WO2016155058A1 - 一种连接器件及有机发光装置 - Google Patents

一种连接器件及有机发光装置 Download PDF

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WO2016155058A1
WO2016155058A1 PCT/CN2015/077184 CN2015077184W WO2016155058A1 WO 2016155058 A1 WO2016155058 A1 WO 2016155058A1 CN 2015077184 W CN2015077184 W CN 2015077184W WO 2016155058 A1 WO2016155058 A1 WO 2016155058A1
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Prior art keywords
electrodes
organic light
pair
electrode
light emitting
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PCT/CN2015/077184
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English (en)
French (fr)
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刘中杰
周革革
陈玲艳
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深圳市华星光电技术有限公司
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Priority to US14/652,151 priority Critical patent/US10319788B2/en
Publication of WO2016155058A1 publication Critical patent/WO2016155058A1/zh

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    • HELECTRICITY
    • H10SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
    • H10KORGANIC ELECTRIC SOLID-STATE DEVICES
    • H10K59/00Integrated devices, or assemblies of multiple devices, comprising at least one organic light-emitting element covered by group H10K50/00
    • H10K59/80Constructional details
    • H10K59/86Series electrical configurations of multiple OLEDs
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01LSEMICONDUCTOR DEVICES NOT COVERED BY CLASS H10
    • H01L23/00Details of semiconductor or other solid state devices
    • H01L23/52Arrangements for conducting electric current within the device in operation from one component to another, i.e. interconnections, e.g. wires, lead frames
    • H01L23/538Arrangements for conducting electric current within the device in operation from one component to another, i.e. interconnections, e.g. wires, lead frames the interconnection structure between a plurality of semiconductor chips being formed on, or in, insulating substrates
    • H01L23/5386Geometry or layout of the interconnection structure
    • HELECTRICITY
    • H10SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
    • H10KORGANIC ELECTRIC SOLID-STATE DEVICES
    • H10K50/00Organic light-emitting devices
    • H10K50/80Constructional details
    • H10K50/805Electrodes
    • HELECTRICITY
    • H10SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
    • H10KORGANIC ELECTRIC SOLID-STATE DEVICES
    • H10K50/00Organic light-emitting devices
    • H10K50/80Constructional details
    • H10K50/805Electrodes
    • H10K50/81Anodes
    • HELECTRICITY
    • H10SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
    • H10KORGANIC ELECTRIC SOLID-STATE DEVICES
    • H10K50/00Organic light-emitting devices
    • H10K50/80Constructional details
    • H10K50/805Electrodes
    • H10K50/82Cathodes
    • HELECTRICITY
    • H10SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
    • H10KORGANIC ELECTRIC SOLID-STATE DEVICES
    • H10K59/00Integrated devices, or assemblies of multiple devices, comprising at least one organic light-emitting element covered by group H10K50/00
    • H10K59/80Constructional details
    • H10K59/805Electrodes

Definitions

  • the present invention relates to the field of electronic technologies, and in particular, to a connecting device and an organic light emitting device.
  • the technical problem to be solved by the present invention is to provide a connecting device and a light-emitting component to increase the light-emitting area without increasing the surface resistance to meet the industry's demand for brightness.
  • the invention also provides a voltage output system.
  • the present invention provides a connection device for connecting an organic light emitting device, the connection device comprising a substrate, a connection pole, a first pair of electrodes, a second pair of electrodes, and a third pair of electrodes, the connection pole, the first to a third pair of electrodes are disposed on the substrate, the first to third pairs of electrodes each include a positive electrode and a negative electrode, and all of the positive electrodes are electrically connected through the connecting pole, and all the negative electrodes are electrically connected through the connecting pole, a positive electrode of the first pair of electrodes is used to connect the positive electrode of the power source, a negative electrode of the first pair of electrodes is used to connect the negative electrode of the power source, and a positive electrode of the second pair of electrodes is used to connect the positive electrode of the first organic light emitting element, a negative electrode of the two pairs of electrodes is used to connect the negative electrode of the first organic light emitting element, and the positive electrode of the third pair of electrodes is used And connecting a cathode of the second organic
  • the connecting pole includes a first side and a second side opposite to each other, the first and second pair of electrodes are disposed on a first side of the connecting pole, and the third pair of electrodes are disposed on the connecting The second side of the pole.
  • the substrate has the same shape as the connecting pole, and each side of the connecting pole is parallel to a corresponding side of the substrate.
  • the present invention also provides an organic light emitting device including a power source, a first organic light emitting element, a second organic light emitting element, and a connecting device, the connecting device including a substrate, a connecting pole, a first pair of electrodes, a second pair of electrodes, and a third
  • the counter electrode, the first to third pair of electrodes are all laid on the substrate, and the first to third pairs of electrodes each include a positive electrode and a negative electrode, and all positive electrodes are electrically connected through the connecting electrode All the negative electrodes are electrically connected through the connection pole, the anode of the first pair of electrodes is connected to the anode of the power source, the cathode of the first pair of electrodes is connected to the cathode of the power source, and the anode of the second pair of electrodes is connected a positive electrode of the first organic light emitting element, a negative electrode of the second pair of electrodes is connected to a negative electrode of the first organic light emitting element, a positive electrode of the third pair of
  • the connecting pole includes a first side and a second side opposite to each other, the first and second pair of electrodes are disposed on a first side of the connecting pole, and the third pair of electrodes are disposed on the connecting The second side of the pole.
