle growth (crystal growth) is promoted, the size of the single particles increases, and a positive electrode active material with a low degree of particle aggregation is obtained.

[0047] For example, when the lithium composite oxide is a "non-aggregated single particle consisting of a single crystallite" or a "particle formed by aggregating a relatively small number of primary particles", the primary particles may have an average major axis length in the range of 0.5 μm to 20 μm. On the other hand, when the lithium composite oxide is a "particle formed by aggregating a plurality of (tens to hundreds or more) primary particles", the primary particles may have an average major axis length in the range of 0.1 μm to 5 μm.

[0048] In an embodiment, at least a portion of titanium in the lithium composite oxide may be present in a doped state within the primary particles.

[0049] The content of titanium doped in the primary particles may be calculated from the content of titanium source material mixed with the hydroxide precursor of the lithium composite oxide, or may be measured through TEM-EDX or EP-EDX analysis of the primary particles.

[0050] Furthermore, according to the present invention, titanium is present in a doped state within the lithium composite oxide and in the form of an oxide on at least a portion of the surface of the lithium composite oxide, thereby making it possible to simultaneously improve the output efficiency and high-temperature life characteristics (cycle capacity retention rate) of a lithium secondary battery using the lithium composite oxide as a positive electrode active material.

[0051] In order to achieve the above-mentioned effects, the titanium in the lithium composite oxide is preferably present in an amount of more than 0.2 mol% based on the total metal elements excluding lithium. Here, the titanium content in the lithium composite oxide can be confirmed from the bulk composition measured through ICP analysis of the lithium composite oxide.

[0052] In the lithium composite oxide, titanium is present in an amount of more than 0.2 mol % based on the total metal elements excluding lithium, so that the overall indices showing the electrochemical characteristics of a lithium secondary battery using the positive electrode active material (e.g., charge capacity, discharge capacity, charge / discharge efficiency, cycle capacity retention rate, impedance characteristics, output efficiency, etc.) can be improved.

[0053] Meanwhile, in the lithium composite oxide, titanium is preferably present in an amount of less than 3.3 mol% based on the total metal elements excluding lithium. If the titanium content in the lithium composite oxide is too high, the charge capacity, discharge capacity, and charge / discharge efficiency of a lithium secondary battery using the lithium composite oxide as a positive electrode active material may be decreased.

[0054] The lithium composite oxide may further contain at least one metal element selected from cobalt, manganese, and aluminum. The primary particles constituting the lithium composite oxide may also further contain at least one metal element selected from cobalt, manganese, and aluminum.

[0055] Specifically, the primary particles are represented by the following Chemical formula 1. The bulk composition of secondary particles formed by agglomeration of a plurality of primary particles is also represented by the following Chemical formula 1.

[0056] [C1] Li w Ni 1-(x+y+z) Ti x M1 y M2 z O 2 (where: M1 is at least one selected from Co, Mn, and Al; M2 is at least one selected from P, Sr, Ba, Zr, Co, Mn, Al, W, Ce, Hf, Ta, F, Mg, Cr, V, Fe, Zn, Si, Y, Ga, Sn, Mo, Ge, Nd, B, Nb, Gd, and Cu; M1 and M2 are different from each other, 0.5≦w≦1.5, 0≦x≦0.50, 0≦y≦0.40, 0≦z≦0.20.)

[0057] The lithium composite oxide may be a high-Ni type lithium composite oxide in which the concentrations (mol %) of Ni, M1, M2 and Ti in Chemical Formula 1 satisfy the following Relational Formula 1.

[0058] [Equation 1] Ni / (Ni+M1+M2+Ti)≧80.0

[0059] In addition, when the lithium composite oxide contains cobalt, the lithium composite oxide may be a high-Ni / low-Co type lithium composite oxide in which the cobalt content is 10 mol % or less, preferably 5 mol % or less, and more preferably 3 mol % or less, based on all metal elements in the lithium composite oxide excluding lithium.

[0060] It is generally known that the higher the nickel content in lithium composite oxide, the greater the structural instability caused by Li / Ni cation mixing.In addition, the lower the cobalt content in lithium composite oxide, the greater the initial overvoltage (resistance), which inevitably leads to a decrease in rate characteristics.

[0061] However, the lithium composite oxide contained in the positive electrode active material defined in the present application is present in a state where titanium is doped within the lithium composite oxide, and is present in the form of an oxide on at least a portion of the surface of the lithium composite oxide. This makes it possible to simultaneously improve the output efficiency and high-temperature life characteristics (high-temperature cycle capacity retention rate) of a lithium secondary battery using a high-Ni type lithium composite oxide or a high-Ni / low-Co type lithium composite oxide as a positive electrode active material.

[0062] Meanwhile, when the content of titanium doped in the lithium composite oxide is greater than a certain ratio relative to the content of titanium present in the form of oxide on at least a portion of the surface of the lithium composite oxide, the surface resistance of the lithium composite oxide may increase, and impedance characteristics and cycle capacity retention rate may decrease.

[0063] In addition, when the content of titanium present in the form of oxide on at least a portion of the surface of the lithium composite oxide is greater than a certain ratio relative to the content of titanium doped in the lithium composite oxide, the output efficiency of a lithium secondary battery using the lithium composite oxide as a positive electrode active material may be reduced.

[0064] Thus, the lithium composite oxide defined herein can improve overall indicators related to the electrochemical characteristics of a lithium secondary battery, including output efficiency, impedance characteristics, and high-temperature life characteristics (high-temperature cycle capacity retention rate), by controlling the content of titanium doped in the lithium composite oxide and the content of titanium present in the form of an oxide on at least a portion of the surface, as described below.

