WO2022138660A1 - スピネル型マンガン酸リチウム及びその製造法並びにその用途 - Google Patents
スピネル型マンガン酸リチウム及びその製造法並びにその用途 Download PDFInfo
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Definitions
- the present invention relates to a spinnel-type lithium manganate and a method for producing the same, and more specifically, a phosphate-containing lithium spinel-type lithium manganate and a method for producing the same, and a lithium ion using the same as an electrode. Regarding the next battery.
- Lithium secondary batteries have a higher energy density than other storage batteries, so they are widely used as storage batteries for mobile terminals.
- research aimed at further improvement in performance has been promoted, such as application to large-sized, large-capacity and high-output applications such as stationary and in-vehicle use.
- Cobalt-based materials (LiCoO 2 ) are mainly used for small consumer batteries such as mobile phones as the positive electrode material for current lithium secondary batteries, and nickel-based materials (LiCoO 2) for stationary and in-vehicle use. LiNi 0.8 Co 0.15 Al 0.05 O 2 ) and nickel-cobalt-manganese ternary materials (LiNi 0.5 Co 0.2 Mn 0.3 O 2 etc.) are mainly used. However, cobalt raw materials and nickel raw materials are not abundant in terms of resources and are expensive, and their output characteristics are not very high.
- spinel-type lithium manganate which is one of the manganese-based materials, is a material suitable for applications requiring large batteries because it is rich in manganese as a raw material, inexpensive, and excellent in safety. one of.
- Patent Document 1 and Patent Document 2 both propose a spinnel-type lithium manganate containing a phosphate, but there is room for improvement in charge / discharge characteristics at high temperatures, particularly carbon counterpolar charge / discharge characteristics. There is.
- spinel-type lithium manganate is excellent in output characteristics
- a battery having output characteristics equivalent to that of a capacitor and having a high energy density is desired due to further improvement in characteristics.
- An object of the present invention is to provide a spinel-type lithium manganate having excellent charge / discharge characteristics at high temperatures, particularly carbon counterpolar charge / discharge characteristics, low resistance, and excellent output characteristics, and further to provide spinel-type lithium manganate. It provides a lithium secondary battery used for a positive electrode.
- the present inventors have made extensive studies on spinel-type lithium manganate. As a result, it has been found that the present invention having the following gist can achieve the above-mentioned problems.
- Phosphate is contained, and the chemical formula Li 1 + X Mn 2-XY MY O 4 (in the formula, 0.02 ⁇ X ⁇ 0.20, 0.05 ⁇ Y ⁇ 0.30, M.
- spinel-type lithium manganate having a relative standard deviation of secondary particle size of 25% or more and 45% or less.
- a manganese compound, a lithium compound, a compound containing the element M according to claim 1, a phosphoric acid compound and a boron compound are added to a solution to prepare a slurry in which a mixture thereof is dispersed, and the average particle size of the mixture is prepared. Is 1 ⁇ m or less, the slurry is granulated by spray drying, and then fired at 700 ° C. or higher and 960 ° C. or lower in the air or in a high-concentration oxygen atmosphere (including in a pure oxygen atmosphere) to be crushed.
- the method for producing a spinnel-type lithium manganate according to any one of the above [1] to [8].
- the spinel-type lithium manganate of the present invention When used as a positive electrode material for a lithium secondary battery, it has excellent charge / discharge characteristics at high temperatures, particularly carbon counter electrode charge / discharge characteristics, and has low resistance and output characteristics. It will be possible to provide excellent lithium secondary batteries.
- the spinel-type lithium manganate of the present invention contains a phosphate.
- the phosphate contained is not particularly limited, and is, for example, a phosphate of lithium such as Li 3 PO 4 , Li PO 3 , and sodium such as Na 3 PO 4, NaH 2 PO 4 , and Na 2 HPO 4 .
- Phosphates, potassium phosphates such as K3 PO 4 , KH 2 PO 4 , and K 2 HPO 4 are exemplified.
- Li 3 PO 4 and Li PO 3 are preferable, and Li 3 PO 4 is more preferable.
- the inclusion of the phosphate in the spinel-type lithium manganate makes it possible to obtain excellent charge / discharge characteristics at high temperatures when used as a positive electrode active material for a lithium secondary battery.
- the properties of the phosphate contained are not particularly limited, and are crystalline, crystalline and porous, crystalline and dense, amorphous, and amorphous. Examples thereof include those having a porous state and those having an amorphous state and being in a dense state, but the present invention is not limited thereto.
- the spinel-type lithium manganate of the present invention has a chemical formula of Li 1 + X Mn 2-XY MY O 4 (in the formula, 0.02 ⁇ X ⁇ 0.20, 0.05 ⁇ Y ⁇ 0.30, and M Is Al or Mg.). If the value of X is less than 0.02, the capacity is likely to decrease due to charging / discharging at a high temperature, and if it exceeds 0.20, a sufficient charging / discharging capacity cannot be obtained. Further, if the value of Y is less than 0.05, the capacity is likely to decrease due to charging / discharging at a high temperature, and if it exceeds 0.30, a sufficient charging / discharging capacity cannot be obtained.
