IP Library Granted Patent US 12,652,944
Granted Patent B2
US 12,652,944 · App. 17/850,379 · Granted Jun 9, 2026

Flexible OLED light-emitting module including holes arranged to increase air permeability, and manufacturing method therefor

Inventors: Huiqing Pang (Beijing, CN); Chuanjun Xia (Beijing, CN)
Assignee: BEIJING SUMMER SPROUT TECHNOLOGY CO., LTD.
H10K77/111H05K1/189H10K59/873H10K59/90H05K2201/10128H10K59/82H10K2102/311
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Quick Facts
Patent No.
US 12,652,944
App. No.
17/850,379
Granted
Jun 9, 2026
Kind
B2
Abstract

Provided are a flexible OLED light-emitting module and a preparation therefor. The flexible OLED light-emitting module includes: a flexible substrate having a plurality of holes A, an OLED having a plurality of holes B, an encapsulation layer having a plurality of holes C, and an external circuit, where the holes A, B and C coincide to form through-holes penetrating the light-emitting module, and the OLED device has a common organic light-emitting layer. The new flexible OLED light-emitting module has good air permeability due to through-holes and thus can be used in various phototherapy devices so that the phototherapy devices not only have a large light-emitting area, but also have good air permeability and are suitable for long-term wearing. Further provided are a method for preparing the flexible OLED light-emitting module and a phototherapy device including the flexible OLED light-emitting module.

Claims (53)

1 . A flexible OLED light-emitting module, comprising:

a flexible substrate having a plurality of holes A;

OLED devices having a plurality of holes B and a contact electrode;

an encapsulation layer having a plurality of holes C; and

an external circuit, wherein the external circuit is electrically connected to the contact electrode;

wherein the pluralities of holes A, B and C coincide to form through-holes penetrating the light-emitting module; the diameter of each of the plurality of holes A is between 0.09 mm and 5 mm, the diameters of each of the plurality of holes B and each of the plurality of holes C are between 90% to 100% of the diameter of each of the plurality of holes A, the minimum spacing between the plurality of holes A is S, and S is between 1 mm and 50 mm;

wherein the OLED devices have a common organic light-emitting layer; and

wherein the OLED devices are non-pixilated.

2 . The flexible OLED light-emitting module of claim 1 , wherein the external circuit is a flexible printed circuit (FPC).

3 . The flexible OLED light-emitting module of claim 1 , wherein the diameter of each of the plurality of holes A is between 0.1 mm and 3 mm.

4 . The flexible OLED light-emitting module of claim 1 , wherein the minimum spacing S between the plurality of holes A is between 1 mm and 30 mm.

5 . The flexible OLED light-emitting module of claim 1 , wherein the plurality of holes A are arranged at equal spacing.

6 . The flexible OLED light-emitting module of claim 1 , wherein the cross-section of each of the plurality of holes A, B and C is a circle, a polygon or an ellipse.

7 . The flexible OLED light-emitting module of claim 1 , wherein the area ratio of the plurality of holes A to the flexible substrate is between 0.01% and 50%.

8 . The flexible OLED light-emitting module of claim 1 , wherein the OLED device emits at least one light with a wavelength between 400 nm to 2000 nm.

9 . The flexible OLED light-emitting module of claim 1 , wherein the thickness of the flexible substrate is between 25 μm and 500 μm.

10 . The flexible OLED light-emitting module of claim 1 , wherein the material used for the flexible substrate is polyimide (PI).

11 . The flexible OLED light-emitting module of claim 1 , wherein the encapsulation layer is thin-film encapsulation layer.

12 . The flexible OLED light-emitting module of claim 1 , further comprising a protective film and/or a flexible film.

13 . The flexible OLED light-emitting module of claim 12 , wherein the protective film and/or the flexible film is transparent, or the protective film is an FPC, or the protective film and/or the flexible film is of a plastic or silicone rubber material, or the protective film and/or the flexible film is made of a natural material selected from silk or cotton and linen.

14 . The flexible OLED light-emitting module of claim 12 , wherein

the coincidence degree between the plurality of holes D and/or E with the plurality of holes A is more than 70%.

15 . The flexible OLED light-emitting module of claim 12 , wherein the thickness of the protective film and/or the flexible film is between 25 μm and 500 μm.

16 . The flexible OLED light-emitting module of claim 12 , wherein the edges of the plurality of holes A, B and C are sealed as a result of melting of the protective film and/or the flexible film.

17 . The flexible OLED light-emitting module of claim 14 , wherein the plurality of holes A, B, C, D and E are formed simultaneously.