[0065] Specifically, the lithium composite oxide defined herein may have a titanium content (mol%) calculated from a line sum spectrum of titanium obtained through EDX line scanning in the minor axis direction of a primary particle selected from a cross-sectional TEM image of the lithium composite oxide, which satisfies the following Equation 1:

[0066] [Formula 1] 1.4≦{(a1+a2) / 2} / b1≦3.25

[0067] (Here, if the minor axis diameter of the primary particle selected from the cross-sectional TEM image is r, a1 is the average titanium content (mol%) measured based on all metal elements excluding lithium within the region of 0 to 0.05r from the start of the line sum spectrum, a2 is the average titanium content (mol%) measured based on all metal elements excluding lithium within the region of 0.95r to r from the start of the line sum spectrum, b1 is the average titanium content (mol%) measured based on all metal elements excluding lithium within the region of 0.05r to 0.95r from the start of the line sum spectrum.

[0068] That is, a1 and a2 respectively indicate the average titanium content (mol%) in the surface region of the primary particle (length corresponding to 5% of the minor axis diameter of the primary particle) based on the line sum spectrum, and b1 indicates the average titanium content (mol%) in the center region of the primary particle (length corresponding to 90% of the minor axis diameter of the primary particle) based on the line sum spectrum.

[0069] The average titanium content (mol%) based on all metal elements excluding lithium within the region of 0.05r to 0.95r from the start of the line sum spectrum may be more than 0.083 mol% and less than 0.832 mol%, preferably more than 0.3 mol% and less than 0.7 mol%.

[0070] Titanium present within a region of 0.05r to 0.95r from the start of the line sum spectrum may correspond to titanium present in a doped state within the primary particles.

[0071] In this case, the content of titanium present in a doped state in the primary particles does not necessarily match the content of the titanium-containing raw material that is mixed with the hydroxide precursor of the lithium composite oxide and then heat-treated (corresponding to the first heat treatment in Preparation Example 1).

[0072] That is, a part of titanium in the titanium-containing raw material that is mixed with the hydroxide precursor of the lithium composite oxide and then heat-treated may be present within the region of 0 to 0.05r and 0.95r to r from the starting point of the line sum spectrum.

[0073] When the average content (mol%) of titanium exceeds 0.083 mol% based on all metal elements excluding lithium within the region of 0.05r to 0.95r from the start of the line sum spectrum, the output efficiency, which is one of the indicators related to the electrochemical properties of a lithium secondary battery using the positive electrode active material, can be improved.

[0074] Meanwhile, the average titanium content (mol%) based on all metal elements excluding lithium within the region of 0.05r to 0.95r from the start of the line sum spectrum is preferably less than 0.832 mol%. As the average titanium content within the region increases, the output efficiency of a lithium secondary battery using the positive electrode active material can be further improved, but conversely, the effect of reducing the surface resistance of the lithium composite oxide is small, and it may be difficult to improve the impedance characteristics and cycle capacity retention rate of a lithium secondary battery using the positive electrode active material.

[0075] In addition, the average of the average titanium content (mol%) measured based on all metal elements excluding lithium in the region of 0 to 0.05r from the start of the line sum spectrum and the average titanium content (mol%) measured based on all metal elements excluding lithium in the region of 0.95r to r may be more than 0.227 mol% and less than 2.699 mol%, preferably more than 0.8 mol% and less than 1.2 mol%.

[0076] Titanium present within the regions of 0 to 0.05r and 0.95r to r from the start of the line sum spectrum may correspond to titanium that is coated on the surface of the primary particle or that is doped in the region adjacent to the outermost periphery of the primary particle.

[0077] In this case, the content of titanium present as a coating on the surface of the primary particles or as a dopant in the region adjacent to the outermost periphery of the primary particles does not necessarily match the content of the titanium-containing raw material that is mixed with the lithium composite oxide and then heat-treated (corresponding to the second heat treatment in Preparation Example 1).

[0078] That is, at least a part of titanium in the titanium-containing raw material that is mixed with the lithium composite oxide and then heat-treated may be present within a range of 0.05r to 0.95r from the starting point of the line sum spectrum.

[0079] When the average of the average titanium content (mol%) measured based on all metal elements excluding lithium in the region of 0 to 0.05r from the start of the line sum spectrum and the average titanium content (mol%) measured based on all metal elements excluding lithium in the region of 0.95r to r is less than 0.227 mol%, it may be difficult to improve the impedance characteristics and cycle capacity retention rate of a lithium secondary battery using the positive electrode active material.

[0080] On the other hand, when the average of the average titanium content (mol%) measured based on all metal elements excluding lithium in the region of 0 to 0.05r from the start of the line sum spectrum and the average titanium content (mol%) measured based on all metal elements excluding lithium in the region of 0.95r to r is more than 2.669 mol%, the output efficiency, which is an index related to the electrochemical characteristics of a lithium secondary battery using the positive electrode active material, may be decreased. As described above, the content of titanium present in a doped state in the primary particles, the content of the titanium-containing raw material mixed with the hydroxide precursor of the lithium composite oxide and then heat-treated (corresponding to the first heat treatment in Preparation Example 1) and the content of the titanium-containing raw material mixed with the lithium composite oxide and then heat-treated (corresponding to the second heat treatment in Preparation Example 1), and the average content (mol%) of titanium measured based on all metal elements excluding lithium within the ranges of 0 to 0.05r, 0.05r to 0.95r, and 0.95r to r from the start point of the line sum spectrum in the minor axis direction of the primary particles may not exactly match.

