Claims
- 1. An interferometric modulator for producing a square wave electromagnetic signal (So) through modulation of a sinusoidal electromagnetic carrier signal (Si) comprising;
- means for providing a first sinusoidal electromagnetic carrier input signal (Si);
- combining means (OM3), optically coupled to said input signal providing means (Si), for combining said input signal with a divided amplified delayed signal (L78) to produce a combined signal (L70);
- delay means (M54,M56), optically coupled to said combining means (OM3), for delaying said combined signal (L70) to provide a delayed combined signal;
- amplifying means (124), optically coupled to said delay means (M54,M56), for producing an amplified delayed signal (L72);
- dividing means (S78), optically coupled to said amplifying means, for dividing said amplified delayed signal (L72) into an output signal (L76) representing said square wave electromagnetic signal (So), and into a divided amplified delayed signal (L78) having, during first periods T, an amplitude equal to said input signal (Si) but delayed 180 degrees out of phase with said input signal (Si), and during alternate periods T, a zero amplitude;
- said dividing means (S78) being optically coupled to said combining means (OM3) whereby said divided amplified delayed signal (L78) combines by destructive interference with said input signal (Si) to produce, during said first periods T, a zero amplitude combined signal (L70), and during said alternate periods T, a combined signal (L70) having an amplitude equal to said input signal (Si).
- 2. An interferometric modulator as in claim 1 wherein said dividing means includes a first beamsplitter (S78) to provide an output signal representing said square wave electromagnetic signal.
- 3. An interferometric modulator as in claim 1 wherein said combining means for combining said input signal and said divided amplified delayed signal includes a first one-way mirror.
- 4. An interferometric modulator as in claim 1 wherein said amplifying means for producing an amplified delayed signal includes means (LS) for providing a second sinusoidal electromagnetic carrier input signal (Sj).
- 5. An interferometric modulator as in claim 4 wherein said means for providing a second sinusoidal electromagnetic carrier input signal is independent of said means for providing a first sinusoidal electromagnetic carrier input signal.
- 6. An interferometric modulator as in claim 4 wherein said means for providing a second sinusoidal electromagnetic carrier input signal includes means for dividing off a portion of said first sinusoidal electromagnetic carrier input signal.
- 7. An interferometric modulator as in claim 4 wherein said amplifying means for producing an amplified delayed signal includes an optically sensitive piezoelectric crystal.
- 8. An interferometric modulator as in claim 7 including a mirror attached to said crystal and wherein said crystal is responsive to said delayed combined signal for moving said mirror.
- 9. An interferometric modulator as in claim 8 wherein said amplifying means includes a second beamsplitter (S76) for receiving said second sinusoidal electromagnetic carrier input signal (Sj) and wherein movement of said mirror in response to a delayed combined signal of zero amplitude causes said second input signal (Sj) to combine destructively at said second beamsplitter (S76) to produce an amplified delayed signal (L72) of zero amplitude.
- 10. An interferometric modulator as in claim 8 wherein said amplifying means includes a second beamsplitter (S76) for receiving said second sinusoidal electromagnetic carrier input signal (Sj) and wherein said second input signal (Sj) has a greater amplitude than said first input signal (Si) and wherein movement of said mirror in response to a delayed combined signal of non-zero amplitude causes said second input signal (Sj) to combine with itself constructively at said second beamsplitter (S76) to produce an amplified delayed signal (L72) having an amplitude greater than said first input signal (Si).
- 11. An interferometric modulator as in claim 10 wherein said amplified delayed signal is approximately twice the amplitude of said first input signal.
- 12. An interferometric modulator as in claim 11 wherein said first beamsplitter (S78) of said dividing means divides said amplified delayed signal into an output signal representing said square wave electromagnetic signal (So) and a divided amplified delayed signal that is approximately the same amplitude as said first input signal (Si).
- 13. An interferometric modulator as in claim 12 including an amplitude regulating means (120) optically coupled to said first beamsplitter (S78) for regulating the amplitude of said divided amplified delayed signal.
- 14. An interferometric modulator as in claim 13 wherein said amplitude regulating means (120) includes a third beamsplitter (S80) for splitting said divided amplified delayed signal into a transmitted portion and a reflected portion and two mirrors (M104,M106) for reflecting back to said third beamsplitter said transmitted and reflected portions for recombination at said third beamsplitter.
- 15. An interferometric modulator as in claim 14 including means (P3,P4) for controlling the positions of said two mirrors for regulating a final amplitude of said divided amplified delayed signal.
- 16. An interferometric modulator as in claim 15 wherein said means for controlling includes at least one piezoelectric crystal.
- 17. An interferometric modulator as in claim 1 wherein said delay means for delaying said combined signal (L70) includes means (M54,M56) for reflecting said combined signal along a combined signal optical delay path.
- 18. An interferometric modulator as in claim 17 including means (P1) for moving said reflecting means to adjust the frequency of said square wave electromagnetic signal (So).