  • the substrate has the same shape as the connecting pole, and each side of the connecting pole is parallel to a corresponding side of the substrate.
  • the first and second organic light-emitting elements each include a first electrode, a second electrode, and a connection electrode, and the first electrode, the second electrode, and the connection electrode are electrically connected in sequence to form a loop.
  • a first electrode of the first and second organic light emitting elements as a positive electrode of the first and second organic light emitting elements
  • a connection electrode of the first and second organic light emitting elements as the first and second organic light emitting elements negative electrode.
  • the first electrode has an extendable first connection terminal
  • the connection electrode has a delay a second connection terminal
  • the positive electrodes of the first and second organic light emitting elements are connected to the positive electrode of the second pair of electrodes through the first connection terminal
  • the negative electrodes of the first and second organic light emitting elements pass
  • the second connection terminal is connected to a negative electrode of the third pair of electrodes.
  • first and second connection terminals are in the form of a covered electric wire, a metal plate or a metal strip.
  • the power source is a constant current driver.
  • connection device for connecting an organic light emitting device
  • the connection device comprising a substrate, a connection pole, a first pair of electrodes, a second pair of electrodes, and a third pair of electrodes
  • the connection pole, the first to a third pair of electrodes are disposed on the substrate
  • the first to third pairs of electrodes each include a positive electrode and a negative electrode, and all of the positive electrodes are electrically connected through the connecting pole, and all the negative electrodes are electrically connected through the connecting pole
  • a positive electrode of the first pair of electrodes is used to connect the positive electrode of the power source
  • a negative electrode of the first pair of electrodes is used to connect the negative electrode of the power source
  • a positive electrode of the second pair of electrodes is used to connect the positive electrode of the first organic light emitting element
  • a negative electrode of the two pairs of electrodes is used to connect the negative electrode of the first organic light emitting element
  • a positive electrode of the third pair of electrodes is used to connect the positive electrode of the second organic light emit
  • the present invention can increase the number of organic light-emitting elements by the connecting device, that is, increase the light-emitting area without increasing the surface resistance, thereby satisfying the industry's demand for the brightness of the light-emitting device without adding additional Power consumption.
  • FIG. 1 is a schematic view of a connecting device according to a preferred embodiment of the first aspect of the present invention.
  • FIG. 2 is a schematic view of an organic light emitting device according to a first preferred embodiment of the second aspect of the present invention.
  • FIG. 3 is a schematic diagram of an organic light emitting device according to a second preferred embodiment of the second aspect of the present invention.
  • spatially relative terms such as “under”, “below”, “lower”, “above”, “upper”, etc. may be used herein to describe one element as shown in the drawings. Or the relationship of a feature to another component or feature(s). It will be understood that the spatially relative terms are intended to encompass different orientations of the device in use or operation in addition to the orientation shown. For example, elements that are described as “under” or “beneath” other elements or features are “above” other elements or features. Thus, the exemplary term “.” The device may be otherwise oriented (rotated 90 degrees or other orientation) and the spatial relativity descriptors used herein are interpreted accordingly.
  • a first embodiment of the present invention provides a connection device 100.
  • the connecting device 100 is used to connect an organic light emitting element.
  • the connecting device 100 includes a substrate 10, a connecting pole 20, a first pair of electrodes 30, a second pair of electrodes 40, and a third pair of electrodes 50.
  • the connecting pole 20 and the first to third pair of electrodes 30-50 are all laid on the substrate 10.
  • Each of the first to third pair of electrodes 30-50 includes a positive electrode and a negative electrode. All positive electrodes are electrically connected through the connecting pole 20. All of the negative electrodes are connected by the connection poles 20.
  • the anode of the first pair of electrodes 30 is used to connect the anode of a power source (not shown).
  • the negative electrode of the first pair of electrodes 30 is used to connect the negative electrode of the power source.
  • the positive electrode of the second pair of electrodes 40 is used to connect the positive electrode of the first organic light emitting element (not shown).
  • the negative electrode of the second pair of electrodes 40 is used to connect the negative electrode of the first organic light emitting element.
  • the positive electrode of the third pair of electrodes 50 is used to connect the positive electrode of the second organic light emitting element.
  • the negative electrode of the third pair of electrodes 50 is used to connect the negative electrode of the second organic light emitting element, so that the power source simultaneously supplies power to the first and second organic light emitting elements, respectively.
  • connection device 100 includes first to third pairs of electrodes 30-50.
  • the number of pairs of electrodes included in the connecting device 100 can be adjusted according to actual needs.
  • the connection device 100 includes a substrate 10, a connection pole 20, a first pair of electrodes 30, a second pair of electrodes 40, and a third pair of electrodes 50.
