Carbon-porous media composite electrode and preparation method thereof
Abstract
The present invention discloses a carbon-porous media composite electrode material, a composite electrode using the same and a preparation method thereof. The carbon-porous media composite electrode can be applied for a device such as a secondary battery, a capacitor or the like, or for preparing ultra pure water using a capacitive deionization process, purifying salty water or the like.

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20 claims: 3 independent, 17 dependent
- 1A composite electrode material, comprising 5 to 95% by weight of a carbon electrode active material and 5 to 95% by weight of a porous media.
- 9A method for preparing composite electrode material, comprising the steps of:(1) mixing 5-95% by weight of a carbon electrode active material and 5-95% by weight of a porous media;(2) mixing the mixture obtained in step (1) with an organic solvent in an amount of 0.5 to 5 times by weight of the mixture;and (3) evaporating the organic solvent to obtain a composite electrode material.
Independent claims4
74 paragraphs in 5 sections, as filed
BACKGROUND OF THE PRESENT INVENTION
1. Field of the present invention
0001The present invention relates to a carbon-porous media composite electrode material, a composite electrode using the same, and a preparation method thereof.
2. Description of the Background Art
0002A capacitive deionization (hereinafter, referred to as 'CDI') processing apparatus is an apparatus that removes ions present in a solution by electrochemically adsorbing them onto an electrode surface. As an active material of an electrode for capacitive deionization process, used are activated carbon, carbon aerogel, carbon nanotube, etc.
0003Carbon aerogel has been known as an ideal material for a CDI electrode because it has a high specific surface area (from 400 to 1100 m<sup>2</sup>/g), a low electric resistance (400 mΩ/cm) and a nano-sized porous structure, and because its pores are connected to one another, its pore size and density can be adjustable, and its electric conductivity is excellent. Besides, its preparation process is simple and its capacitance is very excellent. It has been known that in a CDI process, a carbon aerogel electrode can remove heavy metals, colloids and the like, as well as ions.
0004By the way, the biggest problem involved in constructing an electrode for a capacitive deionization process using carbon aerogel or other carbon materials as an electrode material is that the surface of those materials are hydrophobic, and thus they rarely have wetting ability to an aqueous electrolyte. Therefore, in order to use a carbon material for an electrode for deionization process in an aqueous electrolyte, it is necessary to be used in great quantities. However, carbon aerogel, carbon nanotube and the like are expensive because a very small amount thereof is obtained in a single preparation. Therefore, if concentration of ions to be removed in a solution is high, there is a difficulty in using them.
0005Moreover, when an electrode is prepared only with a carbon electrode material, as charging and discharging are repeated, mechanical strength of the electrode active material becomes weaker, and thus, the electrode active material is separated from the electrode so as to reduce its lifetime.
0006Therefore, in order to use carbon materials for an electrode for a deionization processing apparatus, it is necessary to modify its physical properties.
SUMMARY OF THE PRESENT INVENTION
0007Therefore, an object of the present invention is to provide a carbon-porous media composite electrode material which has excellent hydrophilicity to an aqueous electrolyte, mechanical strength and CDI properties even used in small amount, and can be prepared with simple process, and to provide a composite electrode using the same and a preparation method thereof.
BRIEF DESCRIPTION OF THE DRAWINGS
0008Reference will now be made in detail to the preferred embodiments of the invention, examples of which are illustrated in the accompanying drawings.
0009The accompanying drawings, which are included to provide a further understanding of the present invention and are incorporated in and constitute a part of this specification, illustrate embodiments of the present invention and together with the description serve to explain the principles of the present invention.