[0081] Therefore, the present invention measures the titanium content in each region on the line sum spectrum instead of considering the amount of titanium-containing raw material used, and derives a significant correlation between the titanium content in each region and the electrochemical characteristics (especially, high temperature life characteristics) of a lithium secondary battery using the lithium composite oxide as a positive electrode active material.

[0082] In summary, on the premise that the above-defined {(a1+a2) / 2} / b1 satisfies the range of formula 1, the titanium content in the lithium composite oxide is in the range of more than 0.2 mol % and less than 3.3 mol % based on all metal elements excluding lithium, and the average titanium content (mol %) measured based on all metal elements excluding lithium is within a predetermined range within a region of 0 to 0.05r, a region of 0.05r to 0.95r, and a region of 0.95r to r from the start point of the line sum spectrum in the short axis direction of the primary particles, thereby making it possible to simultaneously improve overall indicators related to the electrochemical characteristics of the lithium secondary battery, including the power efficiency, impedance characteristics, and high-temperature life characteristics (high-temperature cycle capacity retention rate).

[0083] When the titanium content in the lithium composite oxide and the primary particles satisfies the above-mentioned range but {(a1+a2) / 2} / b1 is less than 1.4, the output efficiency such as c-rate of a lithium secondary battery using the lithium composite oxide as a positive electrode active material can be improved, but the improvement effect on other indices (e.g., charge capacity, discharge capacity, charge / discharge efficiency, impedance characteristics, life characteristics, etc.) is negligible.

[0084] On the other hand, when the lithium composite oxide and the titanium content in the primary particles satisfy the above-mentioned range, {(a1+a2) / 2} / b1 is greater than 3.25, the EIS and cycle capacity retention rate of a lithium secondary battery using the lithium composite oxide as a positive electrode active material can be improved, but the improvement effects on the charge capacity, discharge capacity, charge / discharge efficiency, and output characteristics (c-rate) are negligible.

[0085] The primary particles may be defined as core-shell particles including a core and a shell existing on at least a part of the surface of the core, wherein the shell may contain a metal oxide represented by the following formula 2:

[0086] [Case 2] Li a Ti b M3 c Od

[0087] (where: M3 is at least one selected from Ni, Mn, Co, Fe, Cu, Nb, Mo, Ti, Al, Cr, Zr, Zn, Na, K, Ca, Mg, Pt, Au, B, P, Eu, Sm, W, Ce, V, Ba, Ta, Sn, Hf, Gd, and Nd; 0≦a≦10, 0 <b≦8、0≦c≦8、2≦d≦13である。)

[0088] That is, the shell can be defined as a region in which the metal oxide represented by Chemical Formula 2 exists.

[0089] As described above, when the primary particle is defined as a core-shell particle, in Equation 1, a1 and a2 are the average titanium content (mol%) measured based on all metal elements excluding lithium within a region of 0 to 0.05r from the outermost periphery of the core-shell particle (wherein a1 and a2 respectively refer to the titanium content within the region located at the start and end points of line scanning based on the line sum spectrum). b1 is the average titanium content (mol%) measured based on all metal elements excluding lithium within a region of 0.05r to 0.95r from the outermost periphery of the core-shell particle.

[0090] At least one selected from titanium oxide and lithium titanium oxide may be present in the shell. The titanium oxide and / or the lithium titanium oxide may be a metal oxide composited with M3.

[0091] The metal oxide may be in a state of being physically and / or chemically bonded to the primary particles, or may be in a state of forming a solid solution with the primary particles.

[0092] In terms of secondary particles, the metal oxide may be present partially or entirely on the interface between the primary particles and / or on the surface of the secondary particles located in the secondary particles. When the metal oxide is partially present on the surface of the primary particles and / or the secondary particles, the shell may be present in the form of islands.

[0093] Lithium secondary battery According to yet another aspect of the present invention, a positive electrode may be provided, the positive electrode active material layer including a positive electrode current collector and a positive electrode active material layer formed on the positive electrode current collector. Here, the positive electrode active material layer may include a positive electrode active material according to various embodiments of the present invention. Therefore, since the positive electrode active material is as described above, detailed description will be omitted for convenience, and only the remaining components not described above will be described below.

[0094] The positive electrode current collector is not particularly limited as long as it does not induce chemical changes in the battery and has conductivity, and may be, for example, stainless steel, aluminum, nickel, titanium, baked carbon, or aluminum or stainless steel surface-treated with carbon, nickel, titanium, silver, etc. The positive electrode current collector may usually have a thickness of 3 to 500 μm, and fine irregularities may be formed on the surface of the current collector to increase the adhesive strength of the positive electrode active material. For example, it may be used in various forms such as a film, sheet, foil, net, porous body, foam, nonwoven fabric, etc.

[0095] The positive electrode active material layer may be prepared by coating a positive electrode slurry composition containing the positive electrode active material, a conductive material, and optionally a binder, on the positive electrode current collector.

[0096] At this time, the positive electrode active material may be included in an amount of 80 to 99 wt%, more specifically, 85 to 98.5 wt%, based on the total weight of the positive electrode active material layer. When included in this content range, excellent capacity characteristics can be exhibited, but the amount is not necessarily limited thereto.

[0097] The conductive material is used to impart conductivity to the electrode, and can be used without any particular limitation as long as it has electronic conductivity without causing chemical changes in the battery that is constructed. Specific examples include graphite such as natural graphite and artificial graphite, carbon black, acetylene black, ketjen black, channel black, furnace black, lamp black, summer black, carbon-based materials such as carbon fibers, metal powders or metal fibers such as copper, nickel, aluminum, and silver, conductive whiskers such as zinc oxide and potassium titanate, conductive metal oxides such as titanium oxide, and conductive polymers such as polyphenylene derivatives, and the like, and one or more of these may be used alone or in combination. The conductive material may be contained in an amount of 0.1 to 15% by weight based on the total weight of the positive electrode active material layer.

