Pressure detection and display apparatus and electronic device
09836171 · 2017-12-05
Assignee
Inventors
Cpc classification
G06F2203/04105
PHYSICS
G06F2203/04103
PHYSICS
G01L9/08
PHYSICS
International classification
G06F3/041
PHYSICS
Abstract
A pressure detection and display apparatus can provide good visibility even if a person wears polarized sunglasses. The pressure detection and display apparatus includes a piezoelectric sensor having upper electrode, lower electrode, and a piezoelectric layer interposed between the upper electrode and the lower electrode, a polarization plate disposed under the lower electrode, and a display member disposed under the polarization plate. The piezoelectric layer is made of a retardation plate. The piezoelectric sensor and the polarization plate are arranged such that the absorption axis of the piezoelectric layer defines an angle of 20 degrees to 70 degrees relative to the slow phase axis of the polarization plate.
Claims
1. A pressure detection and display apparatus comprising: a piezoelectric sensor having an upper electrode, a lower electrode, and a piezoelectric layer interposed between the upper electrode and the lower electrode; and a display device including a polarization plate located closer to the lower electrode of the piezoelectric sensor and a display member located below the polarization plate; the piezoelectric layer being made of a retardation plate which converts light from the display member linearly-polarized by the polarization plate to an elliptically or circularly polarized light; and the piezoelectric sensor and the polarization plate are arranged such that a slow phase axis of the piezoelectric layer defines an angle of 20 degrees to 70 degrees relative to an absorption axis of the polarization plate.
2. The pressure detection and display apparatus according to claim 1, wherein retardation value of the piezoelectric layer is a quarter of visible light wavelength.
3. The pressure detection and display apparatus according to claim 1, wherein retardation value of the piezoelectric layer is 800 nm to 30000 nm.
4. The pressure detection and display apparatus according to claim 1, wherein the upper electrode includes indium tin oxide or “poly(3, 4-ethylenedioxythiophene)”.
5. The pressure detection and display apparatus according to claim 1, wherein the lower electrode includes indium tin oxide or “poly(3, 4-ethylenedioxythiophene)”.
6. The pressure detection and display apparatus according to claim 1, wherein the piezoelectric layer is made of organic piezoelectric material.
7. The pressure detection and display apparatus according to claim 6, wherein the organic piezoelectric material includes polyvinylidene fluoride or polylactic acid.
8. An electronic device comprising: a pressure detection and display apparatus according to claim 1; and a touch panel.
9. The electronic device according to claim 8, wherein the touch panel is a capacitance type touch panel.
10. The pressure detection and display apparatus according to claim 2, wherein the upper electrode includes indium tin oxide or “poly(3, 4-ethylenedioxythiophene)”.
11. The pressure detection and display apparatus according to claim 3, wherein the upper electrode includes indium tin oxide or “poly(3, 4-ethylenedioxythiophene)”.
12. The pressure detection and display apparatus according to claim 2, wherein the lower electrode includes indium tin oxide or “poly(3, 4-ethylenedioxythiophene)”.
13. The pressure detection and display apparatus according to claim 3, wherein the lower electrode includes indium tin oxide or “poly(3, 4-ethylenedioxythiophene)”.
14. The pressure detection and display apparatus according to claim 4, wherein the lower electrode includes indium tin oxide or “poly(3, 4-ethylenedioxythiophene)”.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
DESCRIPTION OF EMBODIMENTS
(5) Embodiments according to the present invention will be described below i detail with reference to figures. The dimensions, materials, shapes and relative positions of parts or portions described in the embodiments of the present invention are merely described as examples do not limit the scope of the present invention unless otherwise specified.
(6) 1. First Embodiment
(7) (1) Structure of the pressure detection and display apparatus
(8) Referring to
(9) The pressure detection and display apparatus has a function of detecting amount and position of the applied load.