0010In the drawings: <ul id="ul0001" list-style="none" compact="compact"><li>Fig.1 is a process chart for preparing a porous composite electrode material in accordance with the present invention;</li><li>Fig. 2 is a scanning electron microphotograph showing a fine structure of the surface of a porous composite electrode material in accordance with the present invention;</li><li>Figs. 3a to 3d are graphs respectively showing current changes with respect to time upon charging and discharging to ten cycles for batteries prepared in Comparative Example 1 and Examples 1 to 3 of the present invention;</li><li>Fig. 4 is a graph showing CDI efficiencies (charging and discharging efficiency) using the results of charging and discharging the batteries constructed with a porous composite electrode material in accordance with the present invention;</li><li>Figs. 5 and 5b are graphs respectively showing changes in electric charge per weight of an electrode active material, upon charging (Fig. 5a) and discharging (Fig. 5b) of the batteries constructed with a porous composite electrode material in accordance with the present invention;</li><li>Figs. 6a to 6c are graphs respectively showing current changes with respect to time upon charging and discharging to 100 cycles of the batteries prepared in Comparative Example 1 and Examples 1 to 3 of the present invention;</li><li>Fig. 7 is a graph showing charging and discharging efficiencies using the results of charging and discharging to 100 cycles of the batteries constructed with a porous composite electrode material in accordance with the present invention;</li><li>Fig. 8 is a graph showing a change in electric charge per weight of an electrode active material upon charging and discharging to 100 cycles of the batteries constructed with a porous composite electrode material in accordance with the present invention;</li><li>Figs. 9a to 9f are graphs respectively showing current changes with respect to time showing charging and discharging characteristics to 100 cycles of the batteries prepared in Comparative Example 2 and Examples 4 to 8 of the present invention;</li><li>Figs. 10a and 10b respectively show electric charge efficiencies of charging and discharging of batteries prepared in Comparative Example 2 and Examples 4 to 8 of the present invention. In Figs. 10a and 10b, A is for the battery prepared in Comparative Example 2, and B to F are for the batteries prepared in Examples 4 to 8, respectively;</li><li>Figs. 11a and 11b are graphs respectively showing current changes with respect to time showing charging and discharging characteristics to 100 cycles of the batteries prepared in Comparative Example 2 and Example 6 of the present invention; and</li><li>Figs. 12a to 12d are graphs respectively showing electric charges upon charging (Fig. 12a) and electric charges upon discharging (Fig. 12b), specific electric charges upon discharging (Fig. 12c), and charging and discharging efficiencies (Fig. 12d) using the results of charging and discharging to 100 cycles of the batteries prepared in Comparative Example 2 and Example 6 of the present invention.</li></ul>
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
0011The present inventors achieved the aforementioned object by preparing a carbon-porous media composite electrode material in which a carbon electrode active material is combined with a porous media (support) utilized in the filed of catalyst.
0012Accordingly, the present invention relates to a carbon-porous media composite electrode material that can be used in a capacitive deionization process, a composite electrode using the same and a preparation method thereof.
0013The carbon-porous media composite electrode material of the present invention comprises 5 to 95% by weight of a carbon electrode active material and 5 to 95% by weight of a porous media.
0014The carbon electrode active material used in the present invention may include, but not limited thereto, activated carbons, carbon aerogels, carbon nanotubes, carbon nanofibers and the like, having particle size distribution of from 1 to 100 µ m, and any carbon electrode active materials known to those skilled in the art can be used.
0015The porous media used in the present invention also has no specific limitations on its types and includes, for example, silica gel powder, clay powder, TiO<sub>2</sub>, Al<sub>2</sub>O<sub>3</sub>, SiO<sub>2</sub>, BaTiO<sub>3</sub>, porous polymers and the like, having a particle size distribution of from 0.1 to 100 µm and a particle density of from 0.1 to 2 g/cc. The clay powder may include kaolin, white clay, loess, etc.
0016The carbon-porous media composite electrode material of the present invention may additionally contain a conductive material capable of improving the conductivity of an electrode and/or a polymer binder.
0017The conductive material may include acetylene black, ketjen black, graphite (sfg 6), super-P or the like, but not limited thereto. When a conductive material is added, that is, in case that a carbon-porous media composite electrode material contains a carbon electrode active material, a porous media and a conductive material, the content of the conductive material is preferably 1 to 50% by weight of the conductive material to the total weight of a mixture of the carbon electrode active material and the porous media.
0018Examples of the polymer binder may include polytetrafluoroethylene (PTFE), polyvinylidenefluoride (PVdF), carboxymethylcellulose (CMC), hydropropylmethylcellulose (HPMC), polyvinylalcohol (PVA), polyvinylchloride (PVC), etc., but not limited thereto, and any kinds of binders commonly used in preparation of an electrode can be also used. When a binder is added, it is preferable to be added to a mixture consisting of a carbon electrode active material, a porous media and a conductive material, in an amount of 1 to 20% by weight of the total weight of the mixture.