[0098] The binder serves to improve the adhesion between the positive electrode active material particles and the adhesive strength between the positive electrode active material and the current collector. Specific examples include polyvinylidene fluoride (PVDF), vinylidene fluoride-hexafluoropropylene copolymer (PVDF-co-HFP), polyvinyl alcohol, polyacrylonitrile, carboxymethyl cellulose (CMC), starch, hydroxypropyl cellulose, regenerated cellulose, polyvinylpyrrolidone, tetrafluoroethylene, polyethylene, polypropylene, ethylene-propylene-diene polymer (EPDM), sulfonated-EPDM, styrene-butadiene rubber (SBR), fluororubber, and various copolymers thereof, and among these, one type alone or a mixture of two or more types may be used. The binder may be included in an amount of 0.1 to 15% by weight based on the total weight of the positive electrode active material layer.

[0099] The positive electrode may be manufactured by a typical method for manufacturing a positive electrode, except for using the positive electrode active material. Specifically, the positive electrode may be manufactured by dissolving or dispersing the positive electrode active material, the positive electrode, and optionally a binder and a conductive material in a solvent to prepare a positive electrode slurry composition, which is then coated on a positive electrode current collector, followed by drying and rolling.

[0100] The solvent may be a solvent commonly used in the art, such as dimethyl sulfoxide (DMSO), isopropyl alcohol, N-methylpyrrolidone (NMP), acetone, or water, and one or more of these may be used alone or in combination. The amount of the solvent used is sufficient to dissolve or disperse the positive electrode active material, conductive material, and binder, and to provide a viscosity that allows excellent thickness uniformity when applied to manufacture a positive electrode, taking into consideration the coating thickness of the slurry and the production yield.

[0101] In another embodiment, the positive electrode may be manufactured by casting the positive electrode slurry composition on a separate support, peeling the positive electrode slurry composition from the support, and laminating the resulting film on a positive electrode current collector.

[0102] According to yet another aspect of the present invention, there may be provided an electrochemical device including the above-mentioned positive electrode. The electrochemical device may be, for example, a battery or a capacitor, and more specifically, a lithium secondary battery.

[0103] Specifically, the lithium secondary battery may include a positive electrode, a negative electrode facing the positive electrode, and a separator and an electrolyte interposed between the positive electrode and the negative electrode. Here, since the positive electrode is as described above, a detailed description thereof will be omitted for convenience, and only the remaining components not described above will be described in detail below.

[0104] The lithium secondary battery may optionally further include a battery container that houses an electrode assembly of the positive electrode, the negative electrode, and the separator, and a sealing member that seals the battery container.

[0105] The negative electrode may include a negative electrode current collector and a negative electrode active material layer located on the negative electrode current collector.

[0106] The negative electrode current collector is not particularly limited as long as it has high conductivity without inducing chemical changes in the battery, and may be, for example, copper, stainless steel, aluminum, nickel, titanium, baked carbon, copper or stainless steel surface-treated with carbon, nickel, titanium, silver, or aluminum-cadmium alloy. The negative electrode current collector may generally have a thickness of 3 μm to 500 μm, and like the positive electrode current collector, the surface of the current collector may be formed with fine irregularities to strengthen the binding force of the negative electrode active material. For example, it may be used in various forms such as a film, sheet, foil, net, porous body, foam, or nonwoven fabric.

[0107] The negative electrode active material layer may be prepared by coating a negative electrode slurry composition containing the negative electrode active material, a conductive material, and optionally a binder, on the negative electrode current collector.

[0108] The negative electrode active material may be a compound capable of reversible intercalation and deintercalation of lithium. Specific examples of the negative electrode active material include carbonaceous materials such as artificial graphite, natural graphite, graphitized carbon fiber, and amorphous carbon, metallic compounds capable of alloying with lithium such as Si, Al, Sn, Pb, Zn, Bi, In, Mg, Ga, Cd, Si alloys, Sn alloys, and Al alloys, and SiO β (0<β<2), SnO 2, a metal oxide capable of doping and dedoping lithium, such as vanadium oxide or lithium vanadium oxide, or a composite containing the metallic compound and a carbonaceous material, such as a Si-C composite or a Sn-C composite, may be used. Any one or a mixture of two or more of these may be used. A thin film of metallic lithium may be used as the negative electrode active material. In addition, both low-crystalline carbon and high-crystalline carbon may be used as the carbon material. Representative examples of low-crystalline carbon include soft carbon and hard carbon, and representative examples of high-crystalline carbon include amorphous, plate-like, scaly, spherical or fibrous natural graphite or artificial graphite, kish graphite, pyrolytic carbon, mesophase pitch based carbon fiber, carbon microbeads, mesophase pitches, and high-temperature fired carbon such as petroleum or coal tar pitch derived cokes.

[0109] The negative electrode active material may be included in an amount of 80 to 99 wt % based on the total weight of the negative electrode active material layer.

[0110] The binder is a component that aids in bonding between the conductive material, the active material, and the current collector, and may be added in an amount of usually 0.1 to 10 wt% based on the total weight of the negative electrode active material layer. Examples of such binders include polyvinylidene fluoride (PVDF), polyvinyl alcohol, carboxymethyl cellulose (CMC), starch, hydroxypropyl cellulose, regenerated cellulose, polyvinylpyrrolidone, tetrafluoroethylene, polyethylene, polypropylene, ethylene-propylene-diene polymer (EPDM), sulfonated EPDM, styrene-butadiene rubber, nitrile-butadiene rubber, fluororubber, and various copolymers thereof.