18 . The flexible OLED light-emitting module of claim 1 , wherein the plurality of holes A, B and C are formed by a method selected from the group consisting of: stamping, dry etching, wet etching, laser etching, plasma bombardment, and combinations thereof.

19 . A method for preparing the flexible OLED light-emitting module of claim 1 , comprising the following steps:

a. acquiring a support substrate;

b. applying a flexible substrate on the support substrate;

c. preparing an OLED device;

d. encapsulating the OLED device and exposing a contact electrode;

e. electrically connecting an external circuit to the contact electrode of the OLED device;

f. peeling off the support substrate;

perforating step 1. forming a plurality of holes A on the flexible substrate, wherein the diameter of each of the plurality of holes A is between 0.09 mm and 5 mm, and the minimum spacing between the plurality of holes A is between 1 mm and 50 mm;

perforating step 2. forming a plurality of holes B and a plurality of holes C on the OLED device and an encapsulation layer, respectively, wherein, the diameters of each of the plurality of holes B and each of the plurality of holes C are between 90% to 100% of the diameter of each of the plurality of holes A, and the holes B and C and the holes A coincide;

wherein, in the above steps, perforating step 1 occurs at any time after step b, and perforating step 2 occurs simultaneously with step c or at any time after step c.

20 . The method of claim 19 , wherein the external circuit in step e is an FPC circuit board.

21 . The method of claim 19 , wherein perforating step 1 occurs between step b and step c, or between step d and step e, or between step e and step f.

22 . The method of claim 19 , wherein perforating step 2 occurs simultaneously with step c, or between step d and step e, or between step e and step f, or after step f.

23 . The method of claim 19 , wherein perforating step 1 and perforating step 2 occur simultaneously.

24 . The method of claim 19 , further comprising step j and/or step k, wherein step j is to apply a protective film and can occur at any time after step d, and step k is to apply a flexible film and can occur at any time after step f.

25 . The method of claim 24 , wherein step j further comprises step j-1, wherein step j-1 is to form a plurality of holes D on the protective film.

26 . The method of claim 24 , wherein step j occurs between step d and step e, or between step e and step f, or after step f, or simultaneously with step e.

27 . The method of claim 25 , wherein step j-1 and step j occur simultaneously, or step j-1 and perforating steps 1 and/or 2 occur simultaneously.

28 . The method of claim 24 , further comprising step k-1, wherein step k-1 is to form a plurality of holes E on the flexible film; step k-1 and step k occur simultaneously, or step k-1 and perforating steps 1 and/or 2 occur simultaneously.

29 . The method of claim 19 , further comprising step 1, wherein step 1 is to melt and seal edges of the plurality of holes A, B, C, D, and/or E.

30 . A phototherapy apparatus, comprising at least one flexible OLED light-emitting module of claim 1 .

31 . The flexible OLED light-emitting module of claim 1 , the area ratio of the plurality of holes A to the flexible substrate is between 0.1% and 30%.

32 . The flexible OLED light-emitting module of claim 1 , the area ratio of the plurality of holes A to the flexible substrate is between 0.2% and 10%.

33 . The flexible OLED light-emitting module of claim 1 , the OLED device emits at least one light with a wavelength between 450 nm to 1000 nm.

34 . The flexible OLED light-emitting module of claim 1 , the thickness of the flexible substrate is between 30 μm and 200 μm.

35 . The flexible OLED light-emitting module of claim 1 , the material used for the flexible substrate is a plastic; the flexible OLED light-emitting module comprises a protective film and/or a flexible film; wherein the protective film and/or the flexible film is transparent, and the protective film and/or the flexible film is of a plastic or silicone rubber material; the protective film has a plurality of holes D and/or the flexible film has a plurality of holes E; wherein the coincidence degree between the plurality of holes D and/or E with the plurality of holes A is more than 50%; the pluralities of holes A, B, C, D and/or E are formed by laser etching; the edges of the pluralities of holes A, B and C are sealed by melting the protective film and/or the flexible film through the laser etching.

36 . The phototherapy apparatus of claim 30 , the phototherapy apparatus is selected from the group consisting of: a phototherapy facial mask, a phototherapy eye mask, a phototherapy neck protector, a phototherapy hair growth cap, a phototherapy waistband, a phototherapy blanket, a phototherapy band-aid, a phototherapy plaster patch, a phototherapy glove, a phototherapy sock or a phototherapy garment.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 27, 2022
From: PANG, HUIQING; XIA, CHUANJUN
To: BEIJING SUMMER SPROUT TECHNOLOGY CO., LTD.
Reel/Frame 060323/0797 →
Priority Claims (1)
CN 202110722391.8 · Jun 29, 2021 · national
Continuity (1)
Related Publication 20220416205A1 · Dec 29, 2022
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