Apparatus for Quantitatively Analyzing Oxygen Generated in Battery Material
20190369072 ยท 2019-12-05
Assignee
Inventors
- Sungwon HONG (Daejeon, KR)
- Kyungmee Lee (Daejeon, KR)
- Nak Hee Choi (Daejeon, KR)
- Jeong Ae Ahn (Daejeon, KR)
- Jin Il Kim (Daejeon, KR)
Cpc classification
H01M10/48
ELECTRICITY
H01M10/42
ELECTRICITY
Y02E60/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H01M10/0525
ELECTRICITY
International classification
G01N33/00
PHYSICS
H01M10/0525
ELECTRICITY
Abstract
An apparatus for quantitatively analyzing gas, particularly oxygen, generated in a battery material, particularly a cathode material is provided. The apparatus contains a switching valve and a sampling loop in a pyrolyzer, thereby allowing an EGA method, which was used only for the qualitative analysis of gas generated from a solid sample, to be used for the quantitative analysis of gas generated at a specific temperature when heat is applied by the pyrolyzer in a battery material.
Claims
1. An apparatus for quantitative analysis of a gas sample, comprising: a pyrolyzer; a line for supplying a carrier gas into the pyrolyzer; a sampling loop for collecting a standard gas; a switching valve for injecting the standard gas collected in the sampling loop together with the carrier gas into the pyrolyzer; and a vacuum pump for vacuum-depressurizing the sampling loop, wherein the sampling loop is coupled to the switching valve, and the switching valve is coupled to the pyrolyzer through the line for supplying the carrier gas.
2. The apparatus for quantitative analysis of a gas sample according to claim 1, wherein the standard gas is collected in the sampling loop that is vacuum depressurized and the carrier gas flows through the sampling loop as the switching valve is operated and the carrier gas and the standard gas are injected into the pyrolyzer.
3. The apparatus for quantitative analysis of a gas sample 1 according to claim 1, wherein the switching valve is operated after the sampling loop is subject to vacuum-depressurizing by the vacuum pump, thereby injecting the carrier gas through the sampling loop that is a vacuum-depressurized and into the pyrolyzer wherein the pyrolyzer is configured to detect an amount of gases generated from a cell material inside the pyrolyzer.
4. The apparatus for quantitative analysis of a gas sample according to claim 1, wherein the pyrolyzer is an evolved gas analyzer (EGA).
5. The apparatus for quantitative analysis of a gas sample according to claim 1, wherein the gas sample comprises a gas generated when heat is applied to a cell material by the pyrolyzer.
6. The apparatus for quantitative analysis of a gas sample according to claim 5, wherein the cell material is a cathode material comprising Li-metal oxide compounds (LiMeO.sub.2).
7. The apparatus for quantitative analysis of a gas sample according to claim 5, wherein the gases generated from the cell material applied with heat of the pyrolyzer is at least one selected from oxygen, carbon dioxide, carbon monoxide and water vapor.
8. The apparatus for quantitative analysis of a gas sample according to claim 1, wherein the carrier gas is He, N.sub.2 or Ar.
9. A method for quantitative analysis of a gas sample by using the apparatus for quantitative analysis of a gas sample according to claim 1, comprising: collecting the standard gas in the sampling loop that is vacuum depressurized; operating the switching valve for flowing carrier gas through the sampling loop; and injecting the carrier gas and the standard gas into the pyrolyzer.
10. A method for quantitative analysis of a gas sample by using the apparatus for quantitative analysis of a gas sample according to claim 1, comprising: operating the switching valve after the sampling loop is subject to vacuum-depressurizing by the vacuum pump; injecting the carrier gas through the sampling loop that is vacuum-depressurized and into the pyrolyzer; and detecting an amount of gases generated from a cell material inside the pyrolyzer.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
BEST MODE
[0028] Hereinafter, the apparatus for quantitative analysis according to the present invention will be described in detail.
[0029] Prior to the description, it should be understood that the description proposed herein is just a preferable example for the purpose of illustrations only, not intended to limit the scope of the invention, so it should be understood that other equivalents and modifications could be made thereto without departing from the spirit and scope of the invention. Meanwhile, the description of the well-known functions or constructions may be omitted it it would obscure the subject matter of the present invention.
[0030] Also, the same reference numerals, unless otherwise stated, are used to denote the same or equivalent elements, components or parts illustrated in the drawings, and the repeated explanation thereof will be omitted. In addition, the size and shape of each element, component or part in the drawing may be shown in an enlarged or reduced scale for the sake of convenience.
[0031] The prior EGA cannot perform the quantitative analysis of gases generated from cell materials.