  • the connecting pole 20 and the first to third pair of electrodes 30-50 are all laid on the substrate 10.
  • Each of the first to third pair of electrodes 30-50 includes a positive electrode and a negative electrode. All positive electrodes are electrically connected through the connecting pole 20. All of the negative electrodes are connected by the connection poles 20.
  • the anode of the first pair of electrodes 30 is used to connect the anode of a power source (not shown).
  • the negative electrode of the first pair of electrodes 30 is used to connect the negative electrode of the power source.
  • the positive electrode of the second pair of electrodes 40 is used to connect the positive electrode of the first organic light emitting element (not shown).
  • the negative electrode of the second pair of electrodes 40 is used to connect the negative electrode of the first organic light emitting element.
  • the positive electrode of the third pair of electrodes 50 is used to connect the positive electrode of the second organic light emitting element.
  • the negative electrode of the third pair of electrodes 50 is used to connect the negative electrode of the second organic light emitting element, so that the power source simultaneously supplies power to the first and second organic light emitting elements, respectively. Therefore, the present invention can increase the number of organic light-emitting elements by the connecting device 100, that is, increase the light-emitting surface.
  • the product does not increase the surface resistance, so as to meet the industry's demand for the brightness of the illuminator without adding additional power consumption.
  • the connecting pole 20 includes a first side 21 and a second side 22 that are oppositely disposed.
  • the first and second pairs of electrodes 30 and 40 are disposed on the first side 21 of the connecting pole 20 .
  • the third pair of electrodes 50 are disposed on the second side 22 of the connecting pole 20 .
  • the first and second counter electrodes 30 and 40 are both disposed on the first side 21 of the connecting pole 20 .
  • the third pair of electrodes 50 are disposed on the second side 22 of the connecting pole 20 .
  • the positions of the first to third pairs of electrodes 40-50 may be adjusted according to actual needs as long as the connection poles 20 can be electrically connected.
  • the substrate 10 has the same shape as the connecting pole 20, and each side of the connecting pole 20 is parallel to a corresponding side of the substrate 10.
  • the substrate 10 is rectangular.
  • the connecting pole 20 is rectangular.
  • the shape of the substrate 10 and the connecting pole 20 can also be adjusted according to actual needs.
  • a first preferred embodiment of the second aspect of the present invention provides an organic light emitting device 200.
  • the organic light emitting device 200 includes a power source 210, a first organic light emitting element 220, a second organic light emitting element 230, and a connection device 240.
  • the connecting device 240 includes a substrate 241, a connecting pole 242, a first pair of electrodes 243, a second pair of electrodes 244, and a third pair of electrodes 245.
  • the connecting pole 242 and the first to third pair of electrodes 243-245 are all laid on the substrate 241.
  • Each of the first to third pair of electrodes 243-245 includes a positive electrode and a negative electrode. All positive electrodes are electrically connected through the connection poles 242.
  • All of the negative electrodes are electrically connected through the connection poles 242.
  • the anode of the first pair of electrodes 243 is connected to the anode of the power source 210.
  • the negative electrode of the first pair of electrodes 243 is connected to the negative electrode of the power source 210.
  • the anode of the second pair of electrodes 244 is connected to the anode of the first organic light emitting element 220.
  • a cathode of the second pair of electrodes 244 is connected to a cathode of the first organic light emitting element 220.
  • the positive electrode of the third pair of electrodes 245 is connected to the positive electrode of the second organic light emitting element 220.
  • the negative electrode of the third pair of electrodes 245 is connected to the negative electrode of the second organic light emitting element 230 such that the power source 210 simultaneously supplies power to the first and second organic light emitting elements 220 and 230, respectively.
  • the connecting device 240 includes first to third pair electrodes 243-245.
  • the light emitting device 200 includes first and second organic light emitting elements 220 and 230.
  • the power source 210 is a constant current driver.
  • the number of pairs of electrodes included in the connecting device 240 can be adjusted according to actual needs.
  • the number of organic light-emitting elements included in the light-emitting device 200 can be adjusted according to actual conditions.
  • the organic light-emitting device 200 includes a power source 210, a first organic light-emitting element 220, a second organic light-emitting element 230, and a connection device 240.
  • the connecting device 240 includes a substrate 241, a connecting pole 242, a first pair of electrodes 243, a second pair of electrodes 244, and a third pair of electrodes 245.
  • the connecting pole 242 and the first to third pair of electrodes 243-245 are all laid on the substrate 241.
  • Each of the first to third pair of electrodes 243-245 includes a positive electrode and a negative electrode. All positive electrodes are electrically connected through the connection poles 242. All of the negative electrodes are electrically connected through the connection poles 242.
  • the anode of the first pair of electrodes 243 is connected to the anode of the power source 210.
  • the negative electrode of the first pair of electrodes 243 is connected to the negative electrode of the power source 210.
  • the anode of the second pair of electrodes 244 is connected to the anode of the first organic light emitting element 220.
  • a cathode of the second pair of electrodes 244 is connected to a cathode of the first organic light emitting element 220.
  • the positive electrode of the third pair of electrodes 245 is connected to the positive electrode of the second organic light emitting element 220.
