Field of the Invention
The present invention relates to a secondary lithium battery, and more particularly to a composite lithium secondary battery whose positive electrode is coated with different positive electrode materials.
Related Prior Art
In recent years, portable electronic devices, such as video camera, digital still camera, mobile phone, and notebook computer, have been widely used. In order to make the electronic devices easy to carry and have a prolonged working time, how to reduce the size and weight of the battery while extending the service life thereof has become the main technical problem that has to be solved. Therefore, lightweight secondary batteries with high energy density have been developed and used as power source of the portable electronic devices.
The charge and discharge in lithium secondary battery occurs by the process of intercalation and deintercalation of lithium ions. The lithium secondary battery has been widely used due to it provides higher energy density than the lead battery and Ni—Cd battery do. As shown in
As for the negative electrode material, the change in the crystal structure of the carbon material is very small during the process of intercalation and deintercalation of lithium ions, therefore, currently, carbon material, such as graphite, has been widely adopted as negative electrode material, in order to enhance the property, such as capacitance of the lithium battery. The positive electrode materials normally used in lithium battery includes LiCoO2, LiNiO2, LiMn2O4, LiMnO2, LiNiCoMnO2, LNCM, LiNixCoyAl1-x-yO2, LNCA, LiFePO4, LFP.
It should be noted that the current positive electrode is made by casting a both lateral surfaces of a positive plate with a single positive electrode material. However, different positive electrode materials have respective merits and faults. For example, LiMn2O4 has a low capacitance but a high thermal safety, therefore, it is suitable for use in medium and large high power battery. LiFePO4 has a higher thermal safety than LiMn2O4, and has no risk of explosion or overheat, therefore it is suitable for use in large high power battery. The lithium secondary battery with a single type of positive electrode material only can have good performance in some of the characteristics.
The present invention has arisen to mitigate and/or obviate the afore-described disadvantages.
The present invention is aimed at providing a composite lithium secondary battery, wherein a plurality of positive electrode layers of the electrode layer assembly are coated with different positive electrode materials which are selected from the group consisting of LFP (LiFePO4) and lithium-containing ternary oxides, at least one of the positive electrode layers is coated with LiFePO4, and at least another one of the positive electrode layers is coated with lithium-containing ternary oxide, so that, during the process of charge and discharge, the lithium secondary battery would have the advantages of different positive electrode materials, so as to provide a composite lithium secondary battery with high voltage, high capacitance and high safety.
To achieve the above objective, a composite lithium secondary battery in accordance with the present invention comprises an electrode layer assembly, and the electrode layer assembly comprises: a plurality of positive electrode layers, a plurality of negative electrode layers and a plurality of separating layers disposed between the positive and negative electrode layers, wherein the positive and negative electrode layers and the separating layer are superimposed one another to form the electrode layer assembly. The positive electrode layers are provided with positive electrode materials which allow for intercalation and deintercalation of electrode reaction material, at least one positive electrode ear is provided at a lateral edge of each of the positive electrode layers, two opposite surfaces of each of the positive electrode layers are provided with the positive electrode materials, the negative electrode layers being provided with negative electrode materials which allow for intercalation and deintercalation of the electrode reaction material, at least one negative electrode ear is provided at a lateral edge of each of the negative electrode layers. The composite lithium secondary battery is characterized in that: the two opposite surfaces of the respective positive electrode layers are coated with the same positive electrode material which is LiFePO4 or lithium-containing ternary oxide, at least one of the positive electrode layers is coated with LiFePO4, and at least another one of the positive electrode layers is coated with lithium-containing ternary oxide.
Preferably, the lithium-containing ternary oxide is selected from the group consisting of LiNixCoyAl1-x-yO2 or LiNiCoMnO2, or LiFePO4 and LiNixCoyAl1-x-yO2. The composite lithium secondary battery with LFP+LNCA has a working voltage ranging from 4.5 V to 2.7 V, and a capacitance over 175 mAh/g. The composite lithium secondary battery with LFP+LNCA has a working voltage ranging from 4.4 V to 2.6 V, and a capacitance over 185 mAh/g.