- 19. An interferometric modulator as in claim 18 wherein said moving means includes a piezoelectric crystal.
- 20. An interferometric modulator as in claim 19 wherein said reflecting means includes two mirrors mounted on a movable structure.
- 21. An interferometric modulator for producing a square wave electromagnetic signal (So) through modulation of a sinusoidal electromagnetic carrier signal (Si) comprising:
- means for providing a sinusoidal electromagnetic carrier input signal (Si);
- first dividing means (S70), optically coupled to said input signal providing means (Si), for dividing said input signal into first (L51) and second (L52) signal portions for travel along first and second independent light paths, respectively;
- said first light path including a first delay means (CM2), optically coupled to said first dividing means for delaying said first signal portion to produce a delayed first signal portion (L58);
- said second light path including a second dividing means (S72) for further dividing said second signal portion into a divided second signal portion (L54), and a second delay means (CM1), optically coupled to said second dividing means, for delaying said divided second signal portion, and an amplifying means (A1), optically coupled to said second delay means, for producing an amplified delayed divided second signal portion (L57);
- a third dividing means (S74), optically coupled to said first dividing means (S70), for dividing said first signal portion (L51) into a third signal portion (L64) for travel along a third independent light path;
- first means (OM2) for combining said delayed first signal portion (L58) and said amplified delayed divided second signal portion (L57) from said first and second light paths to interfere constructively for a time period T/2 and then alternately destructively for a time period T/2 to produce an alternating phase signal (L56);
- second means (OM1) for combining said alternating phase signal (L56) with said third signal portion (L64) from said third light path to produce said square wave electromagnetic signal (So) having a cycle time T.
- 22. An interferometric modulator as in claim 21 wherein said first delay means for delaying said first signal portion includes a compound mirror.
- 23. An interferometric modulator as in claim 22 wherein said second delay means for delaying said divided second signal portion includes a compound mirror.
- 24. An interferometric modulator as in claim 22 wherein said second delay means for delaying said divided second signal portion includes two mirrors.
- 25. An interferometric modulator as in claim 21 wherein said first dividing means includes at least one beamsplitter.
- 26. An interferometric modulator as in claim 21 wherein said first means for combining includes a one-way mirror.
- 27. An interferometric modulator for regulating the amplitude of a sinusoidal electromagnetic signal to a reduced value comprising:
- a beamsplitter for splitting said electromagnetic signal into a transmitted portion and a reflected portion;
- a first reflecting means for reflecting back to said beamsplitter said transmitted portion;
- a second reflecting means for reflecting back to said beamsplitter said reflected portion; and
- including means for moving said first reflecting means relative to said beamsplitter to introduce an optical impedance to produce a reduced amplitude regulated electromagnetic signal when said transmitted portion and reflected portion are recombined at said beamsplitter.
- 28. An interferometric modulator as in claim 27 wherein said means for moving includes a piezoelectric crystal.
- 29. An interferometric modulator as in claim 27 further including means for moving said second reflecting means relative to said beamsplitter.
- 30. An interferometric modulator as in claim 27 wherein said first and second reflecting means each include a mirror.
- 31. An interferometric modulator for amplifying an electromagnetic signal (Si) comprising:
- means for providing a first electromagnetic input signal (Si);
- an optically sensitive piezoelectric crystal (OP1) optically coupled to said input signal providing means (Si) and a mirror (M100) attached to said crystal, said crystal being responsive to said first input signal for moving said mirror in proportion to the amplitude of said first input signal (Si);
- means for providing a second electromagnetic input signal (Sj) having an amplitude greater than said first input signal;
- a beamsplitter (S76) for receiving said greater amplitude second input signal; and wherein
- said mirror is optically aligned with said beamsplitter such that when said first input signal has a zero amplitude said mirror is positioned to cause said second input signal to combine with itself destructively at said beamsplitter (S76) to produce a zero output, and when said first input signal has a non-zero amplitude, said mirror is moved to cause said second input signal to combine with itself constructively at said beamsplitter (S76) to produce an output signal having a greater amplitude than said first input signal.
- 32. An interferometric modulator as in claim 31 further comprising a second mirror optically aligned with said beamsplitter.
- 33. An interferometric modulator as in claim 32 further comprising a second piezoelectric attached to said second mirror to enable calibration of said output signal.
- 34. An interferometric modulator for amplifying an electromagnetic signal (Si) comprising:
- means for providing a first electromagnetic input signal (Si);
- an optically sensitive piezoelectric crystal (OP1) optically coupled to said input signal providing means (Si) and a mirror (M100) attached to said crystal, said crystal being responsive to said first input signal for moving said mirror in proportion to the amplitude of said first input signal (Si);
- means for providing a second electromagnetic input signal (Sj) having an amplitude greater than said first input signal;
- a beamsplitter (S76) for receiving said greater amplitude second input signal; and wherein
- said mirror is optically aligned with said beamsplitter such that when said first input signal has a zero amplitude said mirror is positioned to cause said second input signal to combine with itself constructively