IP Library › Granted Patent US 12,631,731
Granted Patent B2
US 12,631,731 · App. 17/742,448 · Granted May 19, 2026

Optical package for a LIDAR sensor system and LIDAR sensor system

Inventors: Ricardo Ferreira (Olching, DE); Stefan Hadrath (Falkensee, DE); Peter Hoehmann (Berlin, DE); Herbert Kaestle (Traunstein, DE); Florian Kolb (Jena, DE); Norbert Magg (Berlin, DE); Jiye Park (Munich, DE); Tobias Schmidt (Garching, DE); Martin Schnarrenberger (Berlin, DE); Norbert Haas (Langenau, DE); Helmut Horn (Achberg, DE); Bernhard Siessegger (Unterschleissheim, DE); Guido Angenendt (Munich, DE); Charles Braquet (Munich, DE); Gerhard Maierbacher (Munich, DE); Oliver Neitzke (Dachau, DE); Sergey Khrushchev (Regensburg, DE)
Assignee: OSRAM GMBH
G01S7/4817G01S7/4811G01S7/4815G01S7/4816G01S7/484G01S17/931
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Quick Facts
Patent No.
US 12,631,731
App. No.
17/742,448
Granted
May 19, 2026
Kind
B2
Abstract

The present disclosure relates to various embodiments of an optical package for a LIDAR sensor system having a substrate including an array of a plurality of capacitors formed in the substrate, a plurality of switches formed in the substrate, where each switch is connected between at least one laser diode and at least one capacitor of the plurality of capacitors; and at least one laser diode being mounted in close proximity to the plurality of capacitors on the substrate in order to provide small parasitic inductances and capacitances. A processor is configured to control the plurality of switches to control a first current flow to charge the plurality of capacitors, wherein the processor is configured to control the plurality of switches to control a second current flow to drive the at least one laser diode with current discharged from at least one capacitor of the plurality of capacitors.

Claims (44)

1 . Optical package for a LIDAR Sensor System with a substrate including:

an array of a plurality of capacitors formed in the substrate; and

a plurality of switches formed in the substrate, wherein each switch is connected between at least one laser diode and at least one capacitor of the plurality of capacitors,

the optical package further including:

the at least one laser diode mounted proximately to the plurality of capacitors on the substrate;

a processor configured to control the plurality of switches to control a first current flow to charge the plurality of capacitors, and to control a second current flow to drive the at least one laser diode with a current discharged from at least one capacitor of the plurality of capacitors; and

characterized in that an electrical path between a capacitor and the at least one laser diode has an inductivity lower than 100 pH.

2 . The optical package according to claim 1 , characterized in that the plurality of capacitors and the plurality of switches are monolithically integrated in the substrate.

3 . The optical package according to claim 1 , characterized in that each switch of the plurality of switches is assigned to exactly one respective capacitor of the plurality of capacitors.

4 . The optical package according to claim 1 , characterized in that each switch of the plurality of switches includes at least one transistor.

5 . The optical package according to claim 4 , characterized in that the at least one transistor comprises at least one field effect transistor.

6 . The optical package according to claim 5 , characterized in that the at least one field effect transistor comprises at least one metal oxide semiconductor field effect transistor.

7 . The optical package according to claim 6 , characterized in that the at least one metal oxide semiconductor field effect transistor is a complementary metal oxide semiconductor field effect transistor.

8 . The optical package according to claim 1 , characterized in that the array of capacitors includes a number of capacitors in the range from 400000 capacitors to 600000 capacitors associated with the at least one laser diode.

9 . The optical package according to claim 1 , characterized in that at least one capacitor of the array of capacitors has a capacitance in the range from 50 fF to 200 fF.

10 . The optical package according to claim 1 , characterized in that the current flow to drive the at least one laser diode includes a current in the range from 10 mA to 100 A.

11 . The optical package according to claim 1 , characterized in that at least one capacitor of the array of capacitors is a deep trench capacitor.

12 . The optical package according to claim 1 , characterized in that at least one capacitor of the array of capacitors is a stacked capacitor.

13 . The optical package according to claim 1 , characterized in that the capacitors of the array of capacitors are arranged in rows and columns.

14 . The optical package according to claim 1 , characterized in that an electrically conductive common line is connecting at least some capacitors of the plurality of capacitors.

15 . The optical package according to claim 14 , characterized in that the optical package includes a power source electrically connected to the common line and configured to provide the power to charge the plurality of capacitors.

16 . The optical package according to claim 1 , characterized in that the optical package includes a printed circuit board, and the substrate may be mounted on the printed circuit board.

17 . The optical package according to claim 14 , characterized in that the optical package includes a printed circuit board, and the substrate may be mounted on the printed circuit board, wherein the printed circuit board may include an electrical contact electrically coupled to the common line of the substrate.