- X and Y of spinel-type lithium manganate can be obtained from composition analysis. Examples of the method include inductively coupled plasma emission spectrometry and atomic absorption spectrometry.
- the spinel-type lithium manganate of the present invention has a pore volume of 0.003 cm 3 / g or more and 0.2 cm 3 / g or less of pores having a pore diameter of 0.6 ⁇ m or less.
- the pore volume of pores with a pore diameter of 0.6 ⁇ m or less is 0.003 cm 3 / g or more and 0.2 cm 3 / g or less, so that when used as a positive electrode for a lithium ion secondary battery, spinel-type lithium manganate biennial is used. Since the electrolytic solution is contained inside the secondary particles and the contact area between the spinel-type lithium manganate particles and the electrolytic solution is increased, the resistance is reduced and the output characteristics are improved.
- the electrolytic solution contained inside the spinnel-type lithium manganate secondary particles becomes insufficient, and the spinel-type lithium manganate is insufficient.
- the contact area between the particles and the electrolytic solution is reduced and the resistance is increased, and as a result, the output characteristics are likely to be deteriorated, which is not preferable.
- the pore volume of the pores having a pore diameter of 0.6 ⁇ m or less is larger than 0.2 cm 3 / g, the density of the positive electrode is likely to decrease, and the electrolytic solution contained inside the spinel-type lithium manganate secondary particles is contained.
- the pore volume of the pores having a pore diameter of 0.6 ⁇ m or less is preferably 0.004 cm 3 / g or more and 0.15 cm 3 / g or less, and 0.015 cm 3 / g or more and 0.1 cm 3 / g or less. Is more preferable.
- the pore volume of spinel-type lithium manganate can be measured by the mercury intrusion method.
- the spinel-type lithium manganate of the present invention has a relative standard deviation of the secondary particle size of 25% or more and 45% or less.
- the relative standard deviation of the secondary particle size is 25% or more and 45% or less, the particle size distribution of the secondary particles becomes sharp, and as a result, the spinel-type lithium manganate when used as a positive electrode of a lithium ion secondary battery
- the mixing uniformity of the conductive agent and the binder is increased, the charge / discharge cycle characteristics are improved, and the resistance is reduced.
- the relative standard deviation of the secondary particle size is preferably 25% or more and 40% or less, and more preferably 27% or more and 35% or less.
- the reaction of capturing a small amount of hydrogen fluoride contained in the electrolytic solution of the lithium secondary battery with a phosphate is rapid.
- the elution of manganese due to the reaction between hydrogen fluoride and spinel-type lithium manganate is further suppressed, and the capacity decrease due to charge / discharge at high temperature is further suppressed, so that the phosphorus / manganese molar ratio is 0. It is preferably 0015 or more and 0.1 or less, and more preferably 0.002 or more and 0.05 or less.
- the spinel-type lithium manganate of the present invention can obtain excellent charge / discharge characteristics at high temperatures, reduce resistance, and have more excellent output characteristics.
- the BET specific surface area is preferably 0.8 m 2 / g or more and 5.0 m 2 / g or less, and 1.0 m 2 / g or more and 4.0 m 2 / g or less. Is more preferable.
- the lithium diffusion distance in the spinel-type lithium manganate particles is reduced, and it is possible to obtain better output characteristics.
- the average particle size of the secondary particles is preferably 4 ⁇ m or more and 20 ⁇ m or less, and more preferably 5 ⁇ m or more and 10 ⁇ m or less, because the filling property of the positive electrode mixture can be further improved.
- the spinel -type lithium manganate of the present invention has a larger charge / discharge capacity when used as a positive electrode active material of a lithium secondary battery, and can obtain better charge / discharge characteristics at high temperatures.
- the content is preferably 0.8 wt% or less, more preferably 0.5 wt% or less.
- the spinel-type lithium manganate of the present invention has a larger charge / discharge capacity when used as a positive electrode active material of a lithium secondary battery, has higher crystallinity, and can obtain better charge / discharge characteristics at high temperatures. Therefore, the Na content is preferably 3,000 wtppm or less, more preferably 1,500 wtppm or less, and even more preferably 1,000 wtppm or less.
- the spinel-type lithium manganate of the present invention is prepared by adding a manganese compound, a lithium compound, a compound containing the element M according to claim 1, a phosphoric acid compound and a boron compound to a solution to prepare a slurry in which a mixture thereof is dispersed.
- the average particle size of the mixture is 1 ⁇ m or less, and after granulating the slurry by spray drying, the temperature is 700 ° C. or higher and 960 ° C. or lower in the air or in a high-concentration oxygen atmosphere (including in a pure oxygen atmosphere). It is obtained by firing in and crushing.
- the average particle size of the mixture exceeds 1 ⁇ m, the pore volume of the pores having a pore diameter of 0.6 ⁇ m or less tends to be smaller than 0.003 cm 3 .
- the manganese compound, the lithium compound, the compound containing the element M according to claim 1, the phosphoric acid compound, and the boron compound may all be water-soluble substances.
