The present invention relates to a device for deflecting laser beams.
Conventional beam deflection units based on optical phase shifters may function without moving components. Such beam deflection units are thus used as a substitute for mechanical mirrors. Deflection angles in the range of approximately 5° to 15° are typically achieved.
It is disadvantageous that the deflection angle is too small for LIDAR applications, which require much larger deflection angles.
United States Patent Application Publication No. US 2016/0049765 A1 describes a plurality of one-dimensional beam-forming chips that form a two-dimensionally scanning solid state array, so that a three-dimensional surroundings image may be detected. The solid state arrays are situated one above the other, and emit at one end of the particular chip. The control direction is situated in the chip plane.
It is disadvantageous that the deflection angles of the laser beams are determined by the orientation of the particular solid state array. In other words, the resolution in the vertical deflection dimension cannot be changed.
An object of the present invention is to change and increase the deflection angle.
In accordance with an example embodiment of the present invention, a device for deflecting laser beams includes at least one light source that is configured for generating laser beams, and at least one integrated optical circuit. The integrated optical circuit is situated on a substrate. The substrate has a first main direction of extension, a second main direction of extension, and a third main direction of extension. The first main direction of extension and the second main direction of extension span a plane of the substrate surface, and the third main direction of extension is orthogonal to the plane of the substrate surface. The integrated optical circuit includes at least one waveguide and at least one emission means (emission element), the emission means functioning as an output of the integrated optical circuit and the laser beams emitting along a first direction. According to the present invention, a deflection means (i.e., deflector element) is provided which is spaced apart from the substrate along the first main direction of extension or along the second main direction of extension or along the third main direction of extension, the deflection means deflecting the laser beams along a second direction, the second direction being different from the first direction.
The advantage is that the deflection angle is changeable independently of the orientation of the substrate.
In one refinement of the present invention, the integrated optical circuit includes at least one optical phase shifter and at least two emission means. In other words, the integrated optical circuit is designed as a phase-controlled group antenna. A phase-controlled group antenna is also known as an optical phased array antenna.
An advantage is that the light that is emitted by the at least two emission means creates an interference which may be controlled by the phase shifter. This control allows the beam to be deflected along the first direction. This means that the direction of the laser beams at the output of the emission means may be different from the direction of the laser beams at the output of the deflection device.
In one refinement of the present invention, multiple integrated optical circuits are provided that are designed as one- or two-dimensional arrays and that are situated on a shared carrier substrate. In other words, the integrated optical circuits constitute or form an area array.
It is advantageous that multiple laser beams may be simultaneously deflected, and these laser beams may cover different scanning areas, i.e., allow parallelization of the laser beams. The laser beams that are emitted by the optical circuit are deflected in various directions, depending on the position and shape of the deflection means. In other words, the deflection means does not deflect every beam in the same direction.
In another embodiment of the present invention, the first direction corresponds to the third main direction of extension.
The advantage is that beams that are emitted perpendicularly with respect to the substrate surface may be deflected.
In one refinement of the present invention, the first direction corresponds to the first main direction of extension or to the second main direction of extension.
It is advantageous that beams that are emitted in the plane of the substrate surface at one end of the substrate of the integrated optical circuits may be deflected.
In another embodiment of the present invention, multiple integrated optical circuits are situated one above the other, spaced apart along the third main direction of extension. The carrier substrates on which the integrated optical circuits are situated are in particular situated in parallel.
An advantage is that the effort for alignment between the optical circuits may be minimized, and a simple configuration for deflecting the laser beams may thus be selected.
In one refinement of the present invention, the deflection means includes at least one lens.
It is advantageous that the lens additionally deflects the optical beam that is emitted by the integrated optical circuits. The lens has the advantage in particular that this additional deflection is continuous, so that areas into which no beams can be deflected may thus be prevented from arising in the overall deflection range.
In another embodiment of the present invention, the deflection means includes a microlens array.
The advantage is that the deflection angle range for the optical circuits may be set differently and individually.
In one refinement of the present invention, the deflection means includes a multistage prism.
It is advantageous that different deflection angles may be achieved.
Further advantages result from the description below of exemplary embodiments of the present invention and from the figures.
The present invention is explained below with reference to preferred specific embodiments and the figures.
Device 100, 200, 300, and 400 for deflecting laser beams is used, for example, in LIDAR systems, preferably for vehicles, in pico projectors, or in head-up displays.
Number | Date | Country | Kind |
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10 2017 222 864.4 | Dec 2017 | DE | national |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2018/084991 | 12/14/2018 | WO | 00 |