Method of Preparing and Application of Carbon-Selenium Composites
20190280285 ยท 2019-09-12
Inventors
Cpc classification
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
International classification
H01M4/36
ELECTRICITY
Abstract
The present invention discloses a preparation method to make lithium selenium secondary battery cathode materials with a high energy density and stable electrochemical performances. Two dimensional carbon materials prepared from the presently-disclosed method is not only made from readily-available low-cost raw materials, but is also of simple preparation method. It can effectively shorten the migration distance of lithium ions in the charging and discharging process and improve conductivity and utilization of selenium after compounded with carbon and selenium; the selenium carbon cathode material can be assembled into lithium selenium secondary batteries with high energy density and stable electrochemical performances. By further scaling up, the assembled lithium selenium pouch-cell batteries still hold excellent electrochemical performances and high energy density, showing broad application prospects.
Claims
1. A lithium selenium secondary battery, comprising: a selenium carbon composite material as the cathode material, prepared by the method of: (a) carbonizing an alkali metal organic salt or an alkaline earth metal organic salt at high temperature, washing with an acid, and drying to obtain a two-dimensional carbon nanomaterial; (b) mixing the two-dimensional carbon material obtained in step (a) with an organic solvent and selenium, heating the mixture to evaporate the organic solvent, and then going through multistage heat ramping and soaking processes to achieve the two-dimensional selenium carbon composite material a lithium-containing anode; a separator; and an electrolyte.
2. The lithium selenium secondary battery of claim 1, wherein the lithium-containing anode comprises one or several of lithium metal, lithiated graphite anode, lithiated silicon carbon anode materials.
3. The lithium selenium secondary battery of claim 1, wherein the separator is one of the following: a celgard membrane; a whatman membrane; a cellulose membrane; or a polymer membrane.
4. The lithium selenium secondary battery of claim 1, wherein: the electrolyte is one or more of carbonate electrolyte, ether electrolyte, or ionic liquids, wherein: the carbonate electrolyte is one or more of diethyl carbonate ester (DEC), dimethyl carbonate (DMC), ethylene carbonate (EC), ethyl methyl carbonate (EMC), propylene carbonate (PC), and a solute is selected of one or several from lithium hexafluoro phosphate (LiPF6), Lithium Bis(trifluoromethane)sulfonimide (LiTFSI), lithium perchlorate (LiClO4) and Lithium bis(fluorosulfonyl)imide (LiFSI); the ether electrolytic solution comprises a solvent of one or more of 1,3-dioxolane (DOL), ethylene glycol dimethyl ether (DME) and triethylene glycol dimethyl ether (TEGDME), and a solute is selected from one or more from lithium hexafluorophosphate (LiPF6), lithium bis (trifluoromethanesulfonyl) imide (LiTFSI), lithium perchlorate (LiClO4) and Lithium bis(fluorosulfonyl)imide (LiFSI); and the ionic liquids comprise one or more of room temperature ionic liquid [EMIm] NTf2 (1-ethyl-3-methylimidazolium bis trifluoromethane sulfonimide salt), [Py13] NTf2 (N-Propyl-N-methylpyrrolidine bis trifluoromethane sulfonimide salt), [PP13] NTf2 (N-propyl-methylpiperidine alkoxy-N-Bis trifluoromethane sulfonimide salts), and a solute is selected from one or more from lithium hexafluorophosphate (LiPF6), Lithium Bis(trifluoromethane)sulfonimide (LiTFSI), lithium perchlorate (LiClO4) and lithium bis fluorosulfonylimide (LiFSI).
5. A pouch-cell lithium selenium battery comprising a battery having a cathode including the selenium carbon composite material prepared by the method of: (a) carbonizing an alkali metal organic salt or an alkaline earth metal organic salt at high temperature, washing with an acid, and drying to obtain a two-dimensional carbon nanomaterial; (b) mixing the two-dimensional carbon material obtained in step (a) with an organic solvent and selenium, heating the mixture to evaporate the organic solvent, and then going through multistage heat ramping and soaking processes to achieve the two-dimensional selenium carbon composite material.
6. A lithium selenium secondary battery, comprising: a selenium carbon composite material as the cathode, prepared by the method of; (a) carbonizing an alkali metal organic salt or an alkaline earth metal organic salt at a temperature?600? C.; (b) washing the carbonized salt of step (a) with an acid; (c) drying the washed carbonized salt of step (b) to obtain a two-dimensional carbon nanomaterial; (d) mixing the two-dimensional carbon nanomaterial of step (c) with selenium and an organic solvent; (e) heating the mixture of step (d) to evaporate the organic solvent; and (f) subjecting the organic solvent evaporated mixture of step (e) to a multistage heat ramping and soaking process to achieve a two-dimensional selenium carbon composite material; a lithium-containing anode; a separator; and an electrolyte.