- the manganese compound is not particularly limited, and examples thereof include electrolytic manganese dioxide, Mn 3 O 4 , Mn 2 O 3 , and the like, but the manganese compound is not limited thereto.
- the lithium compound is not particularly limited, and examples thereof include lithium carbonate, lithium hydroxide, lithium nitrate, lithium chloride, lithium iodide, and lithium oxalate, but the present invention is not limited thereto.
- the phosphoric acid compound is not particularly limited, and is, for example, a phosphate of lithium such as Li 3 PO 4 , Li PO 3 , a phosphate of sodium such as Na 3 PO 4 , NaH 2 PO 4 , and Na 2 HPO 4 , K 3 Phosphate of potassium such as PO 4 , KH 2 PO 4 , K 2 HPO 4 , etc., Phosphate of magnesium such as Mg 3 (PO 4 ) 2 , Mg HPO 4 , Mg (H 2 PO 4 ) 2 , NH 4 Examples include, but are not limited to, phosphoric acid of ammonium such as H 2 PO 4 , (NH 4 ) 2 HPO 4 , and hydrogen phosphate such as H 3 PO 4 .
- a phosphate of lithium such as Li 3 PO 4 , Li PO 3
- a phosphate of sodium such as Na 3 PO 4 , NaH 2 PO 4 , and Na 2 HPO 4
- K 3 Phosphate of potassium such as PO
- the compound containing the element of M (Al or Mg) according to claim 1 is not particularly limited, and examples thereof include Al (OH) 3 , AlOOH, Al 2 O 3 , Mg (OH) 2 , and MgO. However, it is not limited to these.
- a slurry in which a mixture of a manganese compound, a lithium compound, a compound containing the element M according to claim 1, a phosphoric acid compound, and a boron compound is dispersed has an average particle size of 1 ⁇ m or less, but 0.3 ⁇ m or more. It is preferably 0.7 ⁇ m or less.
- Such an average particle size can be obtained by adding the compound to the solution and pulverizing and mixing.
- the pulverizing and mixing device for example, a wet medium stirring type mill, a ball mill, a vibration mill and the like can be used.
- the manganese compound, the lithium compound, the compound containing the element M according to claim 1, the phosphoric acid compound, and the boron compound may be in a state of being partially or completely dissolved in water.
- Examples of the solution to which the compound is added include pure water and water.
- the slurry obtained by wet pulverization and mixing is granulated by spray drying.
- a normal spray dryer can be used in which the slurry is sprayed with a rotating disk or a fluid nozzle and the droplets are dried with hot air.
- the firing for obtaining the spinel-type lithium manganate of the present invention is carried out in the air or in a high-concentration oxygen atmosphere (including in a pure oxygen atmosphere), that is, in an oxygen atmosphere having an oxygen content of 18 to 100 vol%. Perform at 700 ° C. or higher and 960 ° C. or lower. At a temperature lower than 700 ° C., the pore volume of the pores having a pore diameter of 0.6 ⁇ m or less of the spinel-type lithium manganate becomes too large, and the density tends to decrease when the spinel-type lithium manganate is used as a positive electrode, and the temperature is 960 ° C.
- the firing is preferably performed at 750 ° C. or higher and 850 ° C. or lower.
- the spinel-type lithium manganate of the present invention is preferably washed with water to remove the boron compound in order to improve the charge / discharge cycle characteristics and reduce the resistance. It is preferable to remove the boron compound by washing with water until the amount becomes 100 wtppm or less.
- the mesh size of the sieve is preferably 200 ⁇ m or less, more preferably 150 ⁇ m or less.
- the phosphate-containing spinnel-type lithium manganate of the present invention for the positive electrode of a lithium secondary battery, it has excellent charge / discharge cycle characteristics at high temperatures and low resistance, which could not be obtained in the past. It is possible to configure a lithium secondary battery with excellent output characteristics.
- the configuration of the lithium secondary battery other than the positive electrode is not particularly limited, but the negative electrode is made of a material that occludes and releases Li, for example, a carbon-based material, a tin oxide-based material, Li 4 Ti 5 O 12 , SiO, Li.
- Examples include materials that form alloys.
- Examples of the material forming the alloy with Li include silicon-based materials and aluminum-based materials.
- Examples of the electrolyte include an organic electrolytic solution in which a Li salt and various additives are dissolved in an organic solvent, a Li ion conductive solid electrolyte, and a combination thereof.
- composition analysis measurement of SO 4 content, Na content, and boron content>
- the composition, SO4 content, Na content, and boron content of the spinel-type lithium manganate obtained in Examples and Comparative Examples were determined by dissolving the spinel-type lithium manganate in a mixed aqueous solution of hydrochloric acid and hydrogen peroxide. Analysis was performed with a coupled plasma emission spectrometer (trade name: ICP-AES, manufactured by Parkin Elmer Japan).
- the pore volume was measured with an automatic mercury porosimeter pore distribution measuring device (trade name: AutoPore V9600, manufactured by MICROMERITICS). The mercury intrusion pressure was 0.48 to 33,000 psia.
