Claims
- 1. A bi-directional optical transceiver module for bi-direction optical communication over a single optical fiber, the bi-directional optical transceiver module comprising:
an optoelectronic transmitter to generate a first light beam to couple into the single optical fiber; an optoelectronic receiver to receive a second light beam decoupled from the single optical fiber; an optical block having a first opening, a second opening, and an optical filter, the optoelectronic transmitter coupled into the first opening to form a first optical axis, the optoelectronic receiver coupled into the second opening to form a second optical axis, the single optical fiber aligned with the first optical axis, the optical filter to pass through the first light beam on the first optical axis from the optoelectronic transmitter into the single optical fiber and to redirect the second light beam from the single optical fiber on the first optical axis into the second optical axis and the optoelectronic receiver; a printed circuit board (PCB) coupled to the optoelectronic transmitter and the optoelectronic receiver, the printed circuit board to couple to a host system and transceive electrical signals; and a fiber optic receptacle to receive and hold the single optical fiber aligned with the first optical axis.
- 2. The bi-directional optical transceiver module of claim 1 further comprising:
a cover coupled around the printed circuit board.
- 3. The bi-directional optical transceiver module of claim 1 further comprising:
a flange coupled between the optical block and the fiber optic receptacle.
- 4. The bi-directional optical transceiver module of claim 1 wherein,
the first optical axis is substantially perpendicular to the second optical axis.
- 5. The bi-directional optical transceiver module of claim 1 wherein,
the first light beam has a first wavelength, the second light beam has a second wavelength, and the first light beam differs from the second wavelength of the second light beam.
- 6. The bi-directional optical transceiver module of claim 5 wherein,
the first wavelength to allow the first light beam to pass through the optical filter along the first optical axis, the second wavelength to cause the optical filter to redirect the second light beam from the first optical axis to the second optical axis.
- 7. The bi-directional optical transceiver module of claim 1 wherein,
the printed circuit board includes pins to couple to a host printed circuit board of the host system.
- 8. The bi-directional optical transceiver module of claim 1 wherein,
the printed circuit board includes a connector to couple to a connector of the host system.
- 9. The bi-directional optical transceiver module of claim 1 wherein,
the printed circuit board includes an edge connection to couple to an edge connector of the host system.
- 10. The bi-directional optical transceiver module of claim 9 wherein,
the edge connection includes staggered ground, power and signal pads to provide hot pluggability when coupling to the edge connector of the host system.
- 11. The bi-directional optical transceiver module of claim 1 wherein,
the optical block is an integrated optical block having a slot to receive the optical filter.
- 12. The bi-directional optical transceiver module of claim 1 wherein,
the optical block is a clam shell optical block having a first half and a second half coupled together.
- 13. A method of bi-directional optical communication over a single optical fiber, the method comprising:
transducing a first electrical signal into a first light beam having a first wavelength; transmitting the first light beam having the first wavelength through an optical filter into the single optical fiber; receiving a second light beam having a second wavelength from the single optical fiber; reflecting the second light beam having the second wavelength at a surface of the optical filter; and, transducing the second light beam into a second electrical signal.
- 14. The method of claim 13 further comprising:
providing a fiber optic transceiver to couple to the single optical fiber, the fiber optic transceiver having the optical filter.
- 15. The method of claim 14 wherein,
the fiber optic transceiver includes an optical block having the optical filter.
- 16. The method of claim 15 wherein,
the fiber optic transceiver further includes a semiconductor laser and a semiconductor photodiode coupled to the optical block, the semiconductor laser to transduce the first electrical signal into the first light beam, and the semiconductor photodiode to transduce the second light beam into the second electrical signal.
- 17. The method of claim 13 wherein,
the transducing of the second light beam into the second electrical signal performed by a semiconductor photodiode.
- 18. The method of claim 13 wherein,
the transducing of the first electrical signal into the first light beam having the first wavelength performed by a semiconductor laser.