[0032] In contrast, the apparatus the present invention comprises a port valve and a sampling loop being installed in the middle of a line for suppling a carrier gas into a pyrolyzer so as for a constant amount of standard gases to be injected into the pyrolyzer, thereby allowing the quantitative analyses of gases generated at a specific temperature when cell materials is applied with heat by the pyrolyzer.
[0033] Specifically, the apparatus for quantitative analysis of gases according to the present invention comprises:
[0034] a pyrolyzer;
[0035] a line for supplying a carrier gas into the pyrolyzer;
[0036] a sampling loop for collecting a standard gas;
[0037] a switching valve for injecting the standard gas collected in the sampling loop together with the carrier gas into the pyrolyzer; and
[0038] a vacuum pump for vacuum-depressurizing the sampling loop,
[0039] wherein the sampling loop is coupled to the switching valve, and the switching valve is coupled to the pyrolyzer through the line for supplying the carrier gas, and
[0040] the standard gas is transferred in a constant amount into the pyrolyzer by action of the switching valve and the sampling loop for quantitative analyses of gases generated at a specific temperature when heat is applied to cell materials inside the pyrolyzer.
[0041] In one embodiment, the standard gas is collected in the vacuum-depressurized sampling loop and the switching valve is operated, thereby flowing the carrier gas through the sampling loop and injecting the carrier gas and the standard gas collected in the sampling loop through the line for supplying the carrier gas into the pyrolyzer.
[0042] In one embodiment, the pyrolyzer may be an evolved gas analyzer (EGA), or pyrolyzers being commercially available from Frontier Lab, CDS Analytical (www.cdsanalytical.com) or Japan Analytical Industry Co., Ltd. (http://www.jai.co.jp/english/index.html).
[0043] In one embodiment, the cell material is a cathode material comprising
[0044] Li-metal oxide compounds (LiMeO.sub.2), for example NCM, LCO, LMO, LNO and various combinations thereof.
[0045] In one embodiment, the gases generated from the cell material applied with heat of the pyrolyzer may be at least one selected from oxygen, carbon dioxide, carbon monoxide and water vapor.
[0046] In one embodiment, the carrier gas may be He, N.sub.2 or Ar.
EMBODIMENTS
[0047] Hereinafter, preferred embodiments of the present invention will be described in detail so that a person having ordinary skill in the art enables the present invention, however it is not intended to limit the scope of the present invention, and other equivalents and modifications could be made thereto.
[0048]
[0049] The pyrolyzer 10 may be an evolved gas analyzer (EGA), or pyrolyzers being commercially available from Frontier Lab, CDS Analytical (www.cdsanalytical.com) or Japan Analytical Industry Co., Ltd. (http://www.jai.co.jp/english/index.html). According to the present invention, it may also be implemented by coupling the sampling loop 110 and the switching valve 100 to the EGA, without a mass spectrometer (MS) or a gas chromatograph (GO). Further, it may be implemented by applying an instrument such as MS or GC. and IR (FT-IR, NIR), various gas sensor (e.g., O.sub.2 sensor, CO.sub.2 sensor, etc.), a laser analyzer (for analyzing oxygen) and the like (see http://www.hitouch.co.kr/productidetail02?seq=321&code=020301 for application of the O.sub.2 sensor).
[0050] Meanwhile, the prior art has been applied only for qualitative analyses of gases generated from a sample on the pyrolysis of the sample as it is difficult to quantitatively inject a standard gas into the pyrolyzer. Basically, when the sample is pyrolyzed to generate gases, the gases are decomposed into a small gas molecule unit, which cannot be introduced into the pyrolyzer. For this reason, the present invention provides a valve system which can control the standard gas for the purpose of quantitative analyses of the gases.
[0051] Accordingly, the quantitative analysis apparatus 1 according to the present invention comprises the sampling loop 110 and the switching valve 100 coupled to the front end of the line 20 for supplying a carrier gas into the pyrolyzer 10, thereby allowing the quantitative analysis of the gases generated at a specific temperature when heat is applied to the sample inside the pyrolyzer 10.
[0052] First, a standard gas is injected into the pyrolyzer 10 by the sampling loop 110 and the switching valve 100 coupled to the front end of the line 20 for supplying a carrier gas into the pyrolyzer 10, while a calibration curve for the standard gas is obtained in the state that there is no sample in the the pyrolyzer 10. For example,
[0053] Then, a carrier gas is injected into the pyrolyzer 10 by the sampling loop 110 and the switching valve 100 coupled to the front end of the line 20 for supplying a carrier gas into the pyrolyzer 10, while a sample is subject to pyrolysis in the pyrolyzer 10 to generate gases and the amount of the gases generated from the sample may be calculated by using the calibration curve for the standard gas as obtained in the above.