[0111] The conductive material may be added as a component for further improving the conductivity of the negative electrode active material in an amount of 10% by weight or less, preferably 5% by weight or less, based on the total weight of the negative electrode active material layer. Such a conductive material is not particularly limited as long as it has conductivity without inducing a chemical change in the battery, and may be, for example, graphite such as natural graphite or artificial graphite, carbon black such as acetylene black, ketjen black, channel black, furnace black, lamp black, or thermal black, conductive fibers such as carbon fibers or metal fibers, metal powders such as carbon fluoride, aluminum, or nickel powder, conductive whiskey such as zinc oxide or potassium titanate, conductive metal oxides such as titanium oxide, or conductive materials such as polyphenylene derivatives.

[0112] In one embodiment, the negative electrode active material layer may be prepared by coating a negative electrode slurry composition prepared by dissolving or dispersing a negative electrode active material, and optionally a binder and a conductive material, in a solvent on a negative electrode current collector and drying the coating. Alternatively, the negative electrode slurry composition may be cast on a separate support, and then peeled off from the support to obtain a film, which may be laminated on the negative electrode current collector.

[0113] In another embodiment, the negative electrode active material layer may be manufactured by coating a negative electrode slurry composition prepared by dissolving or dispersing a negative electrode active material, and optionally a binder and a conductive material, in a solvent on a negative electrode current collector and drying the coating, or by casting the negative electrode slurry composition on a separate support and peeling the composition from the support to obtain a film, which may be laminated on the negative electrode current collector.

[0114] Meanwhile, in the lithium secondary battery, the separator separates the negative electrode and the positive electrode to provide a path for lithium ions to move. Any separator that is generally used as a separator in a lithium secondary battery may be used without any particular limitation. In particular, it is preferable that the separator has low resistance to ion movement of the electrolyte and has excellent electrolyte humidification ability. Specifically, a porous polymer film, for example, a porous polymer film made of a polyolefin-based polymer such as an ethylene homopolymer, a propylene homopolymer, an ethylene / butene copolymer, an ethylene / hexene copolymer, and an ethylene / methacrylate copolymer, or a laminate structure of two or more layers thereof may be used. In addition, a conventional porous nonwoven fabric, for example, a nonwoven fabric made of high-melting point glass fiber, polyethylene terephthalate fiber, etc. may be used. In addition, in order to ensure heat resistance or mechanical strength, a coated separator containing a ceramic component or a polymer material may be used, and may be selectively used as a single layer or multilayer structure.

[0115] In addition, examples of the electrolyte used in the present invention include organic liquid electrolytes, inorganic liquid electrolytes, solid polymer electrolytes, gel polymer electrolytes, solid inorganic electrolytes, and molten inorganic electrolytes that can be used in the production of lithium secondary batteries, but are not limited to these.

[0116] Specifically, the electrolyte may include an organic solvent and a lithium salt.

[0117] The organic solvent may be used without any particular limitation as long as it serves as a medium through which ions involved in the electrochemical reaction of the battery can move. Specifically, the organic solvent may be an ester solvent such as methyl acetate, ethyl acetate, γ-butyrolactone, or ε-caprolactone, an ether solvent such as dibutyl ether or tetrahydrofuran, a ketone solvent such as cyclohexanone, an aromatic hydrocarbon solvent such as benzene or fluorobenzene, dimethylcarbonate (DMC), diethylcarbonate (DEC), methylethylcarbonate (MEC), ethylmethylcarbonate (EMC), ethylene carbonate (EC), or propylene carbonate (propylene carbonate). Examples of the solvents that may be used include carbonate-based solvents such as ethylene carbonate (PC), alcohol-based solvents such as ethyl alcohol and isopropyl alcohol, nitriles such as R-CN (R is a straight-chain, branched or cyclic hydrocarbon group having 2 to 20 carbon atoms, which may contain a double bond aromatic ring or an ether bond), amides such as dimethylformamide, dioxolanes such as 1,3-dioxolane, and sulfolanes. Among these, carbonate-based solvents are preferred, and a mixture of a cyclic carbonate (e.g., ethylene carbonate or propylene carbonate) having high ionic conductivity and high dielectric constant that can improve the charge / discharge performance of a battery and a low-viscosity linear carbonate compound (e.g., ethyl methyl carbonate, dimethyl carbonate or diethyl carbonate) is more preferred. In this case, the performance of the electrolyte may be excellent if the cyclic carbonate and the chain carbonate are mixed at a volume ratio of about 1:1 to about 1:9.

[0118] The lithium salt may be used without particular limitation as long as it is a compound capable of providing lithium ions used in a lithium secondary battery. Specifically, the lithium salt is LiPF 6 , LiClO 4 , LiAsF 6 , LiBF 4 , LiSbF 6 , LiAlO 4 , LiAlCl 4 , LiCF 3 SO 3 , LiC 4 F 9 SO 3 , LiN(C 2 F 5 SO 3 ), LiN(C 2 F 5 SO 2 ) 2 , LiN(CF 3 SO 2 ) 2 , LiCl, LiI, or LiB(C 2 O 4 ) 2 etc. may be used. The concentration of the lithium salt is preferably used within the range of 0.1 to 2.0 M. When the concentration of the lithium salt is within the above range, the electrolyte has appropriate conductivity and viscosity, so that excellent electrolyte performance can be exhibited and lithium ions can move effectively.

