Lithium nickel manganese cobalt composite oxide as a positive electrode active material for rechargeable lithium ion batteries

US2022278321A1 · US · A1

Patent metadata
FieldValue
Publication numberUS-2022278321-A1
Application numberUS-202017623682-A
CountryUS
Kind codeA1
Filing dateJul 2, 2020
Priority dateJul 3, 2019
Publication dateSep 1, 2022
Grant date

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Abstract

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A positive electrode active material powder suitable for lithium-ion batteries, comprising lithium transition metal-based oxide particles, said particles comprising a core and a surface layer, said surface layer being on top of said core, said particle comprising the elements: Li, M′ and oxygen, wherein M′ has a formula: M′=Ni z Mn y Co x A k , wherein A is a dopant, 0.80≤z≤0.90, 0.05≤y≤0.20, 0.05≤x≤0.20, x+y+z+k=1, and 0≤k≤0.01, said positive electrode active material powder having a median particle size D50 ranging from 5 μm to 15 μm and a surface layer thickness ranging from 10 nm to 200 nm, said surface layer comprising sulfate ion (SO 4 2− ) in a content superior or equal to 6.78·z−4.83 wt % and inferior or equal to 6.78·z−4.33 wt % with respect to the total weight of the positive electrode active material.

First claim

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1 - 15 . (canceled) 16 . A positive electrode active material powder for lithium-ion batteries, comprising lithium transition metal-based oxide particles, said particles comprising a core and a surface layer, said surface layer being on top of said core, said particle comprising the elements: Li, M′ and oxygen, wherein M′ has a formula: M′=Ni z Mn y Co x A k , wherein A is a dopant, 0.80≤z≤0.90, 0.05≤y≤0.20, 0.05≤x≤0.20, x+y+z+k=1, and 0≤k≤0.01, said positive electrode active material powder having a median particle size D50 ranging from 5 μm to 15 μm and a surface layer thickness ranging from 10 nm to 200 nm, said surface layer comprising sulfate ion (SO 4 2− ) in a content superior or equal to 6.78·−4.83 wt % and inferior or equal to 6.78·−4.33 wt % with respect to the total weight of the positive electrode active material. 17 . The positive electrode active material powder according to claim 16 , wherein said lithium transition metal-based oxide particles further comprise aluminum and have an Al surface coverage A1/A2 that is superior or equal to 100, wherein Al is an atomic ratio Al/(Ni+Mn+Co+Al+S) of the elements Al, Ni, Mn, Co, and S contained in the surface layer, said atomic ratio A1 being obtained by XPS spectrum analysis and wherein A2 is an atomic ratio Al/(Ni+Mn+Co+Al+S) of the total Al, Ni, Mn, Co and S contained the particles and obtained by ICP. 18 . The positive electrode active material powder according to claim 16 , having a carbon content of less than 200 ppm. 19 . The positive electrode active material powder according to claim 16 , having a Li/(Ni+Mn+Co+A) atomic ratio or a Li/(Ni+Mn+Co+A+Al) atomic ratio superior or equal to 0.96 and inferior or equal to 1.05. 20 . The positive electrode active material powder according to claim 17 , wherein said surface layer exhibits an Al2p peak with a maximum peak intensity in the binding energies range from 73.0±0.2 eV to 74.5±0.2 eV, said intensity being obtained by XPS spectrum analysis. 21 . The positive electrode active material powder according to claim 17 , wherein said surface layer of lithium transition metal-based oxide particles comprises a LiAlO 2 phase and a LiM″ 1-a Al a O 2 phase wherein M″ comprising Ni, Mn, and Co, said LiAlO 2 phase being present in the surface layer in a content superior or equal to 0.10 at % and inferior or equal to 0.30 at % with respect to the total atomic content of M′ in the positive electrode active material powder, said LiM″ 1-a Al a O 2 phase being present in the surface layer in a content inferior to 0.14 at % with respect to the total atomic content of M′ in the positive electrode active material powder. 22 . The positive electrode active material powder according to claim 16 , wherein said lithium transition metal-based oxide particles have a sulfate ion surface coverage S 1/S2 that is superior to 0.85 and inferior or equal to 2.00, wherein S1 is an amount of sulfate ion contained in the surface layer, and wherein S2 is a total amount of sulfate ion contained in the particles, both obtained by ICP. 23 . The positive electrode active material powder according to claim 17 , having a general formula: Li 1+a′ (Ni z′ Mn y′ Co x′ Al v S w ) 1-k A k ) 1-a′ O 2 , wherein only A is a dopant, wherein 0.80≤z′≤0.90, 0.05≤y′≤0.20, 0.05≤x′≤0.20, x′+y′+z′+v+w+k=1, 0.0018≤v≤0.0053, 0.006≤w≤0.012, −0.05≤a′≤0.05, and 0≤k≤0.01. 24 . The positive electrode active material powder according to claim 16 , wherein A is either one or more of Al, B, S, Mg, Zr, Nb, W, Si, Ba, Sr, Ca, Zn, Cr, V, Y, and Ti, wherein the amount of each of the elements of A is superior to 100 ppm with respect to the total weight of the positive electrode active material powder. 25 . The positive electrode active material powder according to claim 16 , wherein the thickness of the surface layer corresponds to a minimal distance D defined either as: D (in nm)= L S1 −L S2 , wherein L S1 is a first point location at the center of a particle, L S2 is a second point location in a line defined between said first point location and a geometric center of said particle, wherein a content of S is measured by TEM-EDS at the second point location L S2 is superior or equal to 0 at % and inferior or equal to 5.0 at % of a content of S measured at the first point location, said second content of S (S 2 ) being defined as: S 2 (in at %)= S 3 ±0.1 at %, S 3 being a content of S (in at %) at a third point location (LS 3 ) in said line, said third point being located at any location between the geometric center of said particle and the second point location L S2 . 26 . The positive electrode active material powder according to claim 25 , wherein: S 1 −S 2 ≥10.0 at % S 1 being the first content of S (in at %) at the first point location (LS 1 ). 27 . The positive electrode active material powder according to claim 26 , wherein Al is present in the surface layer in a content l defined as: l ⁢ ( mol ⁢ % ) = ( Al M * ) ICP × ( Al surface / Al total ) with: ( Al M * ) ICP is the atomic ratio of Al content on M* content in the powder measured by ICP, and A ⁢ l surface / A ⁢ l total = 4 3 ⁢ π ⁡ ( Area ⁢ 2 ) 3 - 4