[0054] Thus, the standard gas can be supplied in a constant amount into the pyrolyzer 10 by the sampling loop 110 and the switching valve 100, thereby quantifying the amount of oxygen among the gases generated from the sample inside the pyrolyzer 10.
[0055] The switching valve 100 may control the standard gas to be collected in the sampling loop 110, and it may control the standard gas to be injected in a constant amount into the pyrolyzer 10. The switching valve 100 is not particularly limited if it is used in the art. For example, a six-port valve, nine-port valve or ten-port valve may be used in one embodiment.
[0056] Referring to
[0057] The sampling loop 110 is not limited to its material and volume, but it may be made of materials with high strength to have no deformation of shape and volume during vacuum depressurizing, for example metal materials such as stainless steel, copper steel, carbon steel, aluminum steel and alloy steel, and polymer resins such as polyether ether ketone (PEEK) and polyimide. The volume of the sampling loop 110 should be properly controlled since it may affect the precision of analysis. For example, a volume of 1,000 L (1 mL) or less, e.g., 50 L, 250 L or 500 L may be used. Larger the sampling loop, lower the pressure of the standard gas. Smaller the sampling loop, higher the pressure of the standard gas. The amount of the standard gas filled in the sampling loop may be varied considering the amount of gases generated in cell materials.
[0058] The vacuum pump 60 is connected to the switching valve 100 and it is used in the vacuum-depressurizing of the sampling loop 110. As the vacuum pump 60, a rotary pump (a vacuum level of 10.sup.2 mbar, 20 L/min) may be generally used. But the vacuum pump is not limited thereto, and various modifications may be made according to the intended embodiments of the present invention.
[0059] Also, the quantitative analysis apparatus 1 of the present invention may further comprise an operator (not shown) and a controller (not shown) for controlling the operation of the switching valve 100 and the open/close of the valves 40a and 50a in a manner as shown in
[0060] The apparatus of the present invention applies the coupling of the sampling loop 110 and the switching valve 100 to the pyrolyzer 10 for quantitative analysis of gases generated from the sample inside the pyrolyzer 10, and it is a novel concept which has not applied in the conventional analysis method by pyrolysis.
[0061]
[0062]
[0063]
[0064]
[0065] After calculating the calibration curve for the standard gas, the switching valve 100 operates to further perform the vacuum depressurizing of the sampling loop 110 as shown in
EXAMPLES
1. Prior Art
[0066] The conventional EGA has been made by using an EGA-MS apparatus as shown in
2. Quantitative Analyses of Gases Generated from Cell Materials by Using the Apparatus of the Present Invention
[0067] The apparatus of the present invention as shown in
[0068] A carrier gas was supplied at 1 mL/min by using an MFC (mass flow controller). The sampling loop was evacuated in a vacuum of 110.sup.2 torr or less by using a rotary pump (commercially available from EDWARDS), and filled with 99.9 mol (%) of the standard gas to be 50 torr. At this time, the concentration of the standard gas was 99.9 mol %50 torr I 760 torr =6.572 mol %. 6.572 mol % of oxygen filled in the sampling loop was injected together with the carrier gas into the pyrolyzer, and the amount thereof was accurately analyzed by using an analyzer (mass spectrometer). From the analyzer, the molecular ion value for oxygen, m/z=32 was extracted and the area thereof was calculated. This procedure was repeated for standard gases with different concentrations to obtain calibration curves according to the area values and concentrations.
[0069] A lithium ion battery comprising an NCM-based cathode was charged and decomposed in a glove box of an Ar (argon) environment. The cathode was washed with DMC, and dried under reduced pressure for complete removal of the DMC.
[0070] The dried cathode was precisely taken in an amount of 5 to 10 mg, and introduced into a pyrolyzer and subject to pyrolysis to analyze the amount of oxygen generated therefrom. Then, the molecular ion value for oxygen, m/z=32 was extracted and the area thereof was calculated. The calculated area value was applied to the calibration curve for the standard gas to determine the precise amount of oxygen.
[0071]
[0072] As confirmed in the above, the apparatus of the present invention comprises a port valve and a sampling loop coupled to the pyrolyzer, thereby allowing the quantitative analysis of oxygen generated in the cathode.
[0073] While the present invention has been particularly shown and described with reference to figures and embodiments thereof, it will be understood by those of ordinary skill in the art that the scope of the present invention is not limited thereby and that various changes and modifications may be made therein. Therefore, the actual scope of the present invention will be defined by the appended claims and their equivalents.