18 . The optical package according to claim 17 , characterized in that the electrical contact of the printed circuit board is wire bonded to the common line of the substrate.

19 . The optical package according to claim 14 , characterized in that the optical package includes a printed circuit board, and the substrate may be mounted on the printed circuit board, wherein a first terminal of the at least one laser diode may be electrically coupled to the common line, and a second terminal of the at least one laser diode may be electrically coupled to an electrical contact of the printed circuit board.

20 . The optical package according to claim 19 , characterized in that the electrical contact of the printed circuit board is wire bonded to the second terminal of the at least one laser diode.

21 . The optical package according to claim 1 , characterized in that the substrate includes or essentially consists of silicon.

22 . The optical package according to claim 1 , characterized in that the at least one laser diode laterally covers at least a portion of the plurality of capacitors.

23 . The optical package according to claim 1 , characterized in that the at least one laser diode includes an edge emitting laser diode.

24 . The optical package according to claim 1 , characterized in that the at least one laser diode includes a vertical cavity surface-emitting laser diode.

25 . The optical package according to claim 1 , characterized in that the processor is monolithically integrated in the substrate.

26 . The optical package according to claim 17 , characterized in that the processor is mounted on the printed circuit board.

27 . The optical package according to claim 17 , characterized in that the processor is configured to control the plurality of switches to discharge at least some capacitors of the plurality of capacitors to drive the at least one laser diode to emit a laser pulse of a predefined pulse shape.

28 . The optical package according to claim 27 , characterized in that the laser pulse has a pulse duration of in a range of 5 ns to 20 ns.

29 . The optical package according to claim 27 , characterized in that the processor is configured to control the plurality of switches to discharge at least some capacitors of the plurality of capacitors to drive the at least one laser diode to emit a laser pulse dependent on a light emission scheme.

30 . The optical package according to claim 1 , characterized in that at least one capacitor of the array of capacitors are arranged directly underneath the at least one laser diode in order to provide small parasitic inductances and capacitances.

31 . A LIDAR Sensor System including an optical package according to claim 1 .

32 . Optical package for a LIDAR Sensor System with a substrate including:

an array of a plurality of capacitors formed in the substrate; and

a plurality of switches formed in the substrate, where each switch is connected between at least one laser diode and at least one capacitor of the plurality of capacitors,

the optical package further including:

the at least one laser diode mounted proximately to the plurality of capacitors on the substrate;

a processor configured to control the plurality of switches to control a first current flow to charge the plurality of capacitors, and to control a second current flow to drive the at least one laser diode with a current discharged from at least one capacitor of the plurality of capacitors; and

characterized in that the array of capacitors includes a number of capacitors in the range from 400000 capacitors to 600000 capacitors associated with the at least one laser diode.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 13, 2022
From: FERREIRA, RICARDO; HADRATH, STEFAN; HOEHMANN, PETER; KAESTLE, HERBERT; KOLB, FLORIAN; MAGG, NORBERT; PARK, JIYE; SCHMIDT, TOBIAS; SCHNARRENBERGER, MARTIN; HAAS, NORBERT; HORN, HELMUT; SIESSEGGER, BERNHARD; ANGENENDT, GUIDO; BRAQUET, CHARLES; MAIERBACHER, GERHARD; NEITZKE, OLIVER; KHRUSHCHEV, SERGEY
To: OSRAM GMBH
Reel/Frame 059897/0591 →
Priority Claims (15)
DE 10 2019 203 175.7 · Mar 8, 2019 · national
DE 10 2019 205 514.1 · Apr 16, 2019 · national
DE 10 2019 206 939.8 · May 14, 2019 · national
DE 10 2019 208 489.3 · Jun 12, 2019 · national
DE 10 2019 210 528.9 · Jul 17, 2019 · national
DE 10 2019 213 210.3 · Sep 2, 2019 · national
DE 10 2019 214 455.1 · Sep 23, 2019 · national
DE 10 2019 216 362.9 · Oct 24, 2019 · national
DE 10 2019 217 097.8 · Nov 6, 2019 · national
DE 10 2019 218 025.6 · Nov 22, 2019 · national
DE 10 2019 219 775.2 · Dec 17, 2019 · national
DE 10 2020 200 833.7 · Jan 24, 2020 · national
DE 10 2020 201 577.5 · Feb 10, 2020 · national
DE 10 2020 201 900.2 · Feb 17, 2020 · national
DE 10 2020 202 374.3 · Feb 25, 2020 · national
Continuity (2)
Continuation 16809587 · Mar 5, 2020
Related Publication 20220276352A1 · Sep 1, 2022
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