- the BET specific surface area of the treated sample was measured by a one-point method using a BET measuring device (trade name: MICROMERITICS DeSorb III, manufactured by Shimadzu Corporation) using a mixed gas of 30% nitrogen-70% helium as an adsorption gas. ..
- a particle size distribution measuring device (trade name: MT3000II series, manufactured by MicrotracBEL) was used to measure the average particle size ( D50 ) of the secondary particles of lithium manganate and the standard deviation of the particle size.
- the relative standard deviation of the secondary particle size was calculated based on the following formula.
- Relative standard deviation (%) (standard deviation of particle size) / (average particle size) x 100 ⁇ Measurement of initial capacity, measurement of DC resistance>
- the positive electrodes were 1.0 g of spinnel-type lithium manganate obtained in Examples and Comparative Examples, 0.032 g of acetylene black (trade name: Denka Black, manufactured by Denka), and 10 wt% polyvinylidene fluoride / N-methyl-2-pyrrolidone.
- the battery was charged to a capacity of 50% of the initial capacity, and the DC resistance was measured at 24 ° C.
- the DC resistance was charged at a current of 2 mA for 10 seconds to measure the closed circuit voltage, then discharged at a current of 0.2 mA for 100 seconds and paused for 1 hour, and then charged at a current of 5 mA for 10 seconds to measure the closed circuit voltage.
- discharge at a current of 0.2 mA for 250 seconds and pause for 1 hour then charge at a current of 10 mA for 10 seconds to measure the closed circuit voltage, and then discharge at a current of 0.2 mA for 500 seconds and pause for 1 hour.
- the closed circuit voltage with respect to the current value was plotted, and the gradient was taken as the DC resistance.
- a rotation / revolution mixer (trade name: AR-100, manufactured by Shinky) to prepare a negative electrode material slurry
- the obtained negative electrode material slurry is applied to a copper foil, dried at 150 ° C. for 30 minutes, and then has a diameter of 16.
- one cycle of constant current constant voltage charge-constant current discharge was performed at a cell voltage of 4.25 V and 3.0 V at a current of 0.1 mA at 24 ° C.
- a constant current constant voltage charge-constant current discharge was performed for one cycle at a current of 0.2 mA between a cell voltage of 4.25 V and 3.0 V, and the discharge capacity was defined as the cell capacity.
- the cell voltage is between 4.25V and 3.0V
- 50 cycles of constant current constant voltage charge-constant current discharge are performed at a current density of 1 hour discharge rate with respect to the battery capacity, and the 50th cycle is performed.
- the carbon counter electrode charge / discharge cycle maintenance rate was obtained from the ratio of the discharge capacity in the first cycle.
- the end condition of the constant voltage charging was the time when the charging current was attenuated to 1/10 of the constant current charging.
- Example 1 374 g of lithium carbonate, 1533 g of electrolytic manganese dioxide, 73 g of aluminum hydroxide, 15 g of trilithium phosphate and 3 g of boric acid are added to pure water to prepare a 10 L slurry, and a crusher (trade name: Dynomill, manufactured by Symmal Enterprises) is prepared. Was crushed for 3 hours.
- a crusher trade name: Dynomill, manufactured by Symmal Enterprises
- D50 average particle size of a mixture of lithium carbonate, electrolytic manganese dioxide, aluminum hydroxide, trilithium phosphate and boric acid with a particle size distribution measuring device (trade name: MT3000II series, manufactured by MicrotracBEL), 0. It was 6 ⁇ m.
- Spray drying was performed at a hot air inlet temperature of 250 ° C.
- 300 g of dried granule particles were fired at 750 ° C. for 6 hours while circulating air at a rate of 5 L / min in a box-type furnace, and cooled to room temperature.
- the rate of temperature increase was 100 ° C./hr
- the rate of temperature decrease was 20 ° C./hr from 800 ° C. to 600 ° C. and 100 ° C./hr from 600 ° C. to room temperature.
- pure water is added, the mixture is stirred for 1 hour, filtered, dried at 150 ° C., crushed with a powerful small crusher (trade name: rotary crusher, manufactured by Osaka Chemical Co., Ltd.), and passed through a sieve with an opening of 150 ⁇ m.
- a phosphate-containing spinnel-type lithium manganate were fired at 750 ° C. for 6 hours while circulating air at a rate of 5 L / min in a box-type furnace, and cooled to room temperature.
- the rate of temperature increase was 100
- the composition of the obtained phosphate-containing spinel-type lithium manganate was Li 1.10 Mn 1.80 Al 0.10 O 4 .
- the phosphate-containing spinel-type lithium manganate obtained from the XRD measurement was No. 1 of JCPDS. 35-782 (LiMn 2 O 4 ) and No. It was a mixed phase of 25-1030 (Li 3 PO 4 ).
- Phosphorus / manganese molar ratio Phosphorus / manganese molar ratio, pore volume of pores with pore diameter of 0.6 ⁇ m or less, BET ratio surface area, average particle diameter of lithium manganate secondary particles, relative standard deviation of lithium manganate secondary particle diameter, SO 4
- Table 1 shows the measurement results of the amount, Na amount, and B amount (hereinafter referred to as measurement results), and Table 2 shows the battery performance.
