SYSTEM AND METHOD FOR ALIGNING MICRO LIGHT-EMITTING DIODES
20210398837 · 2021-12-23
Inventors
Cpc classification
H01L2924/00
ELECTRICITY
H05K13/0812
ELECTRICITY
B65G47/90
PERFORMING OPERATIONS; TRANSPORTING
H01L21/67793
ELECTRICITY
H05K13/0482
ELECTRICITY
International classification
B65G47/90
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A method is provided for aligning micro light-emitting diodes. A platform is provided with arrays. Each of the arrays includes grooves. The platform is used to receive magnetic micro light-emitting diodes. Magnetic attraction and vibration are alternately exerted on the platform to cause the magnetic micro light-emitting diodes to fall into the grooves in a correct orientation. It is determined whether the magnetic micro light-emitting diodes fill the platform. Mass transfer is executed if the magnetic micro light-emitting diodes fill the platform.
Claims
1. A method for aligning micro light-emitting diodes comprising the steps of: providing a platform with arrays, wherein each of the arrays comprises grooves; using the platform to receive magnetic micro light-emitting diodes; alternately exerting magnetic attraction and vibration on the platform to cause the magnetic micro light-emitting diodes to fall into the grooves in a correct orientation; determining whether the magnetic micro light-emitting diodes fill the platform; and executing mass transfer if the magnetic micro light-emitting diodes fill the platform.
2. The method according to claim 1, wherein the step of alternately exerting magnetic attraction and vibration comprises the steps of: vibrating the platform to translate and orient the magnetic micro light-emitting diodes; sending the magnetic micro light-emitting diodes into the grooves of the platform; and exerting magnetic attraction on the magnetic micro light-emitting diodes to keep the magnetic micro light-emitting diodes in the grooves of the platform.
3. The method according to claim 1, further comprising the step of using a vibrating tray to transport the magnetic micro light-emitting diodes to the platform.
4. The method according to claim 1, wherein the magnetic attraction is selected from the group of magnetostatic attraction and electromagnetic attraction.
5. The method according to claim 1, further comprising the step of using passages on the platform, wherein each of the passages comprises a row of the grooves, wherein the magnetic micro light-emitting diodes go into the grooves via the passages.
6. The method according to claim 1, the step of determining whether the magnetic micro light-emitting diodes fill the platform comprises the step of providing a camera to take photographs of the platform and compare the photographs with a default.
7. A system for aligning micro light-emitting diodes comprising: a table; a platform supported on the table, wherein the platform comprises grooves corresponding to the micro light-emitting diodes; a camera supported on the table above the platform and operable to take photographs of the grooves and send the photographs to a computer; operative rods supported on the table and operable to tilt the platform, wherein the operative rods are alternately actuated to move the platform along a z-axis to flip over the micro light-emitting diodes if so desired; magnets supported on the table corresponding to the grooves of the platform; and two vibrators supported on the table and operable to vibrate the platform in an x-axis and a y-axis, respectively.
8. The system according to claim 7, wherein the platform comprises ridges to provide passages on the platform, wherein each of the passages comprises a row of the grooves of the platform, wherein each of the passages extends between two adjacent ones of the ridges so that the micro light-emitting diodes are only movable along the passages on the platform.
9. The system according to claim 7, further comprising a vehicle for carrying the platform on the table and a cylinder connected to the vehicle at an end and connected to the table at another end.
10. The method according to claim 7, wherein the magnets are selected from the group consisting of magnetostatic elements and magnets.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0016] The present invention will be described via detailed illustration of two embodiments referring to the drawings wherein:
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
DETAILIGHT-EMITTING DIODES DESCRIPTION OF EMBODIMENTS
[0024] Referring to
[0025] In addition, the table 21 is equipped with an adjustor 30. The adjustor 30 includes two operative rods 32 extending parallel to each other. The operative rods 32 extend toward the vehicle 23 for a certain distance. Each of the operative rods 32 is in contact with or pivotally connected to a corresponding portion of the platform 34.
[0026] Referring to
[0027] Two vibrators 36 are supported on the table 21. One of the vibrators 36 is located between the operative rods 32 to vibrate the platform 34 along the y-axis. The other vibrator 36 is actuated to vibrate the platform 34 along the x-axis.
[0028] Each of the vibrators 36 is a mandrel of a pneumatic cylinder or a cam operatively connected to a motor. The amplitude of the vibration of the platform 34 by the vibrators 36 is under control mechanically.
[0029] Referring to
[0030] Any two adjacent ones of the ridges 42 are used to restrain one of the micro light-emitting diodes 50 from two sides. Thus, each of the micro light-emitting diodes 50 is only movable along a corresponding one of the passages 44 on the platform 34.
[0031] Referring to
[0032] Such a magnetostatic element exerts a magnetic force without having to consume any electricity. The location of such a magnetostatic element can be changed to change the intensity of its magnetic force.
[0033] Such an electromagnet is energized by electricity to exert a magnetic force. A current for energizing such an electromagnet can be changed to change the intensity of its magnetic force.
[0034] Referring to
[0035] At 10, the platform 34 receives a batch of magnetic micro light-emitting diodes 50. A transporting tool (not shown) can be used to transport the entire batch of micro light-emitting diodes 50 onto platform 34.
[0036] A grain of each of the micro light-emitting diodes 50 is connected to a metallic laminate on a side and connected to an electrode unit on another side. The metallic laminate is magnetically permeable. Thus, the micro light-emitting diodes 50 are magnetically permeable.