- 19. An optical block to provide bi-directional optical communication over a single fiber, the optical block comprising:
an optical filter to reflect light of a first wavelength and to pass light of a second wavelength; a first lens to optically focus light into the single optical fiber and to optically focus light out from the single optical fiber to the optical filter; a second lens to optically focus light from a light transmitter to the optical filter; and, a third lens to optically focus light from the optical filter to a light receiver.
- 20. The optical block of claim 19 wherein,
the optical block is an integrated optical block having a slot to receive the optical filter.
- 21. The optical block of claim 19 wherein,
the optical block is a clam shell optical block having a first half and a second half coupled together along a diagonal.
- 22. The optical block of claim 19 wherein,
the optical block has a first opening to receive the light transmitter and a second opening to receive the light receiver.
- 23. The optical block of claim 19 wherein,
the light of the first wavelength from the single optical fiber and focused by the first lens reflected by the optical filter to the third lens and into the light receiver, and the light of the second wavelength from the light transmitter and focused by the second lens passed through the optical filter to the first lens and into the single optical fiber.
- 24. The optical block of claim 19 wherein,
the light of the second wavelength from the single optical fiber and focused by the first lens passed through the optical filter to the third lens and into the light receiver, and the light of the first wavelength from the light transmitter and focused by the second lens reflected by the optical filter to the first lens and into the single optical fiber.
- 25. The optical block of claim 19 wherein,
the optical filter oriented within the optical block on an optical axis to reflect the light of the first wavelength at an angle between the first lens and the second lens.
- 26. The optical block of claim 19 wherein,
the optical filter oriented within the optical block on an optical axis to reflect the light of the first wavelength at an angle between the first lens and the third lens.
- 27. A bi-directional optical transceiver for light transmission and light reception over a single optical fiber, the bi-directional optical transceiver comprising:
an optical block having an optical fiber port to align with the single optical fiber, a transmitter port to accept a light transmitter, a receiver port to accept a light receiver, a slot to receive an optical filter, a first lens in the optical fiber port, a second lens in the transmitter port, and a third lens in the receiver port; the light transmitter coupled into the transmitter port 11 of the optical block; the light receiver coupled into the receiver port of the optical block; the optical filter coupled into the slot of the optical block, the optical filter transmissive to a first light beam having a first wavelength and reflective to a second light beam having a second wavelength.
- 28. The bi-directional optical transceiver of claim 27 wherein,
the first light beam to be generated by the light transmitter, the second light beam to be received by the light receiver, and the optical filter oriented within the optical block on an optical axis to reflect the second light beam of the second wavelength at an angle between the first lens and the third lens and to pass the first light beam of the first wavelength between the first lens and the second lens.
- 29. The bi-directional optical transceiver of claim 27 wherein,
the first light beam to be generated by the light transmitter, the second light beam to be received by the light receiver, and the optical filter oriented within the optical block on an optical axis to reflect the second light beam of the second wavelength at an angle between the first lens and the second lens and to pass the first light beam of the first wavelength between the first lens and the third lens.
- 30. The bi-directional optical transceiver of claim 27 further comprising:
a printed circuit board (PCB) coupled to the light transmitter and the light receiver, the printed circuit board to couple to a host system and transceive electrical signals between the host system and the light transmitter and the light receiver; and a fiber optic receptacle to receive and hold the single optical fiber aligned with the optical fiber port of the optical block.
- 31. The bi-directional optical transceiver of claim 30 further comprising:
a cover coupled around the printed circuit board.
- 32. The bi-directional optical transceiver of claim 31 further comprising:
a flange coupled between the optical block and the fiber optic receptacle.
- 33. An optical block for a bi-directional fiber optic transceiver, the optical block comprising:
an optical port assembly including a hollow cylindrical body having a first opening at a first end, a second opening at a second end, and a first ball lens coupled into the second opening, the first opening to receive a fiber ferrule, the first ball lens to couple light between the optical block and a single optical fiber; a first optical block half having a first opening to receive the optical port assembly, a second opening to receive a light source, a second ball lens in the second opening, a slot, and a first diagonal plane; an optical filter coupled into the slot of the first optical block half, the optical filter transmissive to at least a first wavelength of light and reflective to at least a second wavelength of light differing from the first; and, a second optical block half having a second diagonal plane coupled to the first diagonal plane of the first optical block half, a third opening to receive a light receiver, and a third ball lens in the third opening.