- Figure 1 shows the pore distribution of phosphate-containing spinel-type lithium manganate.
- Example 2 A phosphate-containing spinel-type lithium manganate was obtained in the same manner as in Example 1 except that the amount of boric acid was 0.6 g and the firing temperature was 900 ° C.
- the composition of the obtained phosphate-containing spinel-type lithium manganate was Li 1.09 Mn 1.81 Al 0.10 O 4 .
- the phosphate-containing spinel-type lithium manganate obtained from the XRD measurement was No. 1 of JCPDS. 35-782 (LiMn 2 O 4 ) and No. It was a mixed phase of 25-1030 (Li 3 PO 4 ).
- the measurement results are shown in Table 1, and the battery performance is shown in Table 2.
- Example 3 A phosphate-containing spinel-type lithium manganate was obtained in the same manner as in Example 1 except that the firing temperature was set to 800 ° C.
- the composition of the obtained phosphate-containing spinel-type lithium manganate was Li 1.10 Mn 1.80 Al 0.10 O 4 .
- the phosphate-containing spinel-type lithium manganate obtained from the XRD measurement was No. 1 of JCPDS. 35-782 (LiMn 2 O 4 ) and No. It was a mixed phase of 25-1030 (Li 3 PO 4 ).
- the measurement results are shown in Table 1, and the battery performance is shown in Table 2.
- Example 4 A phosphate-containing spinel-type lithium manganate was obtained in the same manner as in Example 1 except that the firing temperature was set to 900 ° C.
- the composition of the obtained phosphate-containing spinel-type lithium manganate was Li 1.11 Mn 1.79 Al 0.10 O 4 .
- the phosphate-containing spinel-type lithium manganate obtained from the XRD measurement was No. 1 of JCPDS. 35-782 (LiMn 2 O 4 ) and No. It was a mixed phase of 25-1030 (Li 3 PO 4 ).
- the measurement results are shown in Table 1, and the battery performance is shown in Table 2.
- Example 5 Phosphate-containing spinel-type manganese in the same manner as in Example 1 except that the amount of trilithium phosphate was 31 g, the amount of boric acid was 1 g, and the firing temperature was 810 ° C. Obtained lithium acid.
- the composition of the obtained phosphate-containing spinel-type lithium manganate was Li 1.09 Mn 1.81 Al 0.10 O 4 .
- the phosphate-containing spinel-type lithium manganate obtained from the XRD measurement was No. 1 of JCPDS. 35-782 (LiMn 2 O 4 ) and No. It was a mixed phase of 25-1030 (Li 3 PO 4 ).
- the measurement results are shown in Table 1, and the battery performance is shown in Table 2.
- Example 6 A phosphate-containing spinel-type lithium manganate was obtained in the same manner as in Example 5 except that the amount of trilithium phosphate was 46 g.
- the composition of the obtained phosphate-containing spinel-type lithium manganate was Li 1.09 Mn 1.81 Al 0.10 O 4 .
- the phosphate-containing spinel-type lithium manganate obtained from the XRD measurement was No. 1 of JCPDS. 35-782 (LiMn 2 O 4 ) and No. It was a mixed phase of 25-1030 (Li 3 PO 4 ).
- the measurement results are shown in Table 1, and the battery performance is shown in Table 2.
- Example 7 Add 356 g of lithium carbonate, 1577 g of electrolytic magnesium dioxide, 53 g of magnesium hydroxide, 47 g of trilithium phosphate and 1.7 g of boric acid to pure water to prepare a 10 L slurry, and use a crusher (trade name: Dynomill, Symmal Enterprises). Was crushed for 3 hours.
- a crusher trade name: Dynomill, Symmal Enterprises.
- Spray drying was performed at a hot air inlet temperature of 250 ° C.
- 300 g of dried granule particles were fired at 775 ° C. for 6 hours while circulating air at a rate of 5 L / min in a box-type furnace, and cooled to room temperature.
- the rate of temperature increase was 100 ° C./hr
- the rate of temperature decrease was 20 ° C./hr from 7750 ° C. to 600 ° C. and 100 ° C./hr from 600 ° C. to room temperature.
- pure water is added, the mixture is stirred for 1 hour, filtered, dried at 150 ° C., crushed with a powerful small crusher (trade name: rotary crusher, manufactured by Osaka Chemical Co., Ltd.), and passed through a sieve with an opening of 150 ⁇ m.
- the composition of the obtained phosphate-containing spinel-type lithium manganate was Li 1.07 Mn 1.83 Mg 0.10 O 4 .
- the phosphate-containing spinel-type lithium manganate obtained from the XRD measurement was No. 1 of JCPDS. 35-782 (LiMn 2 O 4 ) and No. It was a mixed phase of 25-1030 (Li 3 PO 4 ).
- the measurement results are shown in Table 1, and the battery performance is shown in Table 2.
- Example 8 A phosphate-containing spinel-type lithium manganate was obtained in the same manner as in Example 7 except that the amount of trilithium phosphate was 63 g and the firing temperature was 800 ° C.