7. The lithium selenium secondary battery of claim 6, wherein the lithium-containing anode comprises one or more of lithium metal, lithiated graphite, and lithiated silicon carbon.
8. The lithium selenium secondary battery of claim 6, wherein the separator is a commercial celgard membrane, a commercial whatman membrane, a cellulose membrane, or a polymer membrane.
9. The lithium selenium secondary battery of claim 6, wherein the electrolyte is one or more of a carbonate electrolyte, an ether electrolyte, or an ionic liquid.
10. The lithium selenium secondary battery of claim 6, wherein the carbonate electrolyte comprises a solvent and a solute; the solvent is one or more of diethyl carbonate ester (DEC), dimethyl carbonate (DMC), ethylene carbonate (EC), ethyl methyl carbonate (EMC), and propylene carbonate (PC); and the solute is selected from one or several from lithium hexafluoro phosphate (LiPF6), lithium bis(trifluoromethanesulfonyl)imide (LiTFSI), lithium perchlorate (LiClO4) and lithium bis(fluorosulfonyl)imide (LiFSI).
11. The lithium selenium secondary battery of claim 6, wherein the ether electrolytic comprises a solvent and a solute; the solvent is one or more of 1,3-dioxolane (DOL), ethylene glycol dimethyl ether (DME) and triethylene glycol dimethyl ether (TEGDME); and the solute is one or more of lithium hexafluorophosphate (LiPF6), lithium bis (trifluoromethanesulfonyl) imide (LiTFSI), lithium perchlorate (LiClO4) and Lithium bis(fluorosulfonyl)imide (LiFSI).
12. The lithium selenium secondary battery of claim 6, wherein the ionic liquid comprises a room temperature ionic liquid and a solute; the room temperature ionic liquid is and one or more [EMIm] NTf2 (1-ethyl-3-methylimidazolium bis trifluoromethane sulfonimide salt), [Py13] NTf2 (N-Propyl-N-methylpyrrolidine bis trifluoromethane sulfonimide salt), [PP13] NTf2 (N-propyl-methylpiperidine alkoxy-N-Bis trifluoromethane sulfonimide salts); and the solute is one or more of lithium hexafluorophosphate (LiPF6), lithium bis(trifluoromethanesufonyl)imide (LiTFSI), lithium perchlorate (LiClO4) and lithium bis (fluorosulfonyl)imide (LiFSI).
13. A pouch-cell lithium selenium secondary battery comprising one or more batteries, each of which includes a selenium carbon cathode comprising the selenium carbon composite material prepared by the method of: (a) carbonizing an alkali metal organic salt or an alkaline earth metal organic salt at a temperature?600? C.; (b) washing the carbonized salt of step (a) with an acid; (c) drying the washed carbonized salt of step (b) to obtain a two-dimensional carbon nanomaterial; (d) mixing the two-dimensional carbon nanomaterial of step (c) with selenium and an organic solvent; (e) heating the mixture of step (d) to evaporate the organic solvent; and (f) subjecting the organic solvent evaporated mixture of step (e) to a multistage heat ramping and soaking process to achieve a two-dimensional selenium carbon composite material.
14. A selenium carbon composite material comprising selenium and two-dimension carbon.
15. The selenium carbon composite material of claim 14, wherein the two-dimension carbon is a sheet having a thickness?200 nm.
16. The selenium carbon composite material of claim 14, wherein the two-dimension carbon is prepared with an organic salt.
17. The selenium carbon composite material of claim 16, wherein the organic salt comprises: potassium citrate; sodium citrate; potassium gluconate; or an alkali metal salt with an organic anion.
18. A battery including a cathode comprising the selenium carbon composite of claim 14 and a first binder.
19. The battery of claim 18, wherein the cathode further includes at least one of the following: a second binder; and carbon black.
20. The battery of claim 18, wherein the first binder comprises a cellulose-based compound or a latex-based compound.
21. The battery of claim 20, wherein: the cellulose-based compound is carboxymethyl cellulose (CMC); and the latex-based compound is styrene-butadiene rubber (SBR).
22. The battery of claim 18, further including an anode, a separator, and an electrolyte.
23. The battery of claim 22, wherein the anode comprises lithium, graphite, silicon, and a silicon-carbon composite.
24. The battery of claim 22, wherein the separator is: organic polymer-based; or inorganic-based.
25. The battery of claim 24, the inorganic-based separator is glass fiber.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0015]
[0016]
[0017]
[0018]
[0019]
DESCRIPTION OF THE INVENTION
[0020] In conjunction with the specific examples, the present invention will be further described below. Unless otherwise specified, the experimental methods in the following examples are all conventional; the reagents and materials are all available from commercial sources.