- 34. The optical block of claim 33 wherein,
the first optical block half and the second optical block half snap together.
- 35. The optical block of claim 33 wherein,
wherein, the first optical block half and the second optical block half are glued together.
- 36. The optical block of claim 33 further comprising
a flange coupled to the first optical block half, the flange to couple the optical block in alignment with a fiber optic receptacle.
- 37. The optical block of claim 33 wherein,
the optical filter to pass the light of the first wavelength and to reflect the light of the second wavelength.
- 38. An optical block for a bi-directional fiber optic transceiver, the optical block comprising:
an integrated block of solid material having a first opening, a second opening with a second ball lens, a third opening with a third ball lens, and a slot formed along light paths therein; an optical port assembly coupled into the first opening of the optical block, the optical port assembly including a hollow cylindrical body having a first opening at a first end, a second opening at a second end, and a first ball lens coupled into the second opening, the first opening to receive a fiber ferrule, the first ball lens to couple light between the optical block and a single optical fiber; and, an optical filter coupled into the slot of the integrated block, the optical filter transparent to at least a first wavelength of light and reflective to at least a second wavelength of light differing from the first.
- 39. The optical block of claim 38 wherein,
the optical filter to pass the light of the first wavelength and to reflect the light of the second wavelength.
- 40. The optical block of claim 38 wherein,
the optical filter is epoxied in place within the slot.
- 41. The optical block of claim 38 wherein,
the integrated block further includes a slot opening associated with the slot, and the optical block further comprises a stopper coupled into the slot opening to hold the optical filter in place within the slot.
- 42. The optical block of claim 41 wherein,
the stopper is epoxied in place within the slot opening.
- 43. An optical communication system for bi-directional optical communication, the optical communication system comprising:
a single optical fiber having a first end and a second end; a first bi-directional optical transceiver coupled to the first end of the single optical fiber, the first bi-directional optical transceiver including
a first light source to generate a first light beam of a first wavelength, a first light receiver to receive a second light beam of a second wavelength, and a first optical block including a first optical filter to receive the second light beam of the second wavelength from the single optical fiber and redirect it into the first light receiver and to pass the first light beam of the first wavelength from the first light source into the single optical fiber; and, a second bi-directional optical transceiver coupled to the second end of the single optical fiber, the second bi-directional optical transceiver including
a second light source to generate the second light beam of the second wavelength, a second light receiver to receive the first light beam of the first wavelength, and a second optical block including a second optical filter to receive the first light beam of the first wavelength from the single optical fiber and redirect it into the second light receiver and to pass the second light beam of the second wavelength from the second light source into the single optical fiber.
- 44. The optical communication system of claim 43 wherein,
the single optical fiber is a single mode optical fiber.
- 45. The optical communication system of claim 43 wherein,
the single optical fiber is a multi mode optical fiber.
- 46. The optical communication system of claim 43 wherein,
the first optical filter is trans parent to the first light beam having the first wavelength and is reflective to the second light beam having the second wavelength, and the second optical filter is transparent to the second light beam having the second wavelength and is reflective to the first light beam having the first wavelength.
- 47. An optical communication system for bidirectional optical communication, the optical communication system comprising:
a single optical fiber having a first end and a second end; a first bi-directional optical transceiver coupled to the first end of the single optical fiber, the first bi-directional optical transceiver including
a first light source to generate a first light beam of a first wavelength, a first light receiver to receive a second light beam of a second wavelength, and a first optical block including a first optical filter to receive and pass the second light beam of the second wavelength from the single optical fiber into the first light receiver and to redirect the first light beam of the first wavelength from the first light source into the single optical fiber; and, a second bi-directional optical transceiver coupled to the second end of the single optical fiber, the second bi-directional optical transceiver including
a second light source to generate the second light beam of the second wavelength, a second light receiver to receive the first light beam of the first wavelength, and a second optical block including a second optical filter to receive and pass the first light beam of the first wavelength from the single optical fiber into the second light receiver and to redirect the second light beam of the second wavelength from the second light source into the single optical fiber.