0019The preparation method of a carbon-porous media composite electrode material of the present invention comprises the steps of: <ul id="ul0002" list-style="none" compact="compact"><li>(1) mixing a carbon electrode active material and a porous media at a predetermined ratio;</li><li>(2) mixing the mixture obtained in step (1) with an organic solvent; and</li><li>(3) evaporating the organic solvent to obtain a composite electrode material in a sheet form.</li></ul>
0020The organic solvent of step (2) may be an alcohol such as ethyl alcohol, methyl alcohol or isopropyl alcohol, or a mixed solvent of those alcohols with acetone. If a mixed solvent is used, the ratio of alcohol to acetone is 50:50 by volume. The organic solvent is preferably used in an amount of 0.5 to 5 times by weight of the mixture of step (1).
0021The present invention also relates to a carbon-porous media composite electrode prepared with the carbon-porous media composite electrode material prepared as described above.
0022The composite electrode of the present invention can be prepared by a roll pressing the carbon-porous media composite electrode material obtained in step (3) onto a current collector such as a nickel, titanium or aluminum metal foam, or meshes of those metals.
0023The carbon-porous media composite electrode of the present invention can be used as an electrode for a secondary battery using the composite electrode as an anode and a metal oxide as a cathode, for a capacitor, or for a capacitive deionization apparatus.
0024Accordingly, the present invention also relates to a secondary battery, a capacitor and a capacitive deionization apparatus, comprising a carbon-porous media composite electrode.
EXAMPLE
0025Hereinafter, the present invention will be described in more detail by the following examples, but these examples are just provided for illustration and the scope of the present invention is not, in any way, limited thereto.
Example 1
00263g of carbon aerogel dried for at least 24 hours at 80°C, 1 g of acetylene black (moisture content: 0.03% by weight; ash content: 0.001 % by weight; bulk density: 12.9 Ibsft<sup>-3</sup>; actual density: 1.95 g/ml; surface area: 80 g<sup>2</sup>m<sup>-1</sup>; available from Osaka Gas Co.), 1g of porous silica gel (231-545-4, 0.040-0.063 mm, available from Lancaster Co.), 0.25g of PTFE and 5g of ethyl alcohol were mixed. The resulting mixture was uniformly stirred for one hour at room temperature. The resultant was then made into a sheet from fibers formed by kneading them while evaporating an ethyl alcohol solvent.
0027The composite electrode material obtained was then pressed onto a nickel foam to obtain a composite electrode, which was then used to assemble a battery by constructing in the form of a porous composite electrode/non-woven fabric/porous composite electrode. This battery was put into a water cistern containing 1,000 ppm aqueous NaCI solution, charged up to 0.9V for 10 minutes, discharged down to -0.001V for 10 minutes, and maintained a dormant state for one minute, and then its CDI properties and cycle life were examined.
Example 2
00282g of carbon aerogel dried for at least 24 hours at 80°C, 1g of acetylene black (moisture content: 0.03% by weight; ash content: 0.001 % by weight; bulk density: 12.9 Ibsft<sup>-3</sup>; actual density: 1.95 g/ml; surface area: 80 g<sup>2</sup>m<sup>-1</sup>, available from Osaka Gas Co.), 2g of porous silica gel (231-545-4, 0.040-0.063mm, available from Lancaster Co.), 0.25g of PTFE and 5g of ethyl alcohol were mixed. The resulting mixture was uniformly stirred for one hour at room temperature, and then made into a sheet from fibers formed by kneading them while evaporating an ethyl alcohol solvent.
0029The composite electrode material obtained was then pressed onto a nickel foam to obtain a composite electrode, which was then used to assemble a battery by constructing in the form of a porous composite electrode/non-woven fabric/porous composite electrode. This battery was put into a water cistern containing 1,000 ppm aqueous NaCl solution, charged up to 0.9V for 10 minutes, discharged down to -0.001V for 10 minutes, and maintained a dormant state for one minute, and then its CDI properties and cycle life were examined.
Example 3
00301 g of carbon aerogel dried for at least 24 hours at 80°C, 1 g of acetylene black (moisture content: 0.03% by weight; ash content: 0.001 % by weight; bulk density: 12.9 lbsft<sup>-3</sup>; actual density: 1.95 g/ml; surface area: 80 g<sup>2</sup>m<sup>-1</sup>, available from Osaka Gas Co.) as a conductive material for improving conductivity, 3g of porous silica gel (231-545-4, 0.040-0.063mm, available from Lancaster Co.), 0.25g of PTFE and 5g of ethyl alcohol were mixed. The resulting mixture was uniformly stirred for one hour at room temperature, and then made into a sheet from fibers formed by kneading them while evaporating an ethyl alcohol solvent.