Preferably, the two opposite surfaces of the respective positive electrode layers are respectively formed into a coating layer after being coated with the positive electrode material, the coating layer coated with LiNixCoyAl1-x-yO2 or LiNiCoMnO2 is defined as a first coating layer, the positive electrode layer whose two opposite surfaces coated with the first coating layer is defined as a ternary positive electrode layer, the coating layer coated with LiFePO4 is defined as a second coating layer, the positive electrode layer whose two opposite surfaces coated with the second coating layer is defined as an LiFePO4 positive electrode layer, the electrode layer assembly comprises one said LiFePO4 positive electrode layer and two said ternary positive electrode layers which are superimposed one another, or two said LiFePO4 positive electrode layers and one said ternary positive electrode layer which are superimposed one another. The electrode layer assembly can also comprise one said LiFePO4 positive electrode layer and three said ternary positive electrode layers which are superimposed one another, or two said LiFePO4 positive electrode layers and two said ternary positive electrode layers which are superimposed one another, or three said LiFePO4 positive electrode layers and one said ternary positive electrode layer which are superimposed one another.
Preferably, the negative electrode materials include carbon materials of graphite or coke.
Preferably, the positive electrode layers, the negative electrode layers and the separating layers are superimposed one another and rolled up into a coiled core assembly.
The present invention will be clearer from the following description when viewed together with the accompanying drawings, which show, for purpose of illustrations only, the preferred embodiment in accordance with the present invention.
Referring to
As shown in
The two opposite surfaces 11, 12 of the respective positive electrode layers 10 are coated with the same positive electrode material which is LFP (LiFePO4) or lithium-containing ternary oxide. At least one of the positive electrode layers 10 is coated with LFP, and at least one of the positive electrode layers 10 is coated with lithium-containing ternary oxide. As shown in
The LFP of the composite lithium secondary battery of the present invention is LiFePO4 with olivine structure and lithium-containing ternary oxide. The lithium-containing ternary oxide is preferably chosen from the group consisting of LNCA (LiNixCoyAl1-x-yO2) and LNCM (LiNiCoMnO2), so as to form the combination of (LFP+LNCA) or (LFP+LNCM).
The positive electrode layer 10 is formed by coating an aluminum substrate (such as aluminum foil) with positive electrode material. The positive electrode material can also includes conductive agent and adhesive agent which are used to apply the active substance formed by the lithium containing oxide to the aluminum substrate. The adhesive agent includes but is limited to resin adhesive.
The negative electrode layer 20 includes two opposite surfaces 21, 22. Between the two opposite surfaces 21, 22 are defined two opposite lateral edges 23, 24 and two opposite ends which are shorter than the two opposite lateral edges 23, 24. The lateral edge 23 is provided with at least one negative electrode ear 27. Each of the two opposite surface 21, 22 is provided with a coating area which allows for intercalation and deintercalation of negative electrode material of the electrode reaction material, such as lithium ion. As shown in
The negative electrode material of the composite lithium secondary battery of the present invention is selected from the carbon material of graphite or coke. More specifically, the negative electrode layer 20 is formed by coating a copper substrate (such as copper foil) with the negative electrode material. The negative electrode material can also include conductive agent and adhesive agent which are used to apply the carbon material to the copper substrate. The adhesive agent includes but is limited to resin adhesive. Besides, the separating layer 30 is a microporous or porous film which is used to close or block passage and separate the positive and negative electrode layers 10, 20, and the material of the separating layer 30 includes but is not limited to PP or PE.
What mentioned above are the structure and material of the positive electrode layer 10, the negative electrode layer 20 and the separating layer 30 of the preferred embodiment of the present invention, and for the coating area of the positive electrode layer 10, please refer to
For easy explanation of the coating process, as shown in
As shown in
As shown in
As shown in
It should be understood that the number of the positive electrode layers 10 and the proportion between the LFP positive electrode layer 10B and the ternary positive electrode layer 10A are not limited to the abovementioned embodiments, but can be adjusted as desired, as long as the proportion and the coating area of the LFP and the lithium-containing ternary oxide can improve the work efficiency of the lithium secondary battery.
While we have shown and described various embodiments in accordance with the present invention, it is clear to those skilled in the art that further embodiments may be made without departing from the scope of the present invention.