  • the negative electrode of the third pair of electrodes 245 is connected to the negative electrode of the second organic light emitting element 230 such that the power source 210 simultaneously supplies power to the first and second organic light emitting elements 220 and 230, respectively. Therefore, the organic light-emitting device 200 increases the number of organic light-emitting elements by the connecting device 240, that is, increases the light-emitting area, while the organic light-emitting device 200 does not increase the surface resistance, thereby satisfying the brightness of the light-emitting device in the industry. At the same time, no additional power consumption is added.
  • the connecting pole 242 includes a first side 2421 and a second side 2422 that are oppositely disposed.
  • the first and second pair of electrodes 243 and 244 are both disposed on the first side 2421 of the connecting pole 242.
  • the third pair of electrodes 245 are disposed on the second side 2422 of the connecting pole 242.
  • the first and second counter electrodes 30 and 40 are both disposed on the first side 21 of the connecting pole 20 .
  • the third pair of electrodes 50 are disposed on the second side 22 of the connecting pole 20 .
  • the positions of the first to third pairs of electrodes 40-50 may be adjusted according to actual needs as long as the connection poles 20 can be electrically connected.
  • the first organic light emitting element 220 includes a first electrode 221, a second electrode 222, and a connection electrode 223.
  • Each of the second organic light emitting elements 230 includes a first electrode 231, a second electrode 232, and a connection electrode 233.
  • the first electrode 221, the second electrode 222, and the connection electrode 223 are electrically connected in sequence to form a loop.
  • the first electric 231, the second electrode 232, and the connecting electrode 233 are electrically connected in sequence to form a loop.
  • the first electrode 221 of the first organic light emitting element 220 serves as a positive electrode of the first organic light emitting element 220.
  • the first electrode 231 of the second organic light emitting element 230 serves as a positive electrode of the second organic light emitting element 230.
  • the connection electrode 223 of the first organic light emitting element 220 serves as a negative electrode of the first organic light emitting element 220.
  • the connection electrode 233 of the second organic light emitting element 230 serves as a negative electrode of the second organic light emitting element 230.
  • the substrate 10 has the same shape as the connecting pole 20, and each side of the connecting pole 20 is parallel to a corresponding side of the substrate 10.
  • the substrate 10 is rectangular.
  • the connecting pole 20 is rectangular.
  • the shape of the substrate 10 and the connecting pole 20 can also be adjusted according to actual needs.
  • a second preferred embodiment of the second aspect of the present invention provides an organic light emitting device 300.
  • the organic light-emitting device 300 provided by the second preferred embodiment is similar to the organic light-emitting device 200 provided by the first preferred embodiment, and the difference is that in the second preferred embodiment, the first
  • the electrodes 221 and 231 have extendable first connection terminals 2211 and 2311, respectively.
  • the connection electrodes 223 and 233 respectively have second connection terminals 2231 and 2331 that are extendable.
  • the positive electrodes of the first and second organic light emitting elements 220 and 230 are respectively connected to the positive electrodes of the second pair of electrodes 244 through the first connection terminals 2211 and 2311.
  • the negative electrodes of the first and second organic light emitting elements 220 and 230 are respectively connected to the negative electrodes of the third pair of electrodes 245 through the second connection terminals 2231 and 2331.
  • the power source 210 has an extendable first connection terminal 2101 and a second connection terminal 2102.
  • the first connection terminal 2101 of the power source 210 is connected to the anode of the first pair of electrodes 243.
  • the second connection terminal 2102 of the power source 210 is connected to the negative electrode of the first pair of electrodes 243.
  • the first connection terminals 2211, 2311 and 2101 and the second connection terminals 2231, 2331 and 2102 are in the form of a covered electric wire, a metal plate or a metal strip.
  • the first electrodes 221 and 231 respectively have first connection terminals 2211 and 2311 that are extendable.
  • the connection electrodes 223 and 233 respectively have second connection terminals 2231 and 2331 that are extendable.
  • the positive electrodes of the first and second organic light emitting elements 220 and 230 are respectively connected to the positive electrodes of the second pair of electrodes 244 through the first connection terminals 2211 and 2311.