0031The composite electrode material obtained was then pressed onto a nickel foam to obtain a composite electrode, which was then used to assemble a battery by constructing in the form of a porous composite electrode/non-woven fabric/porous composite electrode. This battery was put into a water cistern containing 1,000 ppm aqueous NaCl solution, charged up to 0.9V for 10 minutes, discharged down to -0.001V for 10 minutes, and maintained a dormant state for one minute, and then its CDI properties and cycle life were examined.
Example 4
00328g of activated carbon (pitch-based carbon or pan-based carbon) dried for at least 24 hours at 80°C, 2.5g of acetylene black (moisture content: 0.03% by weight; ash content: 0.001% by weight; bulk density: 12.9 Ibsft<sup>-3</sup>; actual density: 1.95 g/ml; surface area: 80 g<sup>2</sup>m<sup>-1</sup>, available from Osaka Gas Co.), 2g of porous silica gel (231-545-4, 0.040-0.063mm, available from Lancaster Co.), 0.5g of PTFE and 10g of ethyl alcohol were mixed. The resulting mixture was uniformly stirred for one hour at room temperature, and then made into a sheet from fibers formed by kneading them while evaporating an ethyl alcohol solvent.
0033The composite electrode material obtained was then pressed onto a nickel foam to obtain a composite electrode, which was then used to assemble a battery by constructing in the form of a porous composite electrode/non-woven fabric/porous composite electrode. This battery was put into a water cistern containing 1,000 ppm aqueous NaCl solution, charged up to 0.9V for 10 minutes, discharged down to -0.001V for 10 minutes, and maintained a dormant state for one minute, and then its CDI properties and cycle life were examined.
Example 5
00346g of activated carbon dried for at least 24 hours at 80°C, 2.5g of acetylene black (moisture content: 0.03% by weight; ash content: 0.001% by weight; bulk density: 12.9 Ibsft<sup>-3</sup>; actual density: 1.95 g/ml; surface area: 80 g<sup>2</sup>m<sup>-1</sup>, available from Osaka Gas Co.), 4g of porous silica gel (231-545-4, 0.040-0.063mm, available from Lancaster Co.), 0.5g of PTFE and 10g of ethyl alcohol were mixed. The resulting mixture was uniformly stirred for one hour at room temperature, and then made into a sheet from fibers formed by kneading them while evaporating an ethyl alcohol solvent.
0035The composite electrode material obtained was then pressed onto a nickel foam to obtain a composite electrode, which was then used to assemble a battery by constructing in the form of a porous composite electrode/non-woven fabric/porous composite electrode. This battery was put into a water cistern containing 1,000 ppm aqueous NaCl solution, charged up to 0.9V for 10 minutes, discharged down to -0.001V for 10 minutes, and maintained a dormant state for one minute, and then its CDI properties and cycle life were examined.
Example 6
00364g of activated carbon dried for at least 24 hours at 80°C, 2.5g of acetylene black (moisture content: 0.03% by weight; ash content: 0.001% by weight; bulk density: 12.9 Ibsft<sup>-3</sup>; actual density: 1.95 g/ml; surface area: 80 g<sup>2</sup>m<sup>-1</sup>, available from Osaka Gas Co.), 6g of porous silica gel (231-545-4, 0.040-0.063mm, available from Lancaster Co.), 0.5g of PTFE and 10g of ethyl alcohol were mixed. The resulting mixture was uniformly stirred for one hour at room temperature, and then made into a sheet from fibers formed by kneading them while evaporating an ethyl alcohol solvent.
0037The composite electrode material obtained was then pressed onto a nickel foam to obtain a composite electrode, which was then used to assemble a battery by constructing in the form of a porous composite electrode/non-woven fabric/porous composite electrode. This battery was put into a water cistern containing 1,000 ppm aqueous NaCl solution, charged up to 0.9V for 10 minutes, discharged down to -0.001V for 10 minutes, and maintained a dormant state for one minute, and then its CDI properties and cycle life were examined.