Example 1
[0021] (A) Preparation of Selenium Carbon Composite Material
[0022] After grinding and milling, an appropriate amount of potassium citrate is calcined at 800? C. for 5 hours under an inert atmosphere, and cooled to room temperature. Washed with dilute hydrochloric acid to a neutral pH; filtered and dried to give a two-dimensional carbon nanomaterial (
[0023] (B) Preparation of the Cathode Tab
[0024] The above-prepared selenium carbon composites are mixed with carbon black Super-P and binder CMC/SBR (1:1) along with water by a fixed proportions by pulping, coating, drying and other procedures to obtain selenium carbon composite cathode.
[0025] (C) Assembling Lithium-Selenium Battery
[0026] The above-prepared selenium carbon composite cathode, lithium foil as anode, celgard diaphragm as separator and 1M LiPF6 in EC/DMC as the electrolyte were assembled into a lithium selenium button cell battery and lithium selenium pouch-cell battery (
[0027] (D) Lithium-Selenium Battery Test
[0028] Use a charge-discharge apparatus to do constant current charge-discharge test on the said lithium-selenium button cell battery and lithium selenium pouch-cell battery. Test voltage range is between 1.0 and 3.0 V and test temperature is 25? C. Discharge specific capacity and the level of charge-discharge current are standardly calculated based on the mass of selenium. The charge-discharge current is 0.1 C or 0.05 C. Lithium selenium button coin battery charge and discharge curve is shown in
Example 2
[0029] Other experimental conditions are same as in Example 1; only exception is that the raw material carbonized for two-dimensional carbon is sodium citrate. Battery Test results are summarized in Table 1 below.
Example 3
[0030] Other experimental conditions are same as in Example 1; only exception is that the raw material carbonized for two-dimensional carbon is potassium gluconate. Battery Test results are summarized in Table 1 below.
Example 4
[0031] Other experimental conditions are same as in Example 1; only exception is that the high-temperature carbonization temperature for the carbon material is 650? C. Battery Test results are summarized in Table 1 below.
Example 5
[0032] Other experimental conditions are same as in Example 1; only exception is that the dried mixture was heated at 5? C./min to 300? C. and soaked at this temperature for 3 hours. Battery Test results are summarized in Table 1 below.
Example 6
[0033] Other experimental conditions are same as in Example 1; only exception is that the dried mixture was heated at 5? C. min to 240? C. and soaked at this temperature for 3 hours, then continued to heat up to 600? C., and soaked at this constant temperature for 20 hours. Battery Test results are summarized in Table 1 below.
Example 7
[0034] Other experimental conditions are same as in Example 1; only exception is that the lithium-Se battery is packed with lithiated graphite anode, instead of the lithium anode sheet. Battery Test results are summarized in Table 1 below.
Example 8
[0035] Other experimental conditions are same as in Example 1; only exception is that the lithium-Se battery is packed with lithiated silicon carbon anode, instead of the lithium anode sheet. Battery Test results are summarized in Table 1 below.
Comparative Example 1
[0036] Other experimental conditions are the same as in Example 1; only exception is that the use of polyacrylonitrile as the raw material. Battery Test results are summarized in Table 1 below.
Comparative Example 2
[0037] Other experimental conditions are the same as in Example 1; only exception is that using one-step compound method to prepare selenium and carbon composite. The dried selenium carbon mixture was heated at 5? C./min to 500? C. and soaked at this temperature for 23 hours to obtain selenium carbon composite material. The charge-discharge curve of a battery made from the thus obtained selenium carbon composite material is shown in
TABLE-US-00001 TABLE 1 summarized Battery Test Results The first the first After cycling cycle discharge cycle Coulomb 50 laps capacity efficiency capacity Numbering (MAh/g) (%) (MAh/g) Example 1 1,050 78.1 756 Example 2 940 74.6 672 Example 3 962 75.3 683 Example 4 987 72.1 680 Example 5 936 73.2 653 Example 6 972 70 661 Example 7 836 72.5 580 Example 8 910 73 600 Comparative 635 55 350 Example 1 Comparative 980 40.8 386 Example 2
[0038] Above, examples are only for the illustration of the embodiments of the present invention, which by no means is to be used in any form as a limit to the scope of the present invention. Although the present invention has been revealed above as the preferred embodiments, it is not intended to limit the present invention. Anybody with skills in the art can use the revealed technical content by making little changes or substitutions, without departing from the scope of the technical aspect of the present invention, as described above, to derive equivalent of examples of the present invention. But those that do not depart from the nature of the present invention by simple modification of any of the above embodiments or by making equivalent variations and modifications based on the technical nature of the present invention, would fall within the scope of the present invention of the technical solutions.