- the composition of the obtained phosphate-containing spinel-type lithium manganate was Li 1.07 Mn 1.83 Mg 0.10 O 4 .
- the phosphate-containing spinel-type lithium manganate obtained from the XRD measurement was No. 1 of JCPDS. 35-782 (LiMn 2 O 4 ) and No. It was a mixed phase of 25-1030 (Li 3 PO 4 ).
- the measurement results are shown in Table 1, and the battery performance is shown in Table 2.
- Example 9 A phosphate-containing spinel-type lithium manganate was obtained in the same manner as in Example 7 except that the amount of trilithium phosphate was 31 g and the firing temperature was 800 ° C.
- the composition of the obtained phosphate-containing spinel-type lithium manganate was Li 1.06 Mn 1.84 Mg 0.10 O 4 .
- the phosphate-containing spinel-type lithium manganate obtained from the XRD measurement was No. 1 of JCPDS. 35-782 (LiMn 2 O 4 ) and No. It was a mixed phase of 25-1030 (Li 3 PO 4 ).
- the measurement results are shown in Table 1, and the battery performance is shown in Table 2.
- Example 10 A phosphate-containing spinel-type lithium manganate was obtained in the same manner as in Example 7 except that the amount of trilithium phosphate was 62 g and the firing temperature was 850 ° C.
- the composition of the obtained phosphate-containing spinnel-type lithium manganate was Li 1.07 Mn 1.80 Mg 0.10 O 4 .
- the phosphate-containing spinel-type lithium manganate obtained from the XRD measurement was No. 1 of JCPDS. 35-782 (LiMn 2 O 4 ) and No. It was a mixed phase of 25-1030 (Li 3 PO 4 ).
- the measurement results are shown in Table 1, and the battery performance is shown in Table 2.
- Example 11 Phosphate-containing spinel-type manganese by the same method as in Example 7 except that the amount of trilithium phosphate was 62 g, the amount of boric acid was 2.8 g, and the firing temperature was 850 ° C. Obtained lithium acid.
- the composition of the obtained phosphate-containing spinel-type lithium manganate was Li 1.06 Mn 1.84 Mg 0.10 O 4 .
- the phosphate-containing spinel-type lithium manganate obtained from the XRD measurement was No. 1 of JCPDS. 35-782 (LiMn 2 O 4 ) and No. It was a mixed phase of 25-1030 (Li 3 PO 4 ).
- the measurement results are shown in Table 1, and the battery performance is shown in Table 2.
- the composition of the obtained spinel-type lithium manganate was Li 1.10 Mn 1.80 Al 0.10 O 4 .
- the spinel-type lithium manganate obtained from the XRD measurement was No. 1 of JCPDS. It was 35-782 (LiMn 2 O 4 ) single phase.
- the measurement results are shown in Table 1, and the battery performance is shown in Table 2.
- Comparative Example 2 After dry mixing 300 g of electrolytic manganese dioxide having an average particle diameter of 3 ⁇ m, 71 g of lithium carbonate having an average particle diameter of 3 ⁇ m, 6 g of magnesium hydroxide having an average particle diameter of 2 ⁇ m, and 3 g of trilithium phosphate having an average particle diameter of 3 ⁇ m, in a box furnace. The mixture was fired at 930 ° C. for 6 hours while circulating air at a rate of 5 L / min, and cooled to room temperature. The rate of temperature increase was 100 ° C./hr, and the rate of temperature decrease was 20 ° C./hr from 900 ° C. to 600 ° C. and 100 ° C./hr from 600 ° C. to room temperature.
- the composition of the obtained phosphate-containing spinel-type lithium manganate was Li 1.12 Mn 1.82 Mg 0.06 O 4 .
- the phosphate-containing spinel-type lithium manganate obtained from the XRD measurement was No. 1 of JCPDS. 35-782 (LiMn 2 O 4 ) and No. It was a mixed phase of 25-1030 (Li 3 PO 4 ).
- the measurement results are shown in Table 1, and the battery performance is shown in Table 2.
- the phosphate-containing spinnel-type lithium manganate of the present invention has pores having a pore volume and a secondary particle size, it is excellent in charge / discharge characteristics at high temperatures, particularly carbon counter electrode charge / discharge characteristics, and is also excellent in output characteristics. It can be used as a positive electrode active material for lithium secondary batteries.