(10) As shown in
(11) Hereinbelow, members constituting the piezoelectric sensor 10 will be described.
(12) (2) Piezoelectric Sensor
(13) Again, as shown in
(14) (3) Piezoelectric Layer
(15) The piezoelectric layer 1 generates electric charges if the load is applied thereto. Materials of the piezoelectric layer 1 is organic piezoelectric materials, for example. The organic piezoelectric materials may include fluoride compound or its copolymer, and polymer material including chirality. The fluoride compound or its copolymer may be polyvinylidene fluoride, vinylidene fluoride-tetrafluoroethylene copolymer, or vinylidene fluoride-trifluoroethylene copolymer, for example. The polymer material having chirality may be PLAA or PDLA, for example.
(16) Furthermore, the piezoelectric layer 1 has a function as a retardation plate. The organic piezoelectric material is extended to allow the piezoelectric layer 1 to have the function of retardation plate.
(17) (4) Electrodes
(18) The upper electrode 2 and the lower electrode 3 can be flat and patterned. The upper electrode 2 and the lower electrode 3 can be made of conductive materials. The conductive material may include transparent conductive oxide such as Indium-Tin-Oxide (ITO) and Tin-Zinc-Oxide (TZO), or conductive polymer such as Polyethylenedioxythiophene (PEDOT). In this case, the electrodes can be formed with vapor deposition or screen printing, for example.
(19) The conductive material may include conductive metals such as copper and silver. In this case, the electrodes can be formed with vapor deposition, or metal paste such as copper paste and silver paste.
(20) Furthermore, the conductive material may include a binder and conductive materials, such as carbon nanotube, metal grain, and metal nanofiber, disbursed therein.
(21) If the piezoelectric sensor 10 is placed on a display device such as liquid crystal devices and organic EL devices, it is preferable that the piezoelectric layer 1 be made of transparent materials or the piezoelectric sensor is formed so thin that the light can sufficiently transmit therethrough, in order to make it possible to see the display of the display device.
(22) The display device 20 is configured such that the polarization plate 21 is laminated on the display member 22.
(23) The display member 22 is configured such that the liquid crystal element or the organic EL element is interposed by glass substrates. The polarization plate 21 allows only the linear polarization of the specified direction among the light emitted from the display member 22 to transmit therethrough. The polarization plate 21 has a thickness of 150 μm to 200 μm, for example.
(24) According to the above-descried configuration, if the upper surface of the piezoelectric layer 1 is operated with a finger or a pen while the display on the display member 22, which is on the rear surface of the piezoelectric sensor 10, is seen, the piezoelectric layer 1 is deflexed, so that electric charge is generated at the deflected portion of the piezoelectric layer 1.
(25) Then, the electrical charge generated in the piezoelectric layer is detected by an electronic circuit (not shown) via the upper electrode 2 and the lower electrode 3. Based on the amount of the detected electrical charge, various functions of the device are switched.
(26) At this time, the indication of “letters, marks, patterns, and so on” on the display member 22 is, if the polarization plate 21, which is disposed on the upper surface of the display member 22, absorbs light wave in Y direction for example among light waves in X direction and Y direction perpendicular to X direction, the lighting light that has become the linearly polarized light in X direction and which is then emitted from the polarization plate 21. However, this light is converted from the linear polarization to the elliptic polarization light by the piezoelectric layer 1 placed on the polarization plate 21, wherein the piezoelectric layer 1 has a function of the retardation plate and its slow phase axis defines an angle of 20 degrees through 70 degrees relative to the absorption axis of the polarization plate 21. It is further preferable that the angle be 40 degrees through 50 degrees.
(27) As a result, even if a person wears polarized sunglasses having the absorption axis of the light waves whose direction is the same as that of the lighting light of the display member 22, he or she can visually recognize the display of the display member 22 disposed below the piezoelectric sensor 10.