Assignees

Inventors

Classifications

  • Micrometer sized, i.e. from 1-100 micrometer · CPC title

  • Batteries in motive systems, e.g. vehicle, ship, plane · CPC title

  • Electrodes based on mixed oxides or hydroxides, or on mixtures of oxides or hydroxides, e.g. LiCoOx · CPC title

  • Positive electrodes · CPC title

  • C01G53/50Primary

    of the type (MnO2)n-, e.g. Li(NixMn1-x)O2 or Li(MyNixMn1-x-y)O2 · CPC title

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What does patent US2022278321A1 cover?
A positive electrode active material powder suitable for lithium-ion batteries, comprising lithium transition metal-based oxide particles, said particles comprising a core and a surface layer, said surface layer being on top of said core, said particle comprising the elements: Li, M′ and oxygen, wherein M′ has a formula: M′=Ni z Mn y Co x A k , wherein A is a dopant, 0.80≤z≤0.90, 0.05≤y≤0.20, 0…
Who is the assignee on this patent?
Umicore Nv, Umicore Korea Ltd
What technology area does this patent fall under?
Primary CPC classification C01G53/50. Mapped technology areas include Chemistry & Metallurgy.
When was this patent published?
Publication date Thu Sep 01 2022 00:00:00 GMT+0000 (Coordinated Universal Time) (A1). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 6 related publications on this page (citations in our corpus or others sharing the same primary CPC).