IP Library Granted Patent US 12,607,836
Granted Patent B2
US 12,607,836 · App. 18/006,373 · Granted Apr 21, 2026

Optical element

Inventors: Jiawen Li (Adelaide, AU); Robert McLaughlin (Adelaide, AU); Simon Thiele (Stuttgart, DE); Alois Herkommer (Stuttgart, DE); Harald Gießen (Stuttgart, DE)
Assignees: The University of Adelaide; Universität Stuttgart
G02B17/0856G02B6/262G02B17/006G02B23/2469G02B21/0056
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Quick Facts
Patent No.
US 12,607,836
App. No.
18/006,373
Granted
Apr 21, 2026
Kind
B2
Abstract

An optical element ( 100 ) is provided comprising a first surface ( 102 ) for emitting and/or receiving electromagnetic radiation, the first surface being arranged for optically coupling to, or being optically coupled to, a portion of an optical fibre ( 104 ) having an axis. The optical element ( 100 ) comprising a second surface ( 106 ) positioned for emitting and/or receiving electromagnetic radiation in a direction transversal to the axis of the optical fibre ( 104 ), wherein the optical element ( 100 ) has a first focal length for electromagnetic radiation emitted and/or received by an inner portion of the second surface ( 106 ) and a second focal length for electromagnetic radiation emitted and/or received by an outer portion of the second surface ( 106 ), the first and second focal lengths being different focal lengths. A method of forming an optical device comprising the optical element ( 100 )) and further comprising an optical fibre coupled to the optical element is also provided.

Claims (30)

1 . An optical element comprising:

a first surface for emitting and/or receiving electromagnetic radiation, the first surface being arranged for optically coupling to, or being optically coupled to, a portion of an optical fibre, the optical fibre having an axis; and

a second surface positioned for emitting and/or receiving electromagnetic radiation in a direction transversal to the axis of the optical fibre:

wherein the optical element has a first focal length for electromagnetic radiation emitted and/or received by an inner portion of the second surface and a second focal length for electromagnetic radiation emitted and/or received by an outer portion of the second surface, the first and second focal lengths being different focal lengths, and

wherein the inner portion and the outer portion of the second surface are optimised for use of the optical element to acquire measurements at different acquisition parameters using at least two different optical technologies.

2 . The optical element of claim 1 wherein the optical element is integrally formed.

3 . The optical element of claim 1 wherein the outer portion of the second surface entirely surrounds the inner portion of the second surface.

4 . The optical element of claim 1 wherein the first focal length is larger than the second focal length.

5 . The optical element of claim 4 wherein a depth of field associated with the inner portion of the second surface is larger than a depth of field associated with the outer portion of the second surface.

6 . The optical element of claim 1 wherein the optical element is arranged such that at least a portion or the majority of electromagnetic radiation received within the inner portion of the second surface is directed into a central region, of the optical fibre and at least a portion or the majority of electromagnetic radiation received within the outer portion of the second surface is directed into a region of the optical fibre surrounding the central region.

7 . The optical element of claim 1 wherein the outer portion has a focal length that result in numerical aperture greater than the numerical aperture of the inner portion by at least 0.1, 0.2, 0.3, 0.4, 0.5, 0.6, 0.7 or 0.8.

8 . The optical element of claim 1 wherein the optical element has a diameter less than 1 mm, 0.5 mm, 0.2 mm or 0.1 mm.

9 . The optical element of claim 1 comprising at least one reflective surface, the reflective surface having a reflective coating or a dichroic coating or being positioned for total internal reflection of electromagnetic radiation.

10 . The optical element of claim 9 wherein the reflective surface is arranged to direct electromagnetic radiation between the direction along the axis of the optical fibre and the direction transversal to the axis of the optical fibre.

11 . The optical element of claim 9 wherein the reflective surface is planar.

12 . The optical element of claim 9 wherein the reflective surface comprises a smooth surface portion that is not planar.

13 . The optical element of claim 9 wherein the reflective surface is piecewise continuous.

14 . The optical element of claim 1 wherein noise of optical signals or cross-talk between optical signal received by the outer portion of the second surface and optical signals received by the inner portion of the second surface is determined by optimising the ratio of the diameter of the outer and inner portions of the second surface.

15 . The optical element of claim 1 wherein noise of optical signals or cross-talk between optical signal received by the outer portion of the second surface and optical signals received by the inner portion of the second surface is reduced by use of an isolation element or a reflective surface between the inner and outer portions of the second surface.

16 . The optical element of claim 1 wherein the optical element is formed directly on an end portion of the optical fibre.

17 . The optical element of claim 1 , wherein the optical element is used to acquire measurements using at least two different imaging techniques;

wherein each of the first focal length and the second focal length is optimal for use with a respective one of the at least two different imaging techniques;

wherein the first focal length is larger than the second focal length; and

wherein a depth of field associated with the inner portion of the second surface is larger than a depth of field associated with the outer portion of the second surface.

18 . An optical device comprising the optical element in accordance with claim 1 , the optical device further comprising an optical fibre coupled to the optical element.

19 . The optical device of claim 18 wherein the optical fibre is a no core optical fibre.

20 . A method of forming the optical device in accordance with claim 18 , the method comprising the steps of:

providing a design for the optical element;

providing an optical fibre and positioning an end portion of the optical fibre relative to a multi-photon lithography system; and

instructing the multi-photon lithography system to 3D print the optical element in accordance with the provided design.

Assignments (2)
NUNC PRO TUNC ASSIGNMENT Recorded Jun 2, 2026
From: THE UNIVERSITY OF ADELAIDE
To: ADELAIDE UNIVERSITY
Reel/Frame 075843/0344 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 13, 2026
From: LI, JIAWEN; MCLAUGHLIN, ROBERT; THIELE, SIMON; HERKOMMER, ALOIS; GIESSEN, HAROLD
To: THE UNIVERSITY OF ADELAIDE; UNIVERSITÄT STUTTGART
Reel/Frame 075166/0407 →
Priority Claims (1)
AU 2020902567 · Jul 23, 2020 · national
Continuity (1)
Related Publication 20230341668A1 · Oct 26, 2023
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