  • the cathodes of the first and second organic light emitting elements 220 and 230 are respectively connected to the second connection terminals 2231 and 2331 through the second connection terminals 2231 and 2331

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Abstract

一种连接器件,包括基板(10)、连接极(20)、第一至第三对电极(30,40,50),连接极(20)、第一至第三对电极(30,40,50)均铺设于基板(10)上,第一至第三对电极(30,40,50)均包括正极及负极,所有正极均通过连接极(20)电连接,所有负极通过连接极(20)电连接,第一至第三对电极(30,40,50)的正极分别用于连接电源、第一及第二有机发光元件的正极,第一至第三对电极(30,40,50)的负极分别用于连接电源、第一及第二有机发光元件的负极,从而使得电源同时分别对第一及第二有机发光元件供电。在满足业界对发光装置亮度的需求的同时又不会增加额外的功耗。还提供一种有机发光装置。

Description

一种连接器件及有机发光装置
本发明要求2015年4月2日递交的发明名称为“一种连接器件及有机发光装置”的申请号201510154110.8的在先申请优先权,上述在先申请的内容以引入的方式并入本文本中。
技术领域
本发明涉及电子技术领域,尤其涉及一种连接器件及有机发光装置。
背景技术
随着显示行业与照明行业得飞速发展,显示行业及照明行业对于亮度的追求也明显提高。其中,当单个发光元件的发光亮度不够,需要串联一个发光元件来增加发光亮度。当时串联一个发光元件会导致发光元件的发光面积增加,从而导致发光元件的面电阻增大。由于发光元件的面电阻增大,则在发光面积上损失的电压增大,从而导致功耗增大。同时增大发光面积还会带来较为严重的发热现象,会严重影响发光元件的使用可靠性。
发明内容
本发明所要解决的技术问题在于提供一种连接器件及发光组件,以在不增大面电阻的同时增大发光面积,以满足业界对亮度的需求。
本发明还提供一种电压输出***。
为了实现上述目的,本发明实施方式提供如下技术方案:
本发明提供一种连接器件,用于连接有机发光元件,所述连接器件包括基板、连接极、第一对电极、第二对电极及第三对电极,所述连接极、所述第一至第三对电极均铺设于所述基板上,所述第一至第三对电极均包括正极及负极,所有正极均通过所述连接极电连接,所有负极通过所述连接极电连接,所述第一对电极的正极用于连接电源的正极,所述第一对电极的负极用于连接电源的负极,所述第二对电极的正极用于连接第一有机发光元件的正极,所述第二对电极的负极用于连接第一有机发光元件的负极,所述第三对电极的正极用 于连接第二有机发光元件的正极,所述第三对电极的负极用于连接第二有机发光元件的负极,从而使得所述电源同时分别对所述第一及第二有机发光元件供电。
其中,所述连接极包括相对设置的第一侧及第二侧,所述第一及第二对电极均设置于所述连接极的第一侧,所述第三对电极设置于所述连接极的第二侧。
其中,所述基板与所述连接极的形状相同,且所述连接极的各个边与所述基板的对应边平行。
本发明还提供一种有机发光装置,包括电源、第一有机发光元件、第二有机发光元件及连接器件,所述连接器件包括基板、连接极、第一对电极、第二对电极及第三对电极,所述连接极、所述第一至第三对电极均铺设于所述基板上,所述第一至第三对电极均包括正极及负极,所有正极均通过所述连接极电连接,所有负极通过所述连接极电连接,所述第一对电极的正极连接所述电源的正极,所述第一对电极的负极连接所述电源的负极,所述第二对电极的正极连接所述第一有机发光元件的正极,所述第二对电极的负极连接所述第一有机发光元件的负极,所述第三对电极的正极连接第二有机发光元件的正极,所述第三对电极的负极连接第二有机发光元件的负极,从而使得所述电源同时分别对所述第一及第二有机发光元件供电。
其中,所述连接极包括相对设置的第一侧及第二侧,所述第一及第二对电极均设置于所述连接极的第一侧,所述第三对电极设置于所述连接极的第二侧。
其中,所述基板与所述连接极的形状相同,且所述连接极的各个边与所述基板的对应边平行。
其中,所述第一及第二有机发光元件均包括第一电极、第二电极及连接电极,所述第一电极、所述第二电极及所述连接电极依次电连接形成回路,所述第一及第二有机发光元件的第一电极作为所述第一及第二有机发光元件的正极,所述第一及第二有机发光元件的连接电极作为所述第一及第二有机发光元件的负极。
其中,所述第一电极具有可延伸的第一连接端子,所述连接电极具有可延 伸的第二连接端子,所述第一及第二有机发光元件的正极通过所述第一连接端子连接至所述第二对电极的正极,所述第一及第二有机发光元件的负极通过所述第二连接端子连接至所述第三对电极的负极。
其中,所述第一及第二连接端子是包覆电线、金属板或金属带的形式。
其中,所述电源为恒定电流驱动器。