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Abstract
Description
実施例および比較例で得られたスピネル型マンガン酸リチウムの組成、SO4含有量、Na含有量、ホウ素含有量は、スピネル型マンガン酸リチウムを塩酸-過酸化水素混合水溶液に溶解した後、誘電結合プラズマ発光分析装置(商品名:ICP-AES、パーキンエルマージャパン製)で分析した。
実施例および比較例で得られたスピネル型マンガン酸リチウムについて、細孔容積の測定を自動水銀ポロシメータ細孔分布測定装置(商品名:AutoPoreV9600、MICROMERITICS製)で行った。水銀圧入圧力は0.48~33,000psiaとした。
試料1.0gをBET比表面積測定用のガラス製セルに入れ、窒素気流下で150℃、30分間脱水処理を行い、粉体粒子に付着した水分の除去を行った。
粒度分布測定装置(商品名:MT3000IIシリーズ、MicrotracBEL製)を使用して、マンガン酸リチウムの二次粒子の平均粒子径(D50)と粒子径の標準偏差を測定した。
<初期容量の測定、直流抵抗の測定>
正極は、実施例、比較例で得られたスピネル型マンガン酸リチウム1.0gとアセチレンブラック(商品名:デンカブラック、デンカ製)0.032gと10wt%ポリフッ化ビニリデン/N-メチル-2-ピロリドン溶液0.307mL(ポリフッ化ビニリデン0.032g)とN-メチル-2-ピロリドン0.751mL(重量比でスピネル型マンガン酸リチウム:アセチレンブラック:ポリフッ化ビニリデン=94:3:3)を自転公転ミキサー(商品名:AR-100、シンキー製)で混合して正極材スラリーを作製し、得られた正極材スラリーをアルミニウム箔に塗布し、150℃で30分乾燥後、直径15.958mmに打ち抜き、3ton/cm2で一軸プレスし、150℃で2時間減圧乾燥して使用した。塗布量はスピネル型マンガン酸リチウム量が5mg/cm2となるようにした。
正極には、初期容量の測定で作製したものと同じものを用いた。
純水に炭酸リチウム374gと電解二酸化マンガン1533gと水酸化アルミニウム73gとリン酸三リチウム15gとホウ酸3gを加えて10Lのスラリーを調製し、粉砕機(商品名:ダイノーミル、シンマルエンタープライゼス製)で3時間粉砕した。炭酸リチウム、電解二酸化マンガン、水酸化アルミニウム、リン酸三リチウム及びホウ酸の混合物の平均粒子径(D50)を粒度分布測定装置(商品名:MT3000IIシリーズ、MicrotracBEL製)により測定した結果、0.6μmであった。得られたスラリーをスプレードライヤー(大河原化工機製)により水を蒸発させ、球状の顆粒乾燥粒子を得た。噴霧乾燥は熱風入口温度250℃で行った。
ホウ酸の量を0.6gとしたことと、焼成温度を900℃としたこと以外は、実施例1と同様の方法でリン酸塩含有スピネル型マンガン酸リチウムを得た。
焼成温度を800℃としたこと以外は、実施例1と同様の方法でリン酸塩含有スピネル型マンガン酸リチウムを得た。
焼成温度を900℃としたこと以外は、実施例1と同様の方法でリン酸塩含有スピネル型マンガン酸リチウムを得た。
リン酸三リチウムの量を31gとしたことと、ホウ酸の量を1gとしたことと、焼成温度を810℃としたこと以外は、実施例1と同様の方法でリン酸塩含有スピネル型マンガン酸リチウムを得た。
リン酸三リチウムの量を46gとしたこと以外は、実施例5と同様の方法でリン酸塩含有スピネル型マンガン酸リチウムを得た。
純水に炭酸リチウム356gと電解二酸化マンガン1577gと水酸化マグネシウム53gとリン酸三リチウム47gとホウ酸1.7gを加えて10Lのスラリーを調製し、粉砕機(商品名:ダイノーミル、シンマルエンタープライゼス製)で3時間粉砕した。炭酸リチウム、電解二酸化マンガン、水酸化マグネシウム、リン酸三リチウム及びホウ酸の混合物の平均粒子径(D50)を粒度分布測定装置(商品名:MT3000IIシリーズ、MicrotracBEL製)により測定した結果、0.6μmであった。得られたスラリーをスプレードライヤー(大河原化工機製)により水を蒸発させ、球状の顆粒乾燥粒子を得た。噴霧乾燥は熱風入口温度250℃で行った。
リン酸三リチウムの量を63gとしたことと、焼成温度を800℃としたこと以外は実施例7と同様の方法でリン酸塩含有スピネル型マンガン酸リチウムを得た。
リン酸三リチウムの量を31gとしたこと、焼成温度を800℃としたこと以外は実施例7と同様の方法でリン酸塩含有スピネル型マンガン酸リチウムを得た。
リン酸三リチウムの量を62gとしたこと、焼成温度を850℃としたこと以外は実施例7と同様の方法でリン酸塩含有スピネル型マンガン酸リチウムを得た。
リン酸三リチウムの量を62gとしたこと、ホウ酸の量を2.8gとしたことと、焼成温度を850℃としたこと以外は実施例7と同様の方法でリン酸塩含有スピネル型マンガン酸リチウムを得た。
リン酸三リチウムを添加しなかったこと以外は実施例3と同様の方法でスピネル型マンガン酸リチウムを得た。
平均粒子径3μmの電解二酸化マンガン300gと平均粒子径3μmの炭酸リチウム71gと平均粒子径2μmの水酸化マグネシウム6gと平均粒子径3μmのリン酸三リチウム3gを乾式混合した後、箱型炉にて空気を5L/minの速度で流通させながら930℃で6時間焼成を行い、室温まで冷却した。昇温速度は100℃/hrとし、降温速度は900℃から600℃までは20℃/hr、600℃から室温までは100℃/hrとした。次に、強力小型粉砕機(商品名:ロータリークラッシャール、大阪ケミカル製)で解砕し、目開き32μmの篩を通過させてリン酸塩含有スピネル型マンガン酸リチウムを得た。
Claims (12)
- リン酸塩を含有し、化学式Li1+XMn2-X-YMYO4(式中、0.02≦X≦0.20、0.05≦Y≦0.30であり、MはAlまたはMgである。)で表されるスピネル型マンガン酸リチウムであって、細孔径0.6μm以下の細孔の細孔容積が0.003cm3/g以上0.2cm3/g以下であり、二次粒子径の相対標準偏差が25%以上45%以下であるスピネル型マンガン酸リチウム。