Example 7
00382g of activated carbon dried for at least 24 hours at 80°C, 2.5g of acetylene black (moisture content: 0.03% by weight; ash content: 0.001% by weight; bulk density: 12.9 Ibsft<sup>-3</sup>; actual density: 1.95 g/ml; surface area: 80 g<sup>2</sup>m<sup>-1</sup>, available from Osaka Gas Co.), 8g of porous silica gel (231-545-4, 0.040-0.063mm, available from Lancaster Co.), 0.5g of PTFE and 10g of ethyl alcohol were mixed. The resulting mixture was uniformly stirred for one hour at room temperature, and then made into a sheet from fibers formed by kneading them while evaporating an ethyl alcohol solvent.
0039The composite electrode material obtained was then pressed onto a nickel foam to obtain a composite electrode, which was then used to assemble a battery by constructing in the form of a porous composite electrode/non-woven fabric/porous composite electrode. This battery was put into a water cistern containing 1,000 ppm aqueous NaCl solution, charged up to 0.9V for 10 minutes, discharged down to -0.001V for 10 minutes, and maintained a dormant state for one minute, and then its CDI properties and cycle life were examined.
Example 8
00401g of activated carbon dried for at least 24 hours at 80°C, 2.5g of acetylene black (moisture content: 0.03% by weight; ash content: 0.001% by weight; bulk density: 12.9 Ibsft<sup>-3</sup>; actual density: 1.95 g/ml; surface area: 80 g<sup>2</sup>m<sup>-1</sup>, available from Osaka Gas Co.), 9g of porous silica gel (231-545-4, 0.040-0.063mm, available from Lancaster Co.), 0.5g of PTFE and 10g of ethyl alcohol were mixed. The resulting mixture was uniformly stirred for one hour at room temperature, and then made into a sheet from fibers formed by kneading them while evaporating an ethyl alcohol solvent.
0041The composite electrode material obtained was then pressed onto a nickel foam to obtain a composite electrode, which was then used to assemble a battery by constructing in the form of a porous composite electrode/non-woven fabric/porous composite electrode. This battery was put into a water cistern containing 1,000 ppm aqueous NaCl solution, charged up to 0.9V for 10 minutes, discharged down to -0.001V for 10 minutes, and maintained a dormant state for one minute, and then its CDI properties and cycle life were examined.
Comparative Example 1
00424g of carbon aerogel dried for at least 24 hours at 80°C, 1 g of acetylene black (moisture content: 0.03% by weight; ash content: 0.001% by weight; bulk density: 12.9 lbsft<sup>-3</sup>, actual density: 1.95 g/ml; surface area: 80 g<sup>2</sup>m<sup>-1</sup>, available from Osaka Gas Co.), 0.25g of PTFE and 5g of ethyl alcohol were mixed. The resulting mixture was uniformly stirred for one hour at room temperature, and then made into a sheet form.
0043The electrode material obtained was then pressed onto a nickel foam to obtain an electrode, which was then used to assemble a battery by constructing in the form of an anode/non-woven fabric/a cathode. This battery was put into a water cistern containing 1,000 ppm aqueous NaCl solution, charged up to 0.9V for 10 minutes, discharged down to -0.001V for 10 minutes, and maintained a dormant state for one minute, and then its CDI properties and cycle life were examined.
Comparative Example 2
004410g of activated carbon dried for at least 24 hours at 80°C, 2.5g of acetylene black (moisture content: 0.03% by weight; ash content: 0.001% by weight; bulk density: 12.9 Ibsft<sup>-3</sup>; actual density: 1.95 g/ml; surface area: 80 g<sup>2</sup>m<sup>-1</sup>, available from Osaka Gas Co.), 0.5g of PTFE and 10g of ethyl alcohol were mixed. The resulting mixture was uniformly stirred for one hour at room temperature, and then made into a sheet form.
0045The electrode material obtained was then pressed onto a nickel foam to obtain an electrode, which was then used to assemble a battery by constructing in the form of an anode/non-woven fabric/a cathode. This battery was put into a water cistern containing 1,000 ppm aqueous NaCl solution, charged up to 0.9V for 10 minutes, discharged down to -0.001V for 10 minutes, and maintained a dormant state for one minute, and then its CDI properties and cycle life were examined.