本发明提供一种连接器件,用于连接有机发光元件,所述连接器件包括基板、连接极、第一对电极、第二对电极及第三对电极,所述连接极、所述第一至第三对电极均铺设于所述基板上,所述第一至第三对电极均包括正极及负极,所有正极均通过所述连接极电连接,所有负极通过所述连接极电连接,所述第一对电极的正极用于连接电源的正极,所述第一对电极的负极用于连接电源的负极,所述第二对电极的正极用于连接第一有机发光元件的正极,所述第二对电极的负极用于连接第一有机发光元件的负极,所述第三对电极的正极用于连接第二有机发光元件的正极,所述第三对电极的负极用于连接第二有机发光元件的负极,从而使得所述电源同时分别对所述第一及第二有机发光元件供电。因此,本发明可以通过所述连接器件增加了有机发光元件的数量,即增加了发光面积,同时未增大面电阻,从而在满足业界对发光装置亮度的需求的同时,又不会增加额外的功耗。
附图说明
为了更清楚地说明本发明的技术方案,下面将对实施方式中所需要使用的附图作简单地介绍,显而易见地,下面描述中的附图仅仅是本发明的一些实施方式,对于本领域普通技术人员来讲,在不付出创造性劳动的前提下,还可以如这些附图获得其他的附图。
图1是本发明第一方案较佳实施方式提供的一种连接器件的示意图。
图2是本发明第二方案第一较佳实施方式提供的一种有机发光装置的示意图。
图3是本发明第二方案第二较佳实施方式提供的一种有机发光装置的示意图。
具体实施方式
下面将结合本发明实施方式中的附图,对本发明实施方式中的技术方案进行清楚、完整地描述。
将理解,当一个元件或层被称为在另一元件或层“上”、“连接到”或“耦接到”另一元件或层时,它可以直接在另一元件或层上、直接连接到或耦接到另一元件或层,或者可以存在居间元件或层。相反,当一个元件被称为“直接在”另一元件或层上、“直接连接到”或“直接耦接到”另一元件或层时,不存在居间元件或层。相同的符合标记始终指代相同的元件。在此所用时,术语“和/或”包括一个或多个相关列举项目的任何及所有组合。
将理解,虽然这里可以使用术语第一、第二等描述各种元件、组件、区域、层和/或部分,但这些元件、组件、区域、层和/或部分不应受到这些术语限制。这些术语仅用于将一个元件、组件、区域、层或部分与另一元件、组件、区域、层或部分区别开。因此,以下讨论的第一元件、组件、区域、层或部分可以被称为第二元件、组件、区域、层或部分而不背离本发明的教导。
为便于描述,这里可以使用诸如“在…之下”、“在…下面”、“下”、“在…之上”、“上”等空间相对性术语来描述如图中所示的一个元件或特征与另一个(些)元件或特征的关系。将理解,空间相对性术语旨在涵盖除图中示出的取向之外,器件在使用或操作中的不同取向。例如,如果附图中的器件被翻转,则被描述为“在”其他元件或特征“之下”或“下面”的元件将会在其他元件或特征“上方”。因此,示例性术语“在…下面”可以涵盖之上和之下两种取向。器件可以以别的方式取向(旋转90度或其他取向),这里所用的空间相对性描述符被相应地解释。
这里所用的术语仅是为了描述特定实施例,并非要限制本发明。在这里使用时,除非上下文另有明确表述,否则单数形式“一”和“该”也旨在包括复数形式。将进一步理解,当在本说明书中使用时,术语“包括”和/或“包含”表明所述特征、整体、步骤、操作、元件和/或组件的存在,但不排除一个或多个其他特征、整体、步骤、操作、元件、组件和/或其组合的存在或增加。
除非另行定义,这里使用的所有术语(包括技术术语和科学术语)都具有本发明所属领域内的普通技术人员所通常理解的相同含义。将进一步理解,诸如 通用词典中所定义的术语,否则应当被解释为具有与它们在相关领域的语境中的含义相一致的含义,而不应被解释为理想化或过度形式化的意义,除非在此明确地如此定义。
请参阅图1,本发明第一方案较佳实施例提供一种连接器件100。所述连接器件100用于连接有机发光元件。所述连接器件100包括基板10、连接极20、第一对电极30、第二对电极40及第三对电极50。所述连接极20、所述第一至第三对电极30-50均铺设于所述基板10上。所述第一至第三对电极30-50均包括正极及负极。所有正极均通过所述连接极20电连接。所有负极通过所述连接极电20连接。所述第一对电极30的正极用于连接电源(未示出)的正极。所述第一对电极30的负极用于连接电源的负极。所述第二对电极40的正极用于连接第一有机发光元件(未示出)的正极。所述第二对电极40的负极用于连接第一有机发光元件的负极。所述第三对电极50的正极用于连接第二有机发光元件的正极。所述第三对电极50的负极用于连接第二有机发光元件的负极,从而使得所述电源同时分别对所述第一及第二有机发光元件供电。
需要说明的是,在本实施方式中,所述连接器件100包括第一至第三对电极30-50。在其他实施方式中,所述连接器件100包括的电极的对数可以根据实际需要进行调整。
在本实施方式中,所述连接器件100包括基板10、连接极20、第一对电极30、第二对电极40及第三对电极50。所述连接极20、所述第一至第三对电极30-50均铺设于所述基板10上。所述第一至第三对电极30-50均包括正极及负极。所有正极均通过所述连接极20电连接。所有负极通过所述连接极电20连接。所述第一对电极30的正极用于连接电源(未示出)的正极。所述第一对电极30的负极用于连接电源的负极。所述第二对电极40的正极用于连接第一有机发光元件(未示出)的正极。所述第二对电极40的负极用于连接第一有机发光元件的负极。所述第三对电极50的正极用于连接第二有机发光元件的正极。所述第三对电极50的负极用于连接第二有机发光元件的负极,从而使得所述电源同时分别对所述第一及第二有机发光元件供电。因此,本发明可以通过所述连接器件100增加了有机发光元件的数量,即增加了发光面 积,同时未增大面电阻,从而在满足业界对发光装置亮度的需求的同时,又不会增加额外的功耗。