[0037] The transporting tool includes at least one vibrating tray (not shown) for vibrating the micro light-emitting diodes 50, thereby moving the micro light-emitting diodes 50 onto the platform 34. Thus, piling of the micro light-emitting diodes 50 is avoided. Inevitably, some of the micro light-emitting diodes 50 are defective. Such a vibrating tray can disperse such defective ones among the micro light-emitting diodes 50.
[0038] At 11, the platform 34 is vibrated to translate or orient the entire batch of micro light-emitting diodes 50.
[0039] About the translation of the micro light-emitting diodes 50, one of the vibrators 36 vibrates the platform 34 along the x-axis and hence moves the micro light-emitting diodes 50 along the passages 44. The other vibrator 36 vibrates the platform 34 along the y-axis to move the micro light-emitting diodes 50 perpendicular to the passages 44. If necessary, the operative rods 32 can change the tilting of the platform 34 and hence speed up movement of the micro light-emitting diodes 50 on the platform 34.
[0040] Regarding the orientation of the micro light-emitting diodes 50, when the micro light-emitting diodes 50 are upside down or disoriented, the operative rods 32 are alternately actuated to move the platform 34 along the z-axis. Thus, the micro light-emitting diodes 50 are flipped over or moved to a correct orientation on the platform 34.
[0041] That is, the foregoing process is executed to vibrate and move the micro light-emitting diodes 50 to the correct location and orientation on the platform 34, which is horizontal or tilted.
[0042] At 12, the correctly oriented micro light-emitting diodes 50 fall into the grooves 46 in the platform 34. A reduced lower portion of each of the micro light-emitting diodes 50 reaches a reduced lower portion of the corresponding groove 46. The arrays 40 enable the platform 34 to receive a large amount of micro light-emitting diodes 50.
[0043] At 13, magnetic attraction is exerted on the micro light-emitting diodes 50 in the grooves 46 via the platform 34. The magnets 27 magnetically attract the micro light-emitting diodes 50 in the grooves 46, thereby keeping the micro light-emitting diodes 50 in the grooves 46 against the vibration that could otherwise cause the micro light-emitting diodes 50 to jump back onto the upper face of the platform 34 from the grooves 46.
[0044] At 14, it is determined whether the micro light-emitting diodes 50 are well aligned on the platform 34. The camera 25 is used to take photographs of the platform 34 and transmit the photographs to the computer. The computer compares the photographs with a default to determine whether the micro light-emitting diodes 50 are well aligned.
[0045] The process goes to 16 if the micro light-emitting diodes 50 fill 99% of the grooves 46 of the platform 34. Then, the process goes to 15.
[0046] The process goes to 17 if otherwise, i.e., the micro light-emitting diodes 50 fail to fill 99% of the grooves 46 of the platform 34. Then, the process will be repeated. The process will be executed once and again until the process finally goes to 16, i.e., the micro light-emitting diodes 50 fill 99% of the grooves 46 of the platform 34.
[0047] At 15, mass transfer is executed. The transfer unit equipped with probes (not shown) corresponding to the array 40 is used to transfer the micro light-emitting diodes 50 to a predetermined location from the arrays 40. Thus, the micro-aligning system 20 executes the micro-aligning method for successful mass production and mass transfer.
[0048] It should be noted that the steps represented by “11”, “12” and “13” are combined with one another to provide a subroutine of alternate magnetic attraction and vibration to cause the grooves 46 of the platform 34 to capture correctly located and oriented micro light-emitting diodes 50. These steps can be arranged in any other proper order.
[0049] The subroutine is executed for only once if the grooves 46 of the platform 34 are used to capture micro light-emitting diodes 50 of one color. However, the subroutine is executed for three times if the grooves 46 of the platform 34 are used to capture micro light-emitting diodes 50 of three colors, i.e., RGB.
[0050] For example, the micro light-emitting diodes 50 are of red. At 10, the vibrating tray is used to disperse defective micro light-emitting diodes 50 among the micro light-emitting diodes 50 and then transport the micro light-emitting diodes 50 onto the platform 34. At 11, vibration is imposed on the platform 34 to correctly locate and orient the micro light-emitting diodes 50 on the platform 34. At 12, the correctly located and oriented micro light-emitting diodes 50 are inserted into the grooves 46 of the platform 34. At 13, magnetic attraction is used to keep the micro light-emitting diodes 50 in the grooves 46 of the platform 34.
[0051] At 14, it is determined whether the micro light-emitting diodes 50 are well aligned on the platform 34. The process goes to 16 if the micro light-emitting diodes 50 fill 99% of the grooves 46 of the platform 34. Then, the process goes to 15. The process goes to 17 if otherwise. Then, the subroutine will be repeated. The process will be executed once and again until the process finally goes to 16. At 15, mass transfer is executed.
[0052] To capture micro light-emitting diodes 50 of red, green and blue, the subroutines is executed for three rounds. Firstly, the magnets 27 are used to move the micro light-emitting diodes 50 of red into first one-third of the grooves 46 of the platform 34. The micro light-emitting diodes 50 that are not captured in the first one third of the grooves 46 are swept.
[0053] Secondly, the magnets 27 are used to move the micro light-emitting diodes 50 of green into second one-third of the grooves 46 of the platform 34. The micro light-emitting diodes 50 that are not captured in the two thirds of the grooves 46 are swept.
[0054] Thirdly, the magnets 27 are used to move the micro light-emitting diodes 50 of blue into third one-third of the grooves 46 of the platform 34. The micro light-emitting diodes 50 that are not captured in the grooves 46 are swept.
[0055] Finally, mass transfer is executed for only once.
[0056] The present invention has been described via the illustration of the embodiments. Those skilled in the art can derive variations from the embodiments without departing from the scope of the present invention. Therefore, the embodiments shall not limit the scope of the present invention defined in the claims.