(28) Furthermore, if the retardation value of the piezoelectric layer 1 is 800 nm to 30000 nm, the light emitted from the display member 22 is emitted from the piezoelectric layer 1 without change in color tones.
(29) As a result, the light emitted from the display member 22 is converted into a state close to natural light and then is emitted from the piezoelectric layer 1. As a result, even if a person observes the display member wearing polarized sunglasses, he or she can observe the display member 22 without seeing a change in color tones.
(30) Furthermore, if the retardation value of the piezoelectric layer 1 is a quarter of visible light wavelength, the light emitted from the display member 22 is converted to the light shifted by quarter wavelength by the piezoelectric layer 1, and then is emitted upward. As a result, even if a person wears polarized sunglasses having the absorption axis of the light waves whose direction is the same as that of the lighting light of the display device 22, he or she can visually recognize the display on the display member disposed below the piezoelectric sensor 102 clearly.
(31) According to the present embodiment, the piezoelectric layer 1 of the piezoelectric sensor 10 has a function of the retardation plate, and the piezoelectric layer 1 is disposed on the polarization plate 21 such that its absorption axis defines an angle of 20 degrees to 70 degrees relative to the slow phase axis of the polarization plate 21. Accordingly, the lighting light of the display device 20 is converted by the piezoelectric layer 1 from the linear polarization to the elliptic polarization, and then is emitted upward. As a result, even if a person wears polarized sunglasses having the absorption axis whose direction is the same as that of the lighting light, he or she can visually recognize the display member 22 disposed below the piezoelectric sensor 10.
(32) Furthermore, since the retardation value of the piezoelectric layer 1 may be a quarter of the visible light wavelength, the light emitted from the piezoelectric layer 1 is generally converted from the linear polarization to the circular polarization. As a result, even if a person wears polarized sunglasses, he or she can visually recognize the display member 22 disposed below the piezoelectric sensor 10 more clearly.
(33) Furthermore, since the retardation value of the piezoelectric layer 1 may be 800 nm to 30000 nm, the light emitted from the display member is converted to a state close to natural light, and then is emitted from the piezoelectric layer 1. As a result, even if a person observes the display member 22 wearing polarized sunglasses, he or she can observe the display member 22 without seeing a change in color tones.
(34) 2. Second Embodiment
(35) The piezoelectric layer 1 may be patterned so as to have active portions and inactive portions.
(36)
(37) As shown in
(38) The active piezoelectric portions 1a are portions where the electrical charge is generated when the load is applied to the piezoelectric sensor 10. In contrast, the inactive piezoelectric portions 1b are portions where the electrical charge is not generated even if the load is applied.
(39) The above-described configuration prevents the generated electrical charge from leaking around the upper electrode 2 or the lower electrode 3 and mixing into other electrodes (i.e., preventing the cross-talk phenomenon). As a result, it is possible to improve position detection accuracy and load detection accuracy.
(40) 3. Third Embodiment
(41) Although the configuration in which the piezoelectric layer 1 is interposed between the upper electrode 2 and the lower electrode 3 was described, a reference electrode 4 may be disposed between the upper electrode 2 and the lower electrode 3.
(42)
(43) As shown in
(44) The above-described structure prevents the generated electrical charge from leaking and mixing into other electrodes at or close to the upper electrode 2 or the lower electrode 3 (i.e., preventing the cross-talk phenomenon). As a result, it is possible to improve the position detection accuracy and the load detection accuracy. Although the upper electrode 2 or the lower electrode 3 is directly laminated on the active piezoelectric portions 1a in the above described case, insulation material such as adhesive and a film may be laminated between the active piezoelectric portions 1a and the upper electrode 2, or between the active piezoelectric portions la and the lower electrode 3.
(45) 4. Other Embodiments
(46) As shown in
(47) Since the touch panel 30 is laminated on the piezoelectric sensor 10, it is possible to detect the position of the applied load. It is particularly preferable to use capacitance type touch panels among touch panels.