进一步地,所述连接极20包括相对设置的第一侧21及第二侧22。所述第一及第二对电极30及40均设置于所述连接极20的第一侧21。所述第三对电极50设置于所述连接极20的第二侧22。
在本实施方式中,所述第一及第二对电极30及40均设置于所述连接极20的第一侧21。所述第三对电极50设置于所述连接极20的第二侧22。在其他的实施方式中,所述第一至第三对电极40-50设置的位置可以根据实际需要进行调整,只要可以电连接至所述连接极20即可。
进一步地,所述基板10与所述连接极20的形状相同,且所述连接极20的各个边与所述基板10的对应边平行。
具体地,所述基板10为长方形。所述连接极20为长方形。所述基板10及所述连接极20的形状也可以根据实际需要进行调整。
请参阅图2,本发明第二方案第一较佳实施方式提供一种有机发光装置200。所述有机发光装置200包括电源210、第一有机发光元件220、第二有机发光元件230及连接器件240。所述连接器件240包括基板241、连接极242、第一对电极243、第二对电极244及第三对电极245。所述连接极242、所述第一至第三对电极243-245均铺设于所述基板241上。所述第一至第三对电极243-245均包括正极及负极。所有正极均通过所述连接极242电连接。所有负极通过所述连接极242电连接。所述第一对电极243的正极连接所述电源210的正极。所述第一对电极243的负极连接所述电源210的负极。所述第二对电极244的正极连接所述第一有机发光元件220的正极。所述第二对电极244的负极连接所述第一有机发光元件220的负极。所述第三对电极245的正极连接第二有机发光元件220的正极。所述第三对电极245的负极连接第二有机发光元件230的负极,从而使得所述电源210同时分别对所述第一及第二有机发光元件220及230供电。
需要说明的是,在本实施方式中,所述连接器件240包括第一至第三对电极243-245。所述发光装置200包括第一及第二有机发光元件220及230。所述电源210为恒定电流驱动器。
在其他实施方式中,所述连接器件240包括的电极的对数可以根据实际需要进行调整。所述发光装置200包括的有机发光元件的数量可以根据实际进行调整。
在本实施方式中,所述有机发光装置200包括电源210、第一有机发光元件220、第二有机发光元件230及连接器件240。所述连接器件240包括基板241、连接极242、第一对电极243、第二对电极244及第三对电极245。所述连接极242、所述第一至第三对电极243-245均铺设于所述基板241上。所述第一至第三对电极243-245均包括正极及负极。所有正极均通过所述连接极242电连接。所有负极通过所述连接极242电连接。所述第一对电极243的正极连接所述电源210的正极。所述第一对电极243的负极连接所述电源210的负极。所述第二对电极244的正极连接所述第一有机发光元件220的正极。所述第二对电极244的负极连接所述第一有机发光元件220的负极。所述第三对电极245的正极连接第二有机发光元件220的正极。所述第三对电极245的负极连接第二有机发光元件230的负极,从而使得所述电源210同时分别对所述第一及第二有机发光元件220及230供电。因此,所述有机发光装置200通过所述连接器件240增加了有机发光元件的数量,即增加了发光面积,同时所述有机发光装置200未增大面电阻,从而在满足业界对发光装置亮度的需求的同时,又不会增加额外的功耗。
进一步地,所述连接极242包括相对设置的第一侧2421及第二侧2422。所述第一及第二对电极243及244均设置于所述连接极242的第一侧2421。所述第三对电极245设置于所述连接极242的第二侧2422。
在本实施方式中,所述第一及第二对电极30及40均设置于所述连接极20的第一侧21。所述第三对电极50设置于所述连接极20的第二侧22。在其他的实施方式中,所述第一至第三对电极40-50设置的位置可以根据实际需要进行调整,只要可以电连接至所述连接极20即可。
进一步地,所述第一有机发光元件220包括第一电极221、第二电极222及连接电极223。所述第二有机发光元件230均包括第一电极231、第二电极232及连接电极233。对于第一有机发光元件220,所述第一电极221、所述第二电极222及所述连接电极223依次电连接形成回路。对于第二有机发光元件 230,所述第一电231、所述第二电极232及所述连接电极233依次电连接形成回路。所述第一有机发光元件220的第一电极221作为所述第一有机发光元件220的正极。所述第二有机发光元件230的第一电极231作为所述第二有机发光元件230的正极。所述第一有机发光元件220的连接电极223作为所述第一有机发光元件220的负极。所述第二有机发光元件230的连接电极233作为所述第二有机发光元件230的负极。
进一步地,所述基板10与所述连接极20的形状相同,且所述连接极20的各个边与所述基板10的对应边平行。
具体地,所述基板10为长方形。所述连接极20为长方形。所述基板10及所述连接极20的形状也可以根据实际需要进行调整。