0046Fig. 2 is a scanning electron microphotograph showing the surface of the carbon-porous media composite electrode material prepared in Example 2 of the present invention.
0047Figs. 3a and 3b are time-current curves respectively showing charging and discharging characteristics to 10 cycles of the batteries prepared in Comparative Example 1 (Fig. 3a) and Examples 1 to 3 (Figs. 3b to 3d) of the present invention. It can be seen from those figures that the CDI efficiency, i.e., the ratio of charging current to discharging current depending on time, of the composite electrode of the present invention was increased by 50 to 60% compared with the value of the electrode prepared only with a carbon electrode active material.
0048Fig. 4 respectively shows charging and discharging efficiencies of the batteries prepared in Examples 1 to 3 of the present invention and Comparative Example 1. It was found that, in the battery comprising the porous composite electrode prepared according to the present invention, the electrode active material was not separated from an electrode upon charging and discharging, and its wetting ability to an aqueous electrolyte was enhanced.
0049Figs. 5a and 5b show electric charge changes per weight of an electrode active material upon charging (Fig. 5a) and discharging (Fig. 5b) of the batteries prepared in Examples 1 to 3 of the present invention and Comparative Example 1. It can be seen from those figures that the battery using the porous composite electrode prepared according to the present invention has a small electric charge differences between charging and discharging. This means that, in the battery using the composite electrode according to the present invention, most of the electric charge once charged is discharged.
0050Fig. 6 is time-current curves respectively showing charging and discharging characteristics to 100 cycles of the batteries prepared in Comparative Example 1 (Fig. 6a), and Examples 1 and 2 (Figs. 6b and 6c) using the porous composite electrode of the present invention. It can be seen from those figures that charging and discharging efficiencies of the composite electrode of the present invention were increased by 50 to 60% compared with the value of the electrode prepared only with a carbon electrode active material.
0051Fig. 7 is a graph showing charging and discharging efficiencies using the result of charging and discharging to 100 cycles of the batteries prepared in Examples 1 and 2, and Comparative Example 1. It can be seen that efficiencies of discharging to charging were increased by at least 50% at 100 or more cycles in the battery using the porous composite electrode prepared according to the present invention.
0052Fig. 8 shows electric charge change per weight of an electrode active material upon charging and discharging to 100 cycles of the batteries prepared in Examples 1 and 2, and Comparative Example 1. It can be seen that the battery using the porous composite electrode prepared according to the present invention has a small electric charge differences between charging and discharging. This means that, in the battery using the composite electrode according to the present invention, most of the electric charge once charged is discharged.
0053Figs. 9a to 9f are time-current curves respectively showing charging and discharging characteristics to 100 cycles of the batteries prepared in Comparative Example 2 (Fig. 9a) and Examples 4 to 8 (Figs. 9b and 9f) of the present invention. It can be seen that charging and discharging efficiencies of the composite electrode of the present invention were increased by 20 to 30% compared with the value of the electrode prepared only with a carbon electrode active material.
0054Figs. 10a and 10b respectively shows efficiencies of electric charge upon charging and discharging of the batteries prepared in Comparative Example 2 and Examples 4 to 8 of the present invention. 'A' shows the result of the battery prepared in Comparative Example 2, and 'B' to 'F' show the results of the batteries prepared in Examples 4 to 8. It can be seen that, in the battery comprising the porous composite electrode prepared according to the present invention, an electrode active material was not separated from the electrode upon charging and discharging, and its wetting ability to an aqueous electrolyte is enhanced, by which its electric charge upon charging was increased by 20%.
0055Figs. 11a and 11b are time-current curves respectively showing charging and discharging characteristics to 100 cycles of the batteries prepared in Comparative Example 2 and Example 6 of the present invention. It can be seen that, in the electrode made only of a carbon electrode active material, current change upon discharging was sharply decreased as the number of cycles was increased during 100 cycles, while in the composite electrode of the present invention, it was maintained nearly constant.