- リン/マンガンモル比が0.0015以上0.1以下である請求項1に記載のスピネル型マンガン酸リチウム。
- BET比表面積が0.8m2/g以上5.0m2/g以下である請求項1又は2に記載のスピネル型マンガン酸リチウム。
- 二次粒子の平均粒子径が4μm以上20μm以下である請求項1~3のいずれかの項に記載のスピネル型マンガン酸リチウム。
- SO4の含有量が0.8wt%以下である請求項1~4のいずれかの項に記載のスピネル型マンガン酸リチウム。
- Naの含有量が3,000wtppm以下である請求項1~5のいずれかの項に記載のスピネル型マンガン酸リチウム。
- ホウ素の含有量が100wtppm以下である請求項1~6のいずれかの項に記載のスピネル型マンガン酸リチウム。
- Li対極のCR2032型コインセルで、50%充電状態における直流抵抗が25Ω以下である請求項1~7のいずれかの項に記載のスピネル型マンガン酸リチウム。
- 溶液にマンガン化合物、リチウム化合物、請求項1に記載のMの元素を含む化合物、リン酸化合物及びホウ素化合物を加えてこれらの混合物が分散したスラリーを作製し、該混合物の平均粒子径が1μm以下であって、該スラリーを噴霧乾燥により顆粒化した後、大気中、又は、高濃度酸素雰囲気中(純粋酸素雰囲気中を含む)において700℃以上960℃以下で焼成し、解砕する請求項1~8のいずれかの項に記載のスピネル型マンガン酸リチウムの製造法。
- 焼成後、水洗によりホウ素を100wtppm以下まで除去する請求項9に記載のスピネル型マンガン酸リチウムの製造法。
- 請求項1~8のいずれかの項に記載のスピネル型マンガン酸リチウムを含む電極。
- 請求項11に記載の電極を正極に使用したリチウム二次電池。
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| US18/259,076 US20240304802A1 (en) | 2020-12-25 | 2021-12-21 | Spinel-type lithium manganese oxide, method for producing the same and applications thereof |
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| CN100344543C (zh) * | 2002-02-21 | 2007-10-24 | 东曹株式会社 | 锂-锰复合氧化物的粒状二级颗粒、其制备方法和其用途 |
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| KR101687040B1 (ko) * | 2009-01-20 | 2016-12-15 | 도다 고교 가부시끼가이샤 | 비수전해액 이차 전지용 정극 활성 물질 및 그의 제조 방법, 비수전해액 이차 전지 |
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2021
- 2021-12-21 US US18/259,076 patent/US20240304802A1/en active Pending
- 2021-12-21 WO PCT/JP2021/047382 patent/WO2022138660A1/ja not_active Ceased
- 2021-12-21 KR KR1020237020867A patent/KR20230123964A/ko active Pending
- 2021-12-21 JP JP2021207346A patent/JP7775696B2/ja active Active
- 2021-12-21 EP EP21910800.8A patent/EP4269358A4/en active Pending
- 2021-12-21 CN CN202180087273.2A patent/CN116670074A/zh active Pending
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| WO2009084214A1 (ja) * | 2007-12-28 | 2009-07-09 | Toda Kogyo Corporation | 非水電解液二次電池用マンガン酸リチウム及びその製造方法、並びに非水電解液二次電池 |
| JP5556983B2 (ja) | 2007-12-28 | 2014-07-23 | 戸田工業株式会社 | 非水電解液二次電池用マンガン酸リチウム及びその製造方法、並びに非水電解液二次電池 |
| JP2017031006A (ja) | 2015-08-03 | 2017-02-09 | 新日本電工株式会社 | リチウムマンガン複合酸化物粉末およびその製造方法 |
| JP2018095529A (ja) * | 2016-12-15 | 2018-06-21 | 新日本電工株式会社 | リチウムマンガン複合酸化物粉末およびその製造方法ならびに非水電解質二次電池用正極 |
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Also Published As
| Publication number | Publication date |
|---|---|
| JP2022103107A (ja) | 2022-07-07 |
| KR20230123964A (ko) | 2023-08-24 |
| EP4269358A4 (en) | 2025-01-01 |
| US20240304802A1 (en) | 2024-09-12 |
| EP4269358A1 (en) | 2023-11-01 |
| CN116670074A (zh) | 2023-08-29 |
| JP7775696B2 (ja) | 2025-11-26 |
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