Patent classifications
H01B1/08
POSITIVE ELECTRODE MATERIAL AND BATTERY
The positive electrode material according to an aspect of the present disclosure includes a first solid electrolyte, a positive electrode active material, and a coating material coating the surface of the positive electrode active material. The first solid electrolyte is represented by the following compositional formula: Li.sub.aM.sub.bO.sub.cX.sub.d. In the compositional formula, a, b, c, and d are positive real numbers; M is at least one selected from the group consisting of Ta and Nb; and X is at least one selected from the group consisting of Cl, Br, and I.
LITHIUM ION-CONDUCTING GARNET TYPE OXIDE
An oxide-based solid electrolyte with a high lithium ion conductance is provided. A lithium ion-conducting garnet type oxide includes Li, La, Ga, Zr, a halogen element, and oxygen. A lithium ion conductivity at room temperature is not lower than 1.0×10.sup.−3 S/cm. A proportion of Ga with respect to 1 mole of the oxide may be not larger than 0.5 moles.
The halogen element may be at least one type selected from the group consisting of Cl, Br, and I, and a proportion of Li with respect to 1 mole of the oxide may be not smaller than 6.1 moles and smaller than 6.5 moles.
POSITIVE ELECTRODE ACTIVE MATERIAL AND LITHIUM SECONDARY BATTERY COMPRISING THE SAME
The present invention relates to a positive electrode active material having improved electrical characteristics by adjusting an aspect ratio gradient of primary particles included in a secondary particle, a positive electrode including the positive electrode active material, and a lithium secondary battery using the positive electrode.
POSITIVE ELECTRODE ACTIVE MATERIAL AND LITHIUM SECONDARY BATTERY COMPRISING THE SAME
The present invention relates to a positive electrode active material having improved electrical characteristics by adjusting an aspect ratio gradient of primary particles included in a secondary particle, a positive electrode including the positive electrode active material, and a lithium secondary battery using the positive electrode.
SOLID-STATE BATTERY
A solid-state battery including a positive electrode layer that includes a positive electrode active material having a layered rock salt-type structure and including a Li transition metal oxide containing at least one element selected from the group consisting of Co, Ni and Mn, and a solid electrolyte having a LISICON-type structure; and the positive electrode active material has an average particle size of 4 μm or less.
TRANSPARENT ELECTROCONDUCTIVE LAYER, TRANSPARENT ELECTROCONDUCTIVE SHEET, TOUCH SENSOR, LIGHT CONTROL ELEMENT, PHOTOELECTRIC CONVERSION ELEMENT, HEAT RAY CONTROL MEMBER, ANTENNA, ELECTROMAGNETIC WAVE SHIELD MEMBER, AND IMAGE DISPLAY DEVICE
A transparent electroconductive layer 3 includes a first main surface 5 and a second main surface 6 facing each other in a thickness direction. The transparent electroconductive layer 3 is a single layer extending in a plane direction perpendicular to the thickness direction. The transparent electroconductive layer 3 has a plurality of crystal grains 4, a plurality of first grain boundaries 7 partitioning the plurality of crystal grains 4 and having each of one end edge 9 and another end edge 10 in the thickness direction open in each of the first main surface 5 and the second main surface 6, and a second grain boundary 8 branching from a first intermediate portion 11 of one first grain boundary 7A and reaching a second intermediate portion 12 of another first grain boundary 7B.
TRANSPARENT ELECTROCONDUCTIVE LAYER, TRANSPARENT ELECTROCONDUCTIVE SHEET, TOUCH SENSOR, LIGHT CONTROL ELEMENT, PHOTOELECTRIC CONVERSION ELEMENT, HEAT RAY CONTROL MEMBER, ANTENNA, ELECTROMAGNETIC WAVE SHIELD MEMBER, AND IMAGE DISPLAY DEVICE
A transparent electroconductive layer 3 includes a first main surface 5 and a second main surface 6 facing each other in a thickness direction. The transparent electroconductive layer 3 is a single layer extending in a plane direction perpendicular to the thickness direction. The transparent electroconductive layer 3 has a plurality of crystal grains 4, a plurality of first grain boundaries 7 partitioning the plurality of crystal grains 4 and having each of one end edge 9 and another end edge 10 in the thickness direction open in each of the first main surface 5 and the second main surface 6, and a second grain boundary 8 branching from a first intermediate portion 11 of one first grain boundary 7A and reaching a second intermediate portion 12 of another first grain boundary 7B.
BIORESORBABLE RF COILS FOR POST-SURGICAL MONITORING BY MRI
An implantable bioresorbable radio frequency (RF) coil for high-resolution and high-specificity post-surgical evaluating or monitoring with magnetic resonance imaging (MRI) is disclosed. The coil includes a bioresorbable conductor configured to be resorbed within a patient while the coil is implanted in the patient. In one embodiment, the target application of this coil is the evaluation or monitoring (via MRI) of peripheral nerve regeneration following surgical repair.
ELECTROLYTE AND POWER STORAGE DEVICE
A technique that can improve ionic conductivity is provided.
An electrolyte includes an inorganic composite particle that is a composite of an inorganic particle with a compound having a betaine structure and one or more functional groups selected from a (meth)acryloxy group, a Si(OR).sub.3 group (R is a hydrogen atom or an alkyl group having 1 to 3 carbon atoms), and an Al(OR).sub.2 group (R is a hydrogen atom or an alkyl group having 1 to 3 carbon atoms).
SOLID ELECTROLYTE MATERIAL AND BATTERY USING SAME
A solid electrolyte material of the present disclosure includes: Li; M; Al; O; and X, wherein the M is at least one selected from the group consisting of Ta and Nb, and the X is at least one selected from the group consisting of F, Cl, and Br.