请参阅图3,本发明第二方案第二较佳实施方式提供一种有机发光装置300。所述第二较佳实施方式提供的有机发光装置300与所述第一较佳实施方式提供的有机发光装置200相似,两者的区别在于:在第二较佳实施方式中,所述第一电极221及231分别具有可延伸的第一连接端子2211及2311。所述连接电极223及233分别具有可延伸的第二连接端子2231及2331。所述第一及第二有机发光元件220及230的正极分别通过所述第一连接端子2211及2311连接至所述第二对电极244的正极。所述第一及第二有机发光元件220及230的负极分别通过所述第二连接端子2231及2331连接至所述第三对电极245的负极。
进一步地,所述电源210有可延伸的第一连接端子2101及第二连接端子2102。所述电源210的第一连接端子2101连接至所述第一对电极243中的正极。所述电源210的第二连接端子2102连接至所述第一对电极243中的负极。
其中,所述第一连接端子2211、2311及2101及第二连接端子2231、2331及2102是包覆电线、金属板或金属带的形式。
在本实施方式中,所述第一电极221及231分别具有可延伸的第一连接端子2211及2311。所述连接电极223及233分别具有可延伸的第二连接端子2231及2331。所述第一及第二有机发光元件220及230的正极分别通过所述第一连接端子2211及2311连接至所述第二对电极244的正极。所述第一及第二有机发光元件220及230的负极分别通过所述第二连接端子2231及2331连接至 所述第三对电极245的负极。因此,所述有机发光装置300有利于对有机发光元件的拆卸。
以上所述是本发明的优选实施方式,应当指出,对于本技术领域的普通技术人员来说,在不脱离本发明原理的前提下,还可以做出若干改进和润饰,这些改进和润饰也视为本发明的保护范围。

Claims (10)

  1. 一种连接器件,用于连接有机发光元件,其特征在于:所述连接器件包括基板、连接极、第一对电极、第二对电极及第三对电极,所述连接极、所述第一至第三对电极均铺设于所述基板上,所述第一至第三对电极均包括正极及负极,所有正极均通过所述连接极电连接,所有负极通过所述连接极电连接,所述第一对电极的正极用于连接电源的正极,所述第一对电极的负极用于连接电源的负极,所述第二对电极的正极用于连接第一有机发光元件的正极,所述第二对电极的负极用于连接第一有机发光元件的负极,所述第三对电极的正极用于连接第二有机发光元件的正极,所述第三对电极的负极用于连接第二有机发光元件的负极,从而使得所述电源同时分别对所述第一及第二有机发光元件供电。
  2. 如权利要求1所述的连接器件,其特征在于,所述连接极包括相对设置的第一侧及第二侧,所述第一及第二对电极均设置于所述连接极的第一侧,所述第三对电极设置于所述连接极的第二侧。
  3. 如权利要求1所述的连接器件,其特征在于,所述基板与所述连接极的形状相同,且所述连接极的各个边与所述基板的对应边平行。
  4. 一种有机发光装置,包括电源、第一有机发光元件、第二有机发光元件及连接器件,所述连接器件包括基板、连接极、第一对电极、第二对电极及第三对电极,所述连接极、所述第一至第三对电极均铺设于所述基板上,所述第一至第三对电极均包括正极及负极,所有正极均通过所述连接极电连接,所有负极通过所述连接极电连接,所述第一对电极的正极连接所述电源的正极,所述第一对电极的负极连接所述电源的负极,所述第二对电极的正极连接所述第一有机发光元件的正极,所述第二对电极的负极连接所述第一有机发光元件的负极,所述第三对电极的正极连接第二有机发光元件的正极,所述第三对电极的负极连接第二有机发光元件的负极,从而使得所述电源同时分别对所述第一及第二有机发光元件供电。
  5. 如权利要求4所述的有机发光装置,其特征在于,所述连接极包括相对设置的第一侧及第二侧,所述第一及第二对电极均设置于所述连接极的第一 侧,所述第三对电极设置于所述连接极的第二侧。
  6. 如权利要求4所述的有机发光装置,其特征在于,所述基板与所述连接极的形状相同,且所述连接极的各个边与所述基板的对应边平行。
  7. 如权利要求4所述的有机发光装置,其特征在于,所述第一及第二有机发光元件均包括第一电极、第二电极及连接电极,所述第一电极、所述第二电极及所述连接电极依次电连接形成回路,所述第一及第二有机发光元件的第一电极作为所述第一及第二有机发光元件的正极,所述第一及第二有机发光元件的连接电极作为所述第一及第二有机发光元件的负极。
  8. 如权利要求4所述的有机发光装置,其特征在于,所述第一电极具有可延伸的第一连接端子,所述连接电极具有可延伸的第二连接端子,所述第一及第二有机发光元件的正极通过所述第一连接端子连接至所述第二对电极的正极,所述第一及第二有机发光元件的负极通过所述第二连接端子连接至所述第三对电极的负极。
  9. 如权利要求8所述的有机发光装置,其特征在于,所述第一及第二连接端子是包覆电线、金属板或金属带的形式。
  10. 如权利要求4所述的有机发光装置,其特征在于,所述电源为恒定电流驱动器。
PCT/CN2015/077184 2015-04-02 2015-04-22 一种连接器件及有机发光装置 WO2016155058A1 (zh)

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