0056Figs. 12a to 12d are graphs respectively showing electric charges upon charging (Fig. 12a), electric charges upon discharging (Fig. 12b), specific electric charges upon discharging (Fig. 12c), and charging and discharging efficiencies (Fig. 12d) during 100 cycles of charging and discharging for the batteries prepared in Example 6 and Comparative Example 2. Type A shows the result of the electrode of Comparative Example 2, and Type C shows the result of the composite electrode of Example 6. The average electric charge upon charging during 100 cycles is 0.200 [Amin.] for the electrode prepared in Comparative Example 2, which is 3.5% higher compared with the value of 0.193 [A·min.] for the composite electrode of Example 6 (Fig. 12a). Meanwhile, although the average electric charge upon discharging of the electrode of Comparative Example 2 is the same as the value of 0.146 [A·min] for the composite electrode of Example 6, it was gradually decreased as the number of cycles was increased, so as to reach to 0.130 [A·min.] for 100th cycle, which is 18% lower than the value of 0.154 [A·min.] for the composite electrode of the present invention (Fig. 12b). Thus, it was found that in the composite electrode of the present invention, electric charge upon discharging to 100 cycles is very stable, and tends to increase to some extent. It can be understood that such result came from the fact that due to the addition of silica gel to carbon, wetting ability of the electrode to an aqueous NaCl solution is increased, and thus, its cycle characteristics can be stabilized, and that due to the increase of the effective specific surface of the electrode, an excellent electric charge upon discharging can be exhibited only by using a small amount of activated carbon.
0057In the average specific electric charge upon discharging, it is 0.317 [(A·min.)/g] for the electrode of Comparative 2, while it is 0.456 [(A·min.)/g] for the composite electrode of Example 6. That is, it was increased by 43% (Fig. 12c) in the composite electrode according to the present invention. It can be understood that the composite electrode of the present invention can exhibit stable and high specific electric charge upon discharging, resulting from the increase of wetting ability of carbon due to the addition of silica gel to carbon, while the electrode made only of a carbon electrode active material cannot show such effect because wetting ability of carbon active material is low, and thus only small amount of activated carbon can actually participate in a cell reaction. Further, at 100th cycle, the average specific electric charge upon discharging is 0.482 [(A·min.)/g] for the composite electrode of the present invention, while it is only 0.283 [(A.min.)/g] for the electrode of Comparative Example 2. That is, it can be seen that the difference between them was increased more. It can be understood that as cycles go on, the difference in the amount of activated carbon actually participated in reaction is increased.
0058In the charging and discharge efficiency, it was very stable for the composite electrode of the present invention to be maintained at 75.6% during 100 cycles relative to the value of the first cycle. However, although it was excellent for the electrode of Comparative Example 2 to 40th cycle, it was decreased with the repetition of cycle and shows 73% (Fig. 12d) at 100th cycle, which is lower than that of the electrode of the present invention. Further, at 100th cycle, the charging and discharging efficiency is 66% for the electrode of Comparative Example 2, and it is 76% for the composite electrode of the present invention. Thus, it was found that the difference is about 10% or more. From the pattern of the graph of Fig. 12d, it is expected that such tendency will be more remarkable as the cycle is repeated more than 100 times.
0059In conclusion, the carbon-porous media composite electrode of the present invention in which silica gel is added to a carbon active material is very stable and high in charging and discharging efficiency, and shows excellent cycle characteristics without electric charge reduction as the cycle goes on. Therefore, it was found that it is suitable for an electrode for a secondary battery, capacitor or CDI.
0060As described above, according to the present invention, a carbon-porous media composite electrode material in which a carbon electrode active material is combined with a porous media, a composite electrode using the same, and a preparation method thereof were provided.
0061The carbon-porous media composite electrode of the present invention has superior wetting ability to an aqueous electrolyte and mechanical strength compared with the conventional carbon electrode made only of a carbon electrode active material. In addition, its preparation method is simple, and it is very stable and high in charging and discharging efficiency, and shows superior cycle characteristics as cycle goes on, even though only a small amount of a carbon active material is used.
0062Accordingly, it is expected that the composite electrode of the present invention can be applied for a secondary battery or a capacitor, or for preparing ultra pure water using a capacitive deionization process, purifying salty water, or the like.
