Mechanoluminescent display device
09791109 · 2017-10-17
Assignee
Inventors
Cpc classification
International classification
Abstract
Provided is a display device in a mechanical method using wind, vibration. The mechanoluminescent display device includes a substrate having a predetermined shape, and projections formed with a predetermined pattern on the substrate. The projections are formed of a mixture of a stress luminescent material emitting light by mechanical energy which is applied and a stress transmission material transmitting the mechanical energy applied from the outside to the stress luminescent material.
Claims
1. A mechanoluminescent display device, comprising: a substrate having a predetermined shape; and projections formed with a predetermined pattern on the substrate, wherein the projections are formed of a mixture of a stress luminescent material emitting light by mechanical energy which is applied from outside and a stress transmission material transmitting the mechanical energy applied from the outside to the stress luminescent material; and wherein the stress transmission material is a polydimethylsiloxan or a silicon rubber, wherein the pattern comprises a first area and a second area, wherein projections included in the first area include a first stress luminescent material, and projections included in the second area include a second stress luminescent material, said second stress luminescent material being different from the first stress luminescent material, and wherein the first stress luminescent material and the second stress luminescent material have light emitting spectrums different from each other.
2. The mechanoluminescent display device of claim 1, wherein at least one characteristic selected from the group consisting of an optical spectrum, brightness, and a color coordinate, of each of the first stress luminescent material and the second stress luminescent material varies in accordance with a change in a period of transmitting the mechanical energy applied to the first stress luminescent material and the second stress luminescent material.
3. The mechanoluminescent display device of claim 1, wherein the second stress luminescent material emits white light as the mechanical energy is applied, and a mixing ratio of red and blue phosphors in the second stress luminescent material is at least one of 9:1, 8:2, 7:3, 6:4, and 5:5.
4. The mechanoluminescent display device of claim 1, wherein the mechanical energy is wind or vibration.
Description
DESCRIPTION OF DRAWINGS
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MODES OF THE INVENTION
(10) The above and other objects, features and advantages of the present invention will become more apparent with reference to exemplary embodiments which will be described hereinafter with reference to the accompanying drawings. However, the present invention is not limited to exemplary embodiments which will be described hereinafter, and can be implemented by various different types. Exemplary embodiments of the present invention are described below in sufficient detail to enable those of ordinary skill in the art to embody and practice the present invention. The present invention is defined by claims. Meanwhile, the terminology used herein to describe exemplary embodiments of the invention is not intended to limit the scope of the invention. The articles “a,” “an,” and “the” are singular in that they have a single referent, but the use of the singular form in the present document should not preclude the presence of more than one referent.
(11) Hereinafter, exemplary embodiments of the present invention will be described in detail with reference to the accompanying drawings. First, when allocating reference numerals to components of each drawing, the same reference numeral will be allocated to the same component even when being shown in different drawings. Further, in the following description with respect to the exemplary embodiments of the present invention, when it is determined that a detailed description of well-known technology related to the present invention can unnecessarily obscure a subject matter of the present invention, the description will be omitted.
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(14) As shown in
(15) Here, it should be noted that a color close to the green color is emitted when the stress luminescent material emitting the blue light is mixed with the stress transmission material such as poldimethylsiloxane (hereinafter, PDMS). This may indicate that it is not easy to excite the stress luminescent material of the blue color mixed with the stress transmission material using a stretching-releasing tester of
(16) Meanwhile, light having a different wavelength may be emitted when a period of generating a stress which is applied to the stress luminescent material is varied even with the same stress luminescent material.
(17) For example, in an embodiment of the present invention, copper-doped zinc sulfide (hereinafter, ZnS:Cu) may be used as the stress luminescent material emitting the blue and green lights, and copper and manganese-doped zinc sulfide (hereinafter, ZnS:Cu,Mn) may be used as the stress luminescent material emitting the red light. That is, the ZnS:Cu may be equally used as the stress luminescent material emitting the blue and green lights, but as the period of generating the stress applied to the ZnS:Cu is varied, the blue light or the green light may be emitted. This may be because a doping position of Cu in the ZnS:Cu is located in various energy levels. That is, as the stress change rate is increased, light of a wavelength range having high energy may be emitted.
(18) As another example, ZnS:Mn, ZnS:Cu,Mn, ZnS:Cu,Pb, ZnS:Cu,Pb,Mn, MgF2:Mn, La2O2S:Eu, Y2O2S:Cu, EuD4TEA, EuD4TEA+1.25 mL DMMP, ZnS:Cu,Cl, ZnS:Cu,Mn,Cl, SrAl2O4:Eu, SrAl2O4:Ce, SrAl2O4:Ce,Ho, SrMgA16O11:Eu, SrCaMgSi2O7:Eu, SrBaMgSi2O7:Eu, Sr2MgSi2O7:Eu, Ca2MgSi2O7:Eu,Dy, CaYA13O7:Eu(Ba,Ca), TiO3:Pr3+, ZnGa2O4:Mn, MgGa2O4:Mn, Ca2Al2SiO7:Ce, ZrO2:Ti, ZnS:Mn,Te, etc. may be used as the stress luminescent material, and the stress luminescent material capable of being used for the present invention is not limited to materials described herein, and all kinds of materials emitting which accompany an infinitesimal deformation with light may be used.