[0119] In addition to the electrolyte components, the electrolyte may further contain one or more additives such as haloalkylene carbonate compounds such as difluoroethylene carbonate, pyridine, triethyl phosphite, triethanolamine, cyclic ethers, ethylenediamine, n-glyme, hexaphosphoric acid triamide, nitrobenzene derivatives, sulfur, quinoneimine dyes, N-substituted oxazolidinones, N,N-substituted imidazolidines, ethylene glycol dialkyl ethers, ammonium salts, pyrrole, 2-methoxyethanol, or aluminum trichloride, for the purpose of improving the life characteristics of the battery, suppressing the decrease in battery capacity, improving the discharge capacity of the battery, etc. In this case, the additives may be contained in an amount of 0.1 to 5% by weight based on the total weight of the electrolyte.

[0120] As described above, the lithium secondary battery including the positive electrode active material according to the present invention stably exhibits excellent discharge capacity, output characteristics and life characteristics, and is therefore useful in the fields of portable devices such as mobile phones, notebook computers, and digital cameras, and electric vehicles such as hybrid electric vehicles (HEVs).

[0121] The external shape of the lithium secondary battery according to the present invention is not particularly limited, and may be a cylindrical shape using a can, a square shape, a pouch shape, a coin shape, etc. Furthermore, the lithium secondary battery can be used not only as a battery cell used as a power source for a small device, but also preferably as a unit battery for a medium- to large-sized battery module including a plurality of battery cells.

[0122] According to yet another aspect of the present invention, there may be provided a battery module including the lithium secondary battery as a unit cell and / or a battery pack including the same.

[0123] The battery module or the battery pack can be used as a power source for one or more medium- to large-sized devices, such as a power tool, an electric vehicle (Electric Vehicle (EV), a hybrid electric vehicle, and a plug-in hybrid electric vehicle (PHEV), or a power storage system.

[0124] The present invention will be described in more detail below with reference to examples. However, these examples are for the purpose of illustrating the present invention, and the scope of the present invention is not to be construed as being limited by these examples.

[0125] Production Example 1. Production of positive electrode active material (a) Nickel sulfate, cobalt sulfate, and manganese sulfate were mixed in a molar ratio of 80:10:10 by a known co-precipitation method to prepare Ni 0.80 Co 0.10 Mn 0.10 (OH) 2 A hydroxide precursor was prepared.

[0126] (b) The oxide precursor, LiOH (Li / (Ni+Co+Mn) molar ratio=1.03) and TiO 2 After mixing, it is baked in a furnace. 2 While maintaining the atmosphere, the temperature was raised to 720° C. at a rate of 2° C. per minute, and a first heat treatment was carried out at 720° C. for 12 hours to obtain a lithium composite oxide.

[0127] (c) The lithium composite oxide and TiO 2 After mixing, it is baked in a furnace. 2 While maintaining the atmosphere, the temperature was raised to 700° C. at a rate of 2° C. per minute, and a second heat treatment was carried out at 700° C. for 8 hours to obtain a lithium composite oxide having a surface coated with Ti.

[0128] The TiO used in step (b) 2(mol % calculated based on the metal element in the hydroxide precursor), TiO 2 The total composition of the positive electrode active material finally obtained through step (c) confirmed by ICP analysis is shown in Table 1 below.

[0129] [Table 1]

[0130] Manufacturing Example 2. Manufacturing of lithium secondary batteries A positive electrode slurry was prepared by dispersing 92 wt% of the positive electrode active material prepared in Preparation Example 1, 4 wt% of artificial graphite, and 4 wt% of PVDF binder in 30 g of N-methyl-2-pyrrolidone (NMP). The positive electrode slurry was uniformly applied to a thin aluminum film having a thickness of 15 μm and dried in a vacuum at 135° C. to prepare a positive electrode for a lithium secondary battery.

[0131] Lithium foil was used as the counter electrode for the positive electrode, a porous polyethylene film (Celgard 2300, thickness: 25 μm) was used as the separator, and LiPF was dissolved in a solvent containing ethylene carbonate and ethyl methyl carbonate in a volume ratio of 3:7. 6 Coin cells were fabricated using an electrolyte in which Zn was present at a concentration of 1.15M.

[0132] Experimental Example 1. Composition analysis of positive electrode active material In order to confirm the change in the concentration of cobalt in the lithium composite oxide contained in the positive electrode active material produced in Production Example 1, a TEM / EDX analysis was carried out.

[0133] First, the lithium composite oxides contained in the positive electrode active material prepared in Preparation Example 1 were each selected, and then the lithium composite oxides were subjected to cross-sectional processing using an FIB (Ga-ion source), and cross-sectional TEM images were taken using a scanning electron microscope.

[0134] Next, 10 particles were selected from the multiple primary particles observed in the cross-sectional TEM image, and titanium, which is a target transition metal, was mapped through EDX analysis of the selected primary particles. The concentration change of titanium along the minor axis direction of the primary particles was confirmed through line scanning in the minor axis direction of the primary particles.

[0135] FIG 1 is a cross-sectional TEM image of the lithium composite oxide contained in the cathode active material according to Example 1, in which the direction of the arrow indicates the line scanning direction along the minor axis direction of the primary particles, and the dashed line indicates the line sum spectrum section. FIG 2 shows the line sum spectrum of titanium according to the line scanning direction shown in FIG 1. FIG 3 shows a cross-sectional TEM image of the lithium composite oxide contained in the cathode active material according to Example 1 taken at an angle different from that of FIG 1, and the EDX mapping result for titanium.

[0136] 1 to 3, it can be seen that titanium is present in the region corresponding to the core of the primary particle, which indicates that the primary particle is doped with titanium. It can also be seen that titanium is present in the region corresponding to the shell of the primary particle, which indicates that a relatively large amount of titanium is present compared to the region corresponding to the core of the primary particle. The above results indicate that the surface of the primary particle is coated with titanium.