- 48. The optical communication system of claim 47 wherein,
the single optical fiber is a single mode optical fiber.
- 49. The optical communication system of claim 47 wherein,
the single optical fiber is a multi mode optical fiber.
- 50. The optical communication system of claim 47 wherein,
the second optical filter is transparent to the first light beam having the first wavelength and is reflective to the second light beam having the second wavelength, and the first optical filter is transparent to the second light beam having the second wavelength and is reflective to the first light beam having the first wavelength.
- 51. A bi-directional optical transceiver module for bi-direction optical communication over a single optical fiber, the bi-directional optical transceiver module comprising:
an optoelectronic transmitter to generate a first light beam to couple into the single optical fiber; an optoelectronic receiver to receive a second light beam decoupled from the single optical fiber; an optical block having a first opening, a second opening, and an optical filter, the optoelectronic receiver coupled into the first opening to form a first optical axis, the optoelectronic transmitter coupled into the second opening to form a second optical axis, the single optical fiber aligned with the first optical axis, the optical filter to redirect the first light beam on the second optical axis from the optoelectronic transmitter into the first optical axis and the single optical fiber, the optical filter to pass through the second light beam from the single optical fiber on the first optical axis into the optoelectronic receiver; a printed circuit board (PCB) coupled to the optoelectronic transmitter and the optoelectronic receiver, the printed circuit board to couple to a host system and transceive electrical signals; and a fiber optic receptacle to receive and hold the single optical fiber aligned with the first optical axis.
- 52. The bi-directional optical transceiver module of claim 51 further comprising:
a cover coupled around the printed circuit board.
- 53. The bi-directional optical transceiver module of claim 51 further comprising:
a flange coupled between the optical block and the fiber optic receptacle.
- 54. The bi-directional optical transceiver module of claim 51 wherein,
the first optical axis is substantially perpendicular to the second optical axis.
- 55. The bi-directional optical transceiver module of claim 51 wherein,
the first light beam has a first wavelength, the second light beam has a second wavelength, and the first light beam differs from the second wavelength of the second light beam.
- 56. The bi-directional optical transceiver module of claim 55 wherein,
the second wavelength to allow the second light beam to pass through the optical filter along the first optical axis, the first wavelength to cause the optical filter to redirect the first light beam from the second optical axis to the first optical axis.
- 57. The bi-directional optical transceiver module of claim 51 wherein,
the printed circuit board includes pins to couple to a host printed circuit board of the host system.
- 58. The bi-directional optical transceiver module of claim 51 wherein,
the printed circuit board includes a connector to couple to a connector of the host system.
- 59. The bi-directional optical transceiver module of claim 51 wherein,
the printed circuit board includes an edge connection to couple to an edge connector of the host system.
- 60. The bi-directional optical transceiver module of claim 59 wherein,
the edge connection includes staggered ground, power and signal pads to provide hot pluggability when coupling to the edge connector of the host system.
- 61. The bi-directional optical transceiver module of claim 51 wherein,
the optical block is an integrated optical block having a slot to receive the optical filter.
- 62. The bi-directional optical transceiver module of claim 51 wherein,
the optical block is a clam shell optical block having a first half and a second half coupled together.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This U.S. Non-Provisional Patent Application claims the benefit of U.S. Provisional Patent Application No. 60/351,862 entitled “BI-DIRECTIONAL OPTICAL TRANSCEIVER”, filed Jan. 24, 2002 by Ronson Tan et al; and also claims the benefit of U.S. Provisional Patent Application No. 60/351,831 entitled “BI-DIRECTIONAL OPTICAL TRANSCEIVER”, filed Jan. 24, 2002 by Ronson Tan et al.
Provisional Applications (2)
|
Number |
Date |
Country |
|
60351862 |
Jan 2002 |
US |
|
60351831 |
Jan 2002 |
US |