Polycrystalline 18h hexaferrite, method of manufacture, and uses thereof
US-2021246046-A1 · Aug 12, 2021 · US
US2024063545A1 · US · A1
| Field | Value |
|---|---|
| Publication number | US-2024063545-A1 |
| Application number | US-202318234307-A |
| Country | US |
| Kind code | A1 |
| Filing date | Aug 15, 2023 |
| Priority date | Aug 16, 2022 |
| Publication date | Feb 22, 2024 |
| Grant date | — |
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An antenna includes a substrate and an electromagnetic, EM, radiator. The substrate includes a magnetodielectric material. The EM radiator includes an electrically conductive material disposed on an upper surface of the substrate. The EM radiator further includes a root, and a pair of forks that are contiguous with and extend from the root along a first axis. The pair of forks are separated from one another by a slot in the electrically conductive material of the EM radiator to define a fork-shaped EM radiator. The root includes a bridge portion extending between the pair of forks in a direction of a second axis perpendicular to the first axis to electrically connect together the pair of forks.
Opening claim text (preview).
What is claimed is: 1 . An antenna, comprising: a substrate comprising a magnetodielectric material; and an electromagnetic, EM, radiator comprising an electrically conductive material disposed on an upper surface of the substrate, the EM radiator including a root, and a pair of forks that are contiguous with and extend from the root along a first axis, the pair of forks being separated from one another by a slot in the electrically conductive material of the EM radiator to define a fork-shaped EM radiator, wherein the root includes a bridge portion extending between the pair of forks in a direction of a second axis perpendicular to the first axis to electrically connect together the pair of forks. 2 . The antenna of claim 1 , wherein the magnetodielectric material comprises a hexagonal ferrite material. 3 . The antenna of claim 1 , wherein the hexagonal ferrite material includes 18H-type hexaferrite. 4 . The antenna of claim 1 , wherein the substrate is a single layer comprising the magnetodielectric material. 5 . The antenna of claim 1 , wherein the substrate includes a plurality of layers, each of the layers comprising the magnetodielectric material. 6 . The antenna of claim 1 , wherein the substrate extends from a first substrate end to an opposing second substrate end along the first axis to define a substrate length, Subx, and extends from a third substrate end to a fourth substrate end along the second axis to define a substrate width, Suby, and further extends from a lower substrate surface to an upper substrate surface along a third axis to define a substrate thickness, Subz. 7 . The antenna of claim 6 , wherein: the root has a bottom root end that defines a bottom of the EM radiator, and a shoulder root end that includes first and second opposing shoulders of the root, a distance between the bottom root end and the shoulder root end defining a root length, ForkRoot L , and wherein the root extends along the second axis from a first root edge to an opposing second root edge to define a root width, ForkRoot W . 8 . The antenna of claim 7 , wherein the pair of forks comprises: a first fork extending along the first axis from a first proximate end contacting the first shoulder to an opposing first distal end to define a first fork length, Fork L1 , and extending along the second axis from a first outer fork edge to a first inner fork edge to define a first fork width, Fork W1 ; and a second fork spaced apart from the first fork along the second axis, the second fork extending along the first axis from a second proximate end contacting the second shoulder to an opposing second distal end to define a second fork length, Fork L2 , and extending along the second axis from a second outer fork edge to a second inner fork edge to define a second fork width, Fork W2 . 9 . The antenna of claim 8 , wherein the slot is formed between the first and second inner fork edges and extends along the first axis from a slot end proximate the bridge portion to an opposing slot opening between the first and second distal ends to define a slot length, Slot L . 10 . The antenna of claim 8 , wherein the root extends away from the first and second outer fork edges along the second axis to define the first and second shoulders. 11 . The antenna of claim 9 , wherein a distance extending along the second axis between the first and second inner fork edges defines a slot width, Slot W , of the slot. 12 . The antenna of claim 11 , wherein: the substrate length, Subx, minus the root length, ForkRoot L , is greater than the slot length Slot L . 13 . The antenna of claim 12 , wherein the slot end terminates before reaching the first and second shoulders. 14 . The antenna of claim 11 wherein the substrate length, Subx, minus the root length, ForkRoot L , is less than the slot length Slot L . 15 . The antenna of claim 14 , wherein the slot extends beyond the first and second shoulders such that the slot end extends into the root. 16 . An antenna assembly, comprising: the antenna of claim 1 , and further comprising: a host board comprising a dielectric layer including an upper dielectric surface and a lower dielectric surface located opposite the upper dielectric surface, a top metal layer disposed on and bonded to a portion of the upper dielectric surface, and a bottom metal layer disposed on and bonded to the lower dielectric surface, wherein a region of the host board excluding the top metal layer defines an exposed portion of the dielectric layer. 17 . The antenna assembly of claim 16 , wherein a first portion of the antenna is disposed on the top metal layer and a second portion of the antenna is disposed on the exposed portion of the dielectric layer. 18 . The antenna assembly of claim 16 , wherein the EM radiator is spaced apart from the host board by the substrate. 19 . The antenna assembly of claim 16 , wherein the host board extends along the first axis from a first board end to an opposing second board end to define a board length, Grdx, extends along the second axis from a third board end to an opposing fourth board end to define a board width, Grdy, and extends along the third axis from lower dielectric surface to lower dielectric surface to the first and second axes to define a board thickness, Grdz. 20 . The antenna assembly of claim 19 , wherein the top metal layer extends along the first axis from a metal end to an opposing second metal end to define a metal surface length, GrdCprx. 21 . The antenna assembly of claim 20 , wherein the exposed portion of the dielectric layer extends along the first axis from the second metal end to the second board end to define a dielectric surface length, GrdInslx. 22 . The antenna assembly of claim 21 , wherein the dielectric surface length, GrdInslx, is greater than the metal surface length, GrdCprx. 23 . The antenna assembly of claim 19 , further comprising an electrically conductive via extending through the root, the substrate, the top metal layer, and the bottom metal layer, the via configured to establish electrical conductivity between the antenna, the top metal layer and the bottom metal layer. 24 . The antenna assembly of claim 20 , wherein the root is a first distance (Root x ) extending along the first axis away from the first board end, a second distance (Root y ) extending along the second axis away from the second board end. 25 . The antenna assembly of claim 17 , wherein the antenna is operational in one or both of a first frequency range and a second frequency range different from the first frequency range.
with a shorting wall or a shorting pin at one end of the element (H01Q9/0414 takes precedence) · CPC title
by structural association with other equipment or articles · CPC title
Substantially flat resonant element parallel to ground plane, e.g. patch antenna (dipole H01Q9/285; monopole H01Q9/40) · CPC title
formed by a conductive layer on an insulating support {(patch antennas H01Q9/0407; microstrip dipole antennas H01Q9/065; microstrip slot antennas H01Q13/106; transmission line microstrip antennas H01Q13/206; manufacturing reflecting surfaces using insulating material for supporting the reflecting surface H01Q15/142)} · CPC title
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