Ultrasound probe, performance evaluation method therefor, and ultrasound diagnostic equipment
US-2017156696-A1 · Jun 8, 2017 · US
US2016144402A1 · US · A1
| Field | Value |
|---|---|
| Publication number | US-2016144402-A1 |
| Application number | US-201514945337-A |
| Country | US |
| Kind code | A1 |
| Filing date | Nov 18, 2015 |
| Priority date | Nov 20, 2014 |
| Publication date | May 26, 2016 |
| Grant date | — |
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A capacitive transducer includes at least one cell that includes a first electrode and a vibrating membrane including a second electrode provided so as to be apart from the first electrode with a cavity sandwiched between the first electrode and the second electrode. An electrostatic shield is provided on the cell via a silicone rubber layer.
Opening claim text (preview).
What is claimed is: 1 . A capacitive transducer comprising: at least one cell configured to include a first electrode and a vibrating membrane including a second electrode provided so as to be apart from the first electrode with a cavity sandwiched between the first electrode and the second electrode; a silicone rubber layer; and an electrostatic shield provided on the cell via the silicone rubber layer. 2 . The capacitive transducer according to claim 1 , wherein a transmission-reception circuit is connected to the first electrode. 3 . The capacitive transducer according to claim 1 , wherein a transmission-reception circuit is connected to the second electrode. 4 . The capacitive transducer according to claim 1 , wherein the first electrode is formed on a chip and includes a plurality of elements each including at least one cell. 5 . The capacitive transducer according to claim 4 , further comprising: a flexible wire configured to be opposed to a face of the chip on which the cell is provided and configured to be electrically connected to an external connection electrode on the face as a wire that connects the first electrode to a direct-current voltage generating unit or a transmission-reception circuit outside the capacitive transducer. 6 . The capacitive transducer according to claim 4 , further comprising: a flexible wire configured to be opposed to a face of the chip on which the cell is provided and configured to be electrically connected to an external connection electrode on the face as a wire that connects the second electrode to a direct-current voltage generating unit or a transmission-reception circuit outside the capacitive transducer. 7 . The capacitive transducer according to claim 4 , further comprising: a flexible wire configured to be opposed to a face opposite to a face of the chip on which the cell is provided and configured to be electrically connected to an external connection electrode on the opposite face as a wire that connects the first electrode to a direct-current voltage generating unit or a transmission-reception circuit outside the capacitive transducer. 8 . The capacitive transducer according to claim 4 , further comprising: a flexible wire configured to be opposed to a face opposite to a face of the chip on which the cell is provided and configured to be electrically connected to an external connection electrode on the opposite face as a wire that connects the second electrode to a direct-current voltage generating unit or a transmission-reception circuit outside the capacitive transducer. 9 . The capacitive transducer according to claim 1 , further comprising: an acoustic lens on the electrostatic shield. 10 . The capacitive transducer according to claim 9 , wherein the acoustic lens is bonded to the electrostatic shield via the silicone rubber layer. 11 . The capacitive transducer according to claim 1 , wherein the electrostatic shield is at least arranged at a position opposed to the cell. 12 . The capacitive transducer according to claim 1 , wherein the electrostatic shield includes an electrostatic shield layer that has no opening and that is uniformly extended. 13 . The capacitive transducer according to claim 1 , wherein the electrostatic shield includes a plurality of openings viewed from above the cell. 14 . The capacitive transducer according to claim 13 , wherein the plurality of openings of the electrostatic shield are regularly arranged at positions opposed to the cell. 15 . The capacitive transducer according to claim 13 , wherein the plurality of openings of the electrostatic shield are arranged at positions corresponding to areas shifted from the cell. 16 . The capacitive transducer according to claim 1 , wherein the electrostatic shield is composed of a single electrostatic shield layer. 17 . The capacitive transducer according to claim 1 , wherein the electrostatic shield is composed of a plurality of electrostatic shield layers. 18 . The capacitive transducer according to claim 16 , wherein the electrostatic shield is composed of a metal layer. 19 . The capacitive transducer according to claim 16 , wherein the electrostatic shield is arranged on an insulating film. 20 . A sample information acquisition apparatus comprising: the capacitive transducer according to claim 1 ; and a processing unit, wherein the capacitive transducer at least receives ultrasonic waves from a sample, and wherein the processing unit acquires information about the sample using an ultrasonic reception signal from the capacitive transducer. 21 . The sample information acquisition apparatus according to claim 20 , wherein the capacitive transducer also transmits ultrasonic waves to the sample. 22 . The sample information acquisition apparatus according to claim 20 , further comprising: a light source, wherein the capacitive transducer also receives photoacoustic waves generated in response to irradiation of the sample with light generated by the light source, and wherein the processing unit acquires the information about the sample also using a photoacoustic reception signal. 23 . A sample information acquisition apparatus comprising: the capacitive transducer according to claim 1 ; a light source; and a processing unit, wherein the capacitive transducer receives photoacoustic waves generated in response to irradiation of a sample with light generated by the light source, and wherein the processing unit acquires information about the sample using a photoacoustic reception signal. 24 . The sample information acquisition apparatus according to claim 20 , wherein the processing unit is a sample image information generating unit.
using optoacoustic interaction with the material, e.g. laser radiation, photoacoustics (photoacoustic cells G01N21/1702; measuring characteristics of vibrations by using radiation-sensitive means G01H9/00; acousto-optical conversion techniques for short-range imaging G01S15/8965; sound-producing devices using laser bundle G10K15/046) · CPC title
Processing the detected response signal {, e.g. electronic circuits specially adapted therefor (digital signal processing per se G06F17/00)} · CPC title
Electrostatic transducers, e.g. electret-type · CPC title
Electrostatic or capacitive probes, e.g. electret or cMUT-probes · CPC title
characterised by features of the ultrasound transducer · CPC title
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