IP Library Granted Patent US 11,383,429
Granted Patent B2
US 11,383,429 · App. 16/777,585 · Granted Jul 12, 2022

3D printed optofluidic device and methods of fabrication

Inventor: Philip S. Measor (Spokane, WA)
Assignee: Whitworth University
B29C64/135B01L3/502707B29C64/264B29C64/35B33Y10/00B33Y80/00B01L2200/12B01L2200/16B01L2300/0809B01L2300/12
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Quick Facts
Patent No.
US 11,383,429
App. No.
16/777,585
Granted
Jul 12, 2022
Kind
B2
Abstract

Methods and systems for optofluidic device fabrication and design are herein disclosed. In examples, a user may manufacture the optofluidic device using stereolithography (SLA) three-dimensional (3D) printing, in which photosensitive resin is exposed to a focused laser, solidifying specific areas of resin. The optofluidic device may guide light for a broad wavelength range from a liquid or gas channel comprised within and may be used to guide the emission of light and particles of interest to a detector to identify the particles.

Claims (34)

1. A method of manufacturing an optofluidic device, comprising:

lowering a build platform into a vat of undeveloped resin;

causing a light source to emit a light in a first pattern on the undeveloped resin such that a first layer of resin is deposited on the build platform, the first layer of resin being developed resin;

causing the light source to emit light in a second pattern such that a second layer of resin is deposited on the first layer of resin, a first portion and a second portion of the second layer of resin being developed and a third portion of the second layer of resin remaining undeveloped, the third portion of the second layer of resin deposited between the first portion and second portion;

causing the light source to emit light in a third pattern such that a third layer of resin is deposited on the second layer of resin, the third layer of resin including a first portion, a second portion, and a third portion that is developed resin, the third layer of resin including a fourth portion and a fifth portion remaining undeveloped, the fourth portion of the third layer of resin deposited between the first portion and second portion of the third layer of resin, and the fifth portion of the third layer of resin deposited between the second portion and third portion of the third layer of resin;

causing the light source to emit light in a fourth pattern such that a fourth layer of resin is deposited on the third layer of resin, the fourth layer of resin including a first portion, a second portion, a third portion, and a fourth portion that is developed resin, the fourth layer including a fifth portion, a sixth portion, and a seventh portion remaining undeveloped, the fifth portion of the fourth layer of resin deposited between the first portion and second portion of the fourth layer of resin, the sixth portion of the fourth layer of resin deposited between the second portion and third portion of the fourth layer of resin, and the seventh portion of the fourth layer of resin deposited between the third portion and fourth portion of the fourth layer of resin;

causing the light source to emit light in the third pattern such that a fifth layer of resin is deposited on the fourth layer of resin;

causing the light source to emit light in the second pattern such that a sixth layer of resin is deposited on the fifth layer of resin; and

causing the light source to emit light in the first pattern such that a seventh layer of resin is deposited on the sixth layer of resin.

2. The method of claim 1 , further comprising:

causing a stream of gas to contact the optofluidic device such that at least a portion of undeveloped resin is removed from the optofluidic; and

exposing the optofluidic device to a lamp configured to emit light in at least one wavelength band to polymerize remaining undeveloped resin.

3. The method of claim 1 , wherein causing the light source to emit light includes causing the light source to emit light at a wavelength range of about 350 nm to 380 nm.

4. The method of claim 1 , wherein causing the light source to emit light includes causing the light source to emit light such that when the first layer, second layer, third, layer, fourth layer, fifth layer, sixth layer, and seventh layer of the resin are deposited the optofluidic device has at least one dimension that is less than 100 μm.

5. The method of claim 1 , further comprising selecting undeveloped resin from multiple undeveloped resin types such that when the light source emits light the developed resin has an absorbance configured to absorb a predetermined amount of the light.

6. The method of claim 1 , further comprising selecting undeveloped resin such that when the light source emits light the developed resin has a surface roughness of less than 50 nm RMS.

7. The method of claim 1 , further comprising selecting undeveloped resin such that when the light source emits light the developed resin waveguide has an optical mode loss of α<0.1 dB/cm at a designed wavelength.

8. An optofluidic device, comprising:

a first resin cladding; and

a second resin cladding deposited within the first resin cladding and being separated at least in part from the first resin cladding such that a first substantially rectangular gap is present between the first resin cladding and the second resin cladding, the second resin cladding being substantially rectangular, the second resin cladding having a partially hollow and substantially rectangular interior portion.

9. The device of claim 8 , wherein the first resin cladding and the second resin cladding are configured to contain light when directed at the first substantially rectangular gap.

10. The device of claim 8 , wherein the first substantially rectangular gap contains a solvent.

11. The device of claim 10 , wherein the solvent includes fluorescently-labeled particles.

12. The device of claim 8 , wherein the first resin cladding has at least one dimension less than 100 μm.

13. The device of claim 8 , wherein the first resin cladding and second resin cladding have a desired absorbance about 0.046 or less, when a light source is directed at the first substantially rectangular gap.

14. A device comprising:

a first resin cladding; and

a second resin cladding deposited within the first resin cladding and being separated at least in part from the first resin cladding such that a first substantially rectangular gap is present between the first resin cladding and the second resin cladding, the second resin cladding being substantially rectangular, the second resin cladding having a partially hollow and substantially rectangular interior portion.

15. The device of claim 14 , wherein the first resin cladding and second resin cladding have a desired absorbance about 0.047 or less, when a light source is directed at the first substantially rectangular gap.

16. The device of claim 14 , wherein the first resin cladding and second resin cladding have a refractive index of about 1.5 or less.

17. The device of claim 14 , wherein the first resin cladding and second resin cladding have a refractive index of about 1.5 or more.

18. The device of claim 14 , wherein the first resin cladding has at least one dimension less than 100 μm.

19. The device of claim 14 , wherein the first resin cladding and second resin cladding have an optical mode loss of α<0.1 dB/cm when a light source is directed at the first substantially rectangular gap.

20. The device of claim 14 , wherein the first resin cladding and second resin cladding have a surface roughness of less than 50 nm RMS.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 30, 2020
From: MEASOR, PHILIP S.
To: WHITWORTH UNIVERSITY
Reel/Frame 051677/0449 →
Continuity (2)
Provisional Application 62874344 · Jul 15, 2019
Related Publication 20210016497A1 · Jan 21, 2021