STACKED SECONDARY BATTERY AND METHOD OF MANUFACTURING THE SAME
A stacked secondary battery is formed by laying plate-shaped positive electrodes and plate-shaped negative electrodes one on the other by way of separators, wherein a collector is disposed at the front end of the end facet of each of the positive electrodes or the negative electrodes as viewed in a direction orthogonal relative to the stacking direction and has an active substance layer formed on the collector by applying slurry of particles of an active substance with a gap separating it from the front end or the electrode active substance layer is made to show a thickness varying from the front end toward the inside.
1 . A stacked secondary battery formed by laying plate-shaped positive electrodes and plate-shaped negative electrodes one on the other by way of separators, wherein a collector is disposed at the front end of the end facet of each of the positive electrodes or the negative electrodes as viewed in a direction orthogonal relative to the stacking direction and has an active substance layer formed on the collector by applying slurry of particles of an active substance with a gap separating it from the front end or the electrode active substance layer is made to show a thickness varying from the front end toward the inside.
2 . The stacked secondary battery according to claim 1 , wherein the collector has active substance layers formed on the opposite surfaces with a gap separating them from the front end or the electrode active substance layer may be made to show a thickness varying from the front end toward the inside.
3 . The stacked secondary battery according to claim 1 , wherein a molten and solidified section is formed on an outer peripheral part of the active substance layer as viewed in a direction orthogonal relative to the stacking direction.
4 . The stacked secondary battery according to claim 2 , wherein a molten and solidified section is formed on an outer peripheral part of the active substance layer as viewed in a direction orthogonal relative to the stacking direction.
5 . A method of manufacturing a stacked secondary battery comprising:
forming at least either plate-shaped positive electrodes or plate-shaped negative electrodes by
forming an electrode active substance layer on each of the electrodes by applying an electrode active substance to a metal foil having a surface area greater than the surface of the electrode;
subsequently cutting the metal foil by irradiating a laser beam; and
removing a part of the electrode active substance layer running along the cut end facet of the metal foil by means of a thermal effect of the laser beam to form a molten and solidified section of the electrode active substance;
subsequently laying the plate-shaped positive electrodes and the plate-shaped negative electrodes by way of separators; and
sealing the stacked secondary battery.
6 . The method according to claim 5 , wherein a laser beam is irradiated only from one of the opposite sides of the electrode to remove a part of the electrode active substance layer running along the cut end facet of the metal foil by means of a thermal effect of the laser beam and to form molten and solidified sections of the electrode active substance on the respective surfaces of the electrode.