Claims
- 1. An optical system comprising:
a source of an input beam; a substantially transparent member having a first side with an input region and a detection output region and having a second side with a beam output region, said input region being aligned with said source and configured to pass a first portion of said input beam through said transparent member to said beam output region while diffracting a second portion of said input beam, said transparent member having at least a first reflective region disposed such that said second portion is reflected to said detection output region; and a detector aligned with said detection output region to sense optical power of said second portion.
- 2. The optical system of claim 1 further comprising a plurality of optical regions positioned relative to said first reflective region such that said plurality of optical regions cooperate to transmit said second portion to said detection region following multiple reflections.
- 3. The optical system of claim 2 wherein said optical regions include:
a second reflective region for receiving said second portion from said first reflective region and reflecting said second portion to a third reflective region; and said third reflective region for receiving said second portion from said second reflective region and reflecting said second portion to said detection output region, said detection output region being configured to concentrate said second portion to said detector.
- 4. The optical system of claim 3 wherein said detector is coupled to a feedback system for adjusting an input current for said source of said input beam.
- 5. The optical system of claim 1 wherein said input region has integrated diffractive properties of a computer generated hologram (CGH), said input region being configured to pass said first portion and diffract said second portion of said input beam, said first portion corresponding to a first target diffraction order for data transmissions and said second portion corresponding to a second target diffraction order for monitoring.
- 6. The optical system of claim 5 wherein said first target diffraction order is the 0th diffraction order and said second target diffraction order is a 9th diffraction order.
- 7. The optical system of claim 5 wherein said CGH is one of one-dimensional CGH and two-dimensional CGH, said one-dimensional CGH having at least eight discrete surface depths per period along one axis and said two-dimensional CGH having at least eight discrete surface depths per period along two axes.
- 8. The optical system of claim 1 wherein said input region has integrated diffractive properties of a grating, said input region being configured to pass said first portion and diffract said second portion of said input beam.
- 9. The optical system of claim 1 wherein said input region has integrated diffractive properties of a volume hologram, said input region being configured to pass said first portion and diffract said second portion of said input beam.
- 10. The optical system of claim 1 wherein said input region is coupled to one of a computer generated hologram (CGH) and a volume hologram and a grating for diffracting said second portion.
- 11. An optical monitoring system comprising:
a substrate; a parallel channel optical array fabricated on said substrate, said parallel channel optical array having a plurality of independent channels, each channel including an optical transmitter for emitting an input beam; an array of detectors, each said detector being dedicated to one of said input beams; an optical arrangement positioned to be impinged by said input beams, said optical arrangement having optical properties to induce diffraction of a portion of each said input beam to said detector dedicated to said input beam, said detectors being operable to generate first feedback signals that are responsive to said diffracted portions of said input beams; and a feedback system enabled to individually adjust said input beams in response to said first feedback signals.
- 12. The optical monitoring system of claim 11 wherein said optical arrangement has a plurality of discrete input surfaces, each said input surface corresponding to a specific one of said channels of said parallel channel optical array and being configured to diffract said portion of said input beam to said dedicated detector.
- 13. The optical monitoring system of claim 11 wherein said optical arrangement has a single input surface corresponding to all said channels of said parallel channel optical array and being configured to diffract portions of all of said input beams.
- 14. The optical monitoring system of claim 11 wherein said feedback system further includes:
a sensor for acquiring exposure data, said exposure data being a second feedback signal; a memory device for providing characterization data for said exposure data, said characterization data including target power level information for each said optical transmitter; and a modifying mechanism for adjusting said input beam in response to differences between said target power level information and said second feedback signal.
- 15. The optical monitoring system of claim 11 wherein said exposure data includes temperature data.
- 16. The optical monitoring system of claim 11 wherein said parallel channel optical array is a 1×12 VCSEL array.
- 17. The optical monitoring system of claim 11 wherein said detector and said feedback system are integrated on a single substrate member.
- 18. A method for maintaining a target power level for each laser diode in a parallel channel optical array comprising the steps of:
receiving an input beam from each said laser diode; diffracting said input beam through an optical member to a corresponding detector, said diffracting step including passing said input beam through a diffractive element that is one of a computer generated hologram and a grating; providing a first and a second source of feedback signals, said first source being generated in response to monitoring said diffracted input beam and said second source being generated in response to monitoring a variable of said parallel channel optical array; and adjusting an input current to said each laser diode in response to said first and second sources of feedback signals.
- 19. The method of claim 18 wherein said step of diffracting includes providing said optical member to have a continuous surface that is configured to diffract a plurality of said input beams to a plurality of corresponding detectors.
- 20. The method of claim 18 wherein said step of diffracting includes providing said optical member to include a plurality of diffractive surfaces, each surface being configured to diffract a specific one of said input beams to said corresponding detector.
- 21. The method of claim 18 wherein said step of monitoring a variable includes detecting an ambient temperature of said parallel channel optical array.
TECHNICAL FIELD
[0001] The invention relates generally to optical-monitoring systems and more particularly to an optical arrangement for directing optical beams for monitoring and feedback.