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| US10069147B2 | Cited by | United States of America | Applicant |
| ITMI20090547A1 | Cited by | Italy | Search report |
| WO2008030646A3 | Cited by | World Intellectual Property Organization (WIPO) | International search |
| EP2599753A1 | Cited by | European Patent Office (EPO) | Search report |
| EA016374B1 | Cited by | Eurasian Patent Organization (EAPO) | Search report |
| CN105712428A | Cited by | China | Search report |
| CN101970359A | Cited by | China | Search report |
| EP1575104A1 | Cites | European Patent Office (EPO) | Search report |
| US5953204A | Cites | United States of America | Search report |
| US6475670B1 | Cites | United States of America | Search report |
| JPH10188957A | Cites | Japan | Search report |
| JPH10255807A | Cites | Japan | Search report |
| JPH11135379A | Cites | Japan | Search report |
| JPS63316422A | Cites | Japan | Search report |
7 members in 4 offices; this record represents the family
Priority claims2
| Document | Office | Kind | Date |
|---|---|---|---|
| 2004003357 | Republic of Korea | – | |
| 20040003357 | Republic of Korea | A |
Members7
| Document | Office | Kind | |
|---|---|---|---|
| EP1555244A2This record | European Patent Office (EPO) | A2 | |
| US2005155216A1 | United States of America | A1 | |
| KR20050075811A | Republic of Korea | A | |
| JP2005203365A | Japan | A | |
| KR100569188B1 | Republic of Korea | B1 | |
| US7505250B2 | United States of America | B2 | |
| EP1555244A3 | European Patent Office (EPO) | A3 |
12 legal events, as the office reported them to INPADOC
Over the term
Point at a mark for the eventEvents
| Event | Code | |
|---|---|---|
| Application deemed to be withdrawnWithdrawn18D | 18D | |
| Information on the status of an ep patent application or granted ep patentGrantedSTATUS: THE APPLICATION IS DEEMED TO BE WITHDRAWNSTAA | STAA | |
| Information on the status of an ep patent application or granted ep patentGrantedSTATUS: EXAMINATION IS IN PROGRESSSTAA | STAA | |
| First examination report despatched17Q | 17Q | |
| Designation fees paidAKX | AKX | |
| Designated contracting statesAK | AK | |
| Request for extension of the european patentAX | AX | |
| Search report despatchedORIGINAL CODE: 0009013PUAL | PUAL | |
| Request for examination filed17P | 17P | |
| Designated contracting statesAK | AK | |
| Request for extension of the european patentAX | AX | |
| Public reference made under article 153(3) epc to a published international application that has entered the european phaseORIGINAL CODE: 0009012PUAI | PUAI |
Numbers
- Publication
- 1555244
- Application
- 52502028
Titles3
- German
- Kohlenstoff-poröse Substrate-Verbund-Elektrodenmaterial und Verfahren zur Herstellung dafür
- English
- Carbon-porous media composite electrode and preparation method thereof
- French
- Matériau composite en carbone -support poreux pour une électrode et son procédé de fabrication
Classification
- CPC, 26
- B82Y30/00
- C02F1/46109
- B60C27/062
- C02F1/4691
- C02F2001/46133
- C02F2001/46161
- H01B1/24
- H01M4/04
- H01M4/0416
- H01M4/043
- H01M4/133
- H01M4/1393
- H01M4/62
- H01M4/622
- H01M4/625
- H01M4/808
- H01M10/052
- H01M10/36
- H01M2004/027
- H01G11/20
- H01G11/38
- Y10T29/49115
- Y02E60/10
- B60C27/061
- F01N1/00
- Y02E60/13
- IPC, 20
- C02F1 46
- B82Y99 00
- C02F1 461
- C02F1 469
- H01B1 24
- H01G9 00
- H01G11 22
- H01G11 24
- H01G11 26
- H01G11 30
- H01G11 32
- H01G11 36
- H01G11 38
- H01G11 40
- H01G11 42
- H01G11 86
- H01M4 62
- H01M4 66
- H01M4 80
- H01M10 05
Designated states36
- Contracting states, 30
- Austria
- Belgium
- Bulgaria
- Switzerland
- Cyprus
- Czechia
- Germany
- Denmark
- Estonia
- Spain
- Finland
- France
- United Kingdom
- Greece
- Hungary
- Ireland
- Iceland
- Italy
- Liechtenstein
- Lithuania
- Luxembourg
- Monaco
- Netherlands (Kingdom of the)
- Poland
and 6 moreShow fewer
- Portugal
- Romania
- Sweden
- Slovenia
- Slovakia
- Türkiye
- Extension states, 6
- Albania
- Bosnia and Herzegovina
- Croatia
- Latvia
- North Macedonia
- Yugoslavia, later Serbia and Montenegro (until 2006)