(19) Further, an organic material (the stress transmission material) may include the PDMS, and a silicon rubber or ultraviolet (UV) curable epoxy, etc. which is optically transparent (transmittance which is equal to or more than 80% in a visible ray region) and has high durability may be widely used.
(20) Meanwhile, in order to fabricate the stress luminescent device according to an embodiment of the present invention, a material characteristic of an improved mechanoluminescent strength and lifetime should be preserved. For this, in an embodiment of the present invention, a transparent PDMS having strong elasticity and good durability may be used as the stress transmission material.
(21) The PDMS may have the following three advantages as the stress transmission material.
(22) 1. Since the PDMS has low interfacial free energy when being mixed with the stress luminescent material, the PDMS may not bond to the stress luminescent material. When the stress luminescent material and the stress transmission material are strongly bonded, the interfacial state may be destroyed by slipping on the bonded surface in various deformation states, but the PDMS may have no adverse effect on a surface of the stress luminescent material and transmit repetitive stress safely.
(23) 2. Since the PDMS is transparent, the mechanoluminescent light may be fully transmitted to the outside without optical loss.
(24) 3. Since the PDMS has strong durability, the PDMS may not be destroyed even when the repetitive stress is applied for a long time.
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(27) With reference to
(28) After this, a mixture of the stress luminescent material and the PDMS solution may be poured into a mold, and a heat curing process may be performed by leaving the mixture for 30 minutes in a temperature environment of 70° C. (c, d, and e).
(29) Next, the heat-cured mixture of the stress luminescent material and the PDMS solution may be separated from the mold, and a stress luminescent device sample for a stretching-releasing test may be generated (f).
(30) A stretching-releasing system may be used in order to observe the optical characteristics of the mechanoluminescence emitted from the stress transmission device, and an example of the stretching-releasing test is illustrated in
(31) The stress luminescent device sample generated through the process described above may be fixed to a stretching-releasing tester (g), and a stretching-releasing process may be repeated in a predetermined speed (h, i).
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(33) With reference to
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(36) As shown in
(37) With reference to
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(44) Hereinafter, a mechanoluminescent display device fabricated using the stress luminescent device described above will be described with reference to
(45) Meanwhile, it may be understood that the display device described herein may include a device of converting an electric signal to an image in an electronic device such as a television (TV), a mobile terminal, etc., and also may include all kinds of media capable of transmitting visual information such as traffic signs and advertising signs, etc. installed on a road.
(46) With reference to
(47) In
(48) When describing a process of fabricating the mechanoluminescent display device according to one embodiment of the present invention, first, a mold having an aluminum component in which a self assembled monolayer (SAM) treatment is performed may be provided (a). Here, holes having an ML pattern may be formed with a predetermined interval in the mold.
(49) Next, a stress luminescent device (G+PDMS) paste emitting green light may be injected into the holes of the ML pattern, and a stress transmission material (PDMS) paste may be applied to every area of the mold (c).
(50) After this, the heat curing process may be performed by leaving the applied stress luminescent paste and the stress transmission material paste for 30 minutes in the temperature environment of 70° C., and the paste which completed the heat curing process may be separated from the mold (d, e). As a result, the mechanoluminescent display device including the projections (having the stress luminescent device component emitting the green light) formed with a predetermined pattern ML on the plate formed of the stress transmission material PDMS may be fabricated.
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(52) With reference to
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(54) First, a mold of the aluminum component in which the SAM treatment is performed may be provided (a). Here, holes may be formed with a predetermined interval in every area of the mold.
(55) Next, the stress luminescent device (G+PDMS) paste emitting the green light may be injected into the holes having the ML pattern, and the stress luminescent device (O+B+PDMS) paste emitting the white light may be injected into the remaining holes, then the stress luminescent device (O+B+PDMS) paste emitting the white light may be applied to every area of the mold (c).
(56) After this, the heat curing process may be performed by leaving the applied stress luminescent device paste for 30 minutes in the temperature environment of 70° C., and the paste which completed the heat curing process may be separated from the mold (d, e). As a result, the mechanoluminescent display device including the projections (the projections corresponding to the ML logo may have the stress luminescent device component emitting the green light, and the remaining projections may have the stress luminescent device component emitting the white light) formed with a predetermined interval in every area on the plate formed by the stress luminescent device (O+B+PDMS) emitting the white light may be fabricated.
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(61) The above description is merely exemplary embodiments of the scope of the present invention, and it will be apparent to those skilled in the art that various modifications can be made to the above-described exemplary embodiments of the present invention without departing from the spirit or the scope of the invention. Accordingly, exemplary embodiments of the present invention are not intended to limit the scope of the invention but to describe the invention, and the scope of the present invention is not limited by the exemplary embodiments. Thus, it is intended that the present invention covers all such modifications provided they come within the scope of the appended claims and their equivalents.