[0137] FIG 4 is a cross-sectional TEM image of the lithium composite oxide contained in the cathode active material according to Comparative Example 1, and the direction of the arrow in FIG 4 indicates the line scanning direction along the minor axis direction of the primary particles. FIG 5 shows the line sum spectrum of titanium according to the line scanning direction shown in FIG 4, and the dashed line shows the line sum spectrum section. FIG 6 shows a cross-sectional TEM image of the lithium composite oxide contained in the cathode active material according to Comparative Example 1 taken at an angle different from that of FIG 4 and the EDX mapping result for titanium.

[0138] 4 to 6, it can be seen that titanium is present in the region corresponding to the core of the primary particle, but the amount of titanium doped into the primary particle is extremely small compared to the positive electrode active material of Example 1. It can also be seen that most of the titanium is present on the surface of the primary particle compared to the region corresponding to the core of the primary particle.

[0139] FIG. 7 is a cross-sectional TEM image of the lithium composite oxide contained in the cathode active material according to Comparative Example 4, and in FIG. 7, the direction of the arrow indicates the line scanning direction along the minor axis direction of the primary particles, and the dashed line indicates the line sum spectrum section. FIG. 8 shows the line sum spectrum of titanium according to the line scanning direction shown in FIG. 7. FIG. 9 shows a cross-sectional TEM image of the lithium composite oxide contained in the cathode active material according to Comparative Example 4 taken at an angle different from that of FIG. 7 and the EDX mapping result for titanium.

[0140] 7 to 9, it can be seen that titanium is almost uniformly distributed in the region corresponding to the core of the primary particle and the region corresponding to the shell of the primary particle.

[0141] The average titanium concentration in the region corresponding to the core and the region corresponding to the shell in the lithium composite oxide (primary particle) contained in the positive electrode active material prepared in Preparation Example 1 by the above-mentioned method was calculated, and the calculation results are shown in Table 2 below.

[0142] [Table 2]

[0143] Here, if the minor axis diameter of the primary particle selected from the cross-sectional TEM image is r, a1 is the average titanium content (mol%) measured based on all metal elements excluding lithium within the region of 0 to 0.05r from the start of the line sum spectrum, a2 is the average titanium content (mol%) measured based on all metal elements excluding lithium within the region of 0.95r to r from the start of the line sum spectrum, b1 is the average titanium content (mol%) measured based on all metal elements excluding lithium within the region of 0.05r to 0.95r from the start of the line sum spectrum.

[0144] Experimental Example 2: Evaluation of the electrochemical properties of a lithium secondary battery Charge capacity, discharge capacity and charge / discharge efficiency A charge-discharge experiment was performed on the lithium secondary battery (coin cell) manufactured in Manufacturing Example 2 using an electrochemical analyzer (Toyo, Toscat-3100) at 25°C, voltage range of 3.0V to 4.25V, and discharge rate of 0.2C to measure the charge capacity, discharge capacity, and charge-discharge efficiency.

[0145] High temperature life characteristics (cycle capacity retention rate) The same lithium secondary battery was charged / discharged twice at 25°C, voltage range 3.0V to 4.4V, and 0.1C / 0.1C, charged / discharged once at 45°C, voltage range 3.0V to 4.4V, and 0.1C / 0.1C, and then charged / discharged 50 times at 45°C, voltage range 3.0V to 4.4V, and 1.0C / 1.0C, and the ratio of the discharge capacity at the 50th cycle to the initial capacity (cycle capacity retention) was measured.

[0146] Impedance (EIS; Electrochemical Impedance Spectroscopy) characteristics After charging the same lithium secondary battery at 1C, the resistance was measured within a frequency range (10 kHz to 0.01 Hz, 10 mV) using electrochemical impedance spectroscopy. ct (charge transfer resistance) value was calculated.

[0147] Output Efficiency The same lithium secondary battery was subjected to a charge-discharge experiment at 25°C, voltage range of 3.0V to 4.3V, and discharge rate of 0.1C to 5.0C using an electrochemical analyzer (Toyo, Toscat-3100) to measure the output efficiency (C-rate) of 5.0C / 0.1C.

[0148] The measurement results are shown in Table 3 below.

[0149] [Table 3]

[0150] Referring to the results of Examples 1 to 3 and Comparative Examples 1 to 4 in Table 3, it can be seen that in the case of Comparative Example 1 and Comparative Example 2, in which the {(a1+a2) / 2} / b1 value is greater than 3.25, the EIS and cycle capacity retention rate show better indicators than those of Examples 1 to 3, but the improvement effects on the charge capacity, discharge capacity, charge / discharge efficiency, and power efficiency (c-rate) are negligible.

[0151] Furthermore, in the case of Comparative Example 3 and Comparative Example 4, in which the {(a1+a2) / 2} / b1 value is smaller than 1.4, it can be confirmed that the improvement effect is insignificant compared to Examples 1 to 3 in all indexes except for the output efficiency (c-rate).

[0152] In other words, it can be confirmed that the lithium secondary batteries using the positive electrode active materials according to Examples 1 to 3, compared to Comparative Examples 1 to 4, can show a general improvement effect in various indices related to electrochemical characteristics.

[0153] Referring to the results of Examples 4 to 6 and Comparative Examples 7 to 10 in Table 3, it can be seen that in the case of Comparative Example 7 and Comparative Example 8, in which the {(a1+a2) / 2} / b1 value is greater than 3.25, the EIS and cycle capacity retention rate show better indicators than those of Examples 4 to 6, but the improvement effects on the charge capacity, discharge capacity, charge / discharge efficiency, and power efficiency (c-rate) are negligible.

[0154] Also, in the case of Comparative Example 9 and Comparative Example 10, in which the {(a1+a2) / 2} / b1 value is smaller than 1.4, it can be confirmed that all the indices except for the output efficiency (c-rate) are lower than those of Examples 1 to 3.

[0155] In other words, it can be confirmed that the lithium secondary batteries using the positive electrode active materials according to Examples 1 to 3 show a general improvement effect in various indices related to electrochemical characteristics compared to the lithium secondary batteries using the positive electrode active materials according to Comparative Examples 1 to 4.

[0156] Meanwhile, referring to the results in Table 2, it can be seen that the titanium content in the core and shell of the primary particles constituting the positive electrode active materials according to Comparative Examples 5 and 6 is either too low or too high.

[0157] The {(a1+a2) / 2} / b1 value of the positive electrode active material of Comparative Example 5 was less than 3.25. However, referring to the results of Table 3, it can be seen that the lithium secondary battery using the positive electrode active material of Comparative Example 5, in which the titanium content in the core and shell of the primary particles is excessively low, generally showed negligible improvement in various indices related to electrochemical characteristics.

[0158] In addition, the {(a1+a2) / 2} / b1 value of the positive electrode active material of Comparative Example 6 was smaller than 3.25. However, referring to the results of Table 3, it can be seen that the lithium secondary battery using the positive electrode active material of Comparative Example 6, in which the titanium content in the core and shell of the primary particles is excessively high, has negligible improvements in charge capacity, discharge capacity, and charge / discharge efficiency.

Claims

1. A positive electrode active material comprising a lithium composite oxide containing at least nickel and titanium, The lithium composite oxide is a secondary particle formed by agglomeration of a plurality of primary particles, A titanium content (mol%) calculated from a titanium line sum spectrum obtained through EDX line scanning in a short axis direction of a primary particle selected from a cross-sectional TEM image of the lithium composite oxide satisfies the following Formula 1: [Formula 1] 1.464≦{(a1+a2) / 2} / b1≦2.502 (Here, if the minor axis diameter of the primary particle selected from the cross-sectional TEM image is r, a1 is the average titanium content (mol%) measured based on all metal elements excluding lithium within the range of 0 to 0.05r from the start of the line sum spectrum; a2 is the average titanium content (mol%) measured based on all metal elements excluding lithium within the region of 0.95r to r from the start of the line sum spectrum; b1 is the average titanium content (mol%) measured based on all metal elements excluding lithium within the region of 0.05r to 0.95r from the start of the line sum spectrum.

2. The positive electrode active material according to claim 1 , wherein titanium is present in the lithium composite oxide in an amount of more than 0.2 mol % and less than 3.3 mol % based on all metal elements excluding lithium.

3. The positive electrode active material according to claim 1 , wherein at least a portion of titanium in the lithium composite oxide is present in a doped state within the primary particles.

4. 3. The positive electrode active material of claim 2, wherein an average titanium content (mol%) measured based on all metal elements excluding lithium within a region of 0.05r to 0.95r from the start of the line sum spectrum is more than 0.083 mol% and less than 0.832 mol%.

5. The positive electrode active material according to claim 1 , wherein the lithium composite oxide further contains at least one metal element selected from the group consisting of cobalt, manganese, and aluminum.

6. The positive electrode active material according to claim 1 , wherein the primary particles are represented by the following Chemical Formula 1. [Case 1] <h2 style=";text-align:left;direction:ltr">Li<h2 style=";text-align:left;direction:ltr"> w <h2 style=";text-align:left;direction:ltr"> Ni<h2 style=";text-align:left;direction:ltr"> 1-(x+y+z) <h2 style=";text-align:left;direction:ltr"> Ti<h2 style=";text-align:left;direction:ltr"> x <h2 style=";text-align:left;direction:ltr"> 11<h2 style=";text-align:left;direction:ltr"> y <h2 style=";text-align:left;direction:ltr"> 12<h2 style=";text-align:left;direction:ltr"> z <h2 style=";text-align:left;direction:ltr"> O<h2 style=";text-align:left;direction:ltr"> 2 (where: M1 is at least one selected from Co, Mn, and Al; M2 is at least one selected from P, Sr, Ba, Zr, Co, Mn, Al, W, Ce, Hf, Ta, F, Mg, Cr, V, Fe, Zn, Si, Y, Ga, Sn, Mo, Ge, Nd, B, Nb, Gd, and Cu; M1 and M2 are different from each other, 0.5≦w≦1.5, 0≦x≦0.50, 0≦y≦0.40, 0≦z≦0.20.)

7. The primary particles are core-shell particles including a core and a shell present on at least a part of the surface of the core, The positive electrode active material according to claim 1 , wherein a metal oxide represented by the following formula 2 is present in the shell. [Case 2] Li a Three b M3 c O d (where: M3 is at least one selected from Ni, Mn, Co, Fe, Cu, Nb, Mo, Ti, Al, Cr, Zr, Zn, Na, K, Ca, Mg, Pt, Au, B, P, Eu, Sm, W, Ce, V, Ba, Ta, Sn, Hf, Gd, and Nd; 0≦a≦10, 0<b≦8, 0≦c≦8, 2≦d≦13.

8. The positive electrode active material according to claim 7 , wherein at least one selected from titanium oxide and lithium titanium oxide is present within the shell.

9. A positive electrode comprising the positive electrode active material according to any one of claims 1 to 8.

10. A lithium secondary battery using the positive electrode according to claim 9.

Citation Information

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