Active material particle, electrode, energy storage device, all-solid-state secondary battery, method for producing active material particles, and energy storage apparatus
An active material particle according to an aspect of the present invention includes an active material base material and a covering layer covering at least a part of a surface of the active material base material, in which the covering layer contains niobium atoms and phosphorus atoms, and a content of the phosphorus atoms with respect to a total content of the niobium atoms and the phosphorus atoms in the covering layer is more than 0 mol % and 80 mol % or less.
1 . An active material particle comprising an active material base material and a covering layer covering at least a part of a surface of the active material base material,
wherein the covering layer contains niobium atoms and phosphorus atoms, and a content of the phosphorus atoms with respect to a total content of the niobium atoms and the phosphorus atoms in the covering layer is more than 0 mol % and 80 mol % or less.
2 . The active material particle according to claim 1 , wherein the covering layer contains a composite oxide containing the niobium atoms and the phosphorus atoms.
3 . The active material particle according to claim 2 , wherein the composite oxide is represented by the following formula 1:
Li x Nb (1-y) P y O z A w 1
wherein A represents one or more elements other than Li, Nb, P and O; x is a number of more than 0 and 2 or less; y is a number of more than 0 and 0.8 or less; z is a number of 2 or more and 4 or less; and w is a number of 0 or more and 1 or less.
4 . The active material particle according to claim 1 , wherein a content of the covering layer with respect to a content of the active material base material is 0.01% by mass or more and 2.0% by mass or less.
5 . A positive active material for an all-solid-state secondary battery, comprising a base material including a substance capable of storing and releasing lithium ions, and a surface layer which is present on a surface of the base material, contains a lithium element, a niobium element, an oxygen element and a halogen element, and satisfies 0<c≤1.0 where c is a ratio of a total number of moles of the halogen to a number of moles of the niobium, with the surface layer being crystalline.
6 . The positive active material for an all-solid-state secondary battery according to claim 5 , wherein the halogen is at least one selected from bromine and iodine.
7 . The positive active material for an all-solid-state secondary battery according to claim 5 , wherein the surface layer is represented by the composition formula of Li a NbO b X c (where X is halogen, and a, b and c are real numbers satisfying 0.5≤a≤1.5, 2.5≤b≤3.5 and 0<c≤1.0, respectively).
8 . An electrode comprising the active material particle according to claim 1 .
9 . An energy storage device comprising the electrode according to claim 8 .
10 . An all-solid-state secondary battery comprising the electrode according to claim 8 .
11 . A method for producing active material particles, comprising, in an order presented, covering at least a part of a surface of a particulate active material base material with a coating agent containing niobium atoms and phosphorus atoms, and heat-treating the active material base material covered with the coating agent,
wherein a content of the phosphorus atoms with respect to a total content of the niobium atoms and the phosphorus atoms in the coating agent is more than 0 mol % and 80 mol % or less.
12 . An energy storage apparatus comprising two or more energy storage devices, and one or more of the energy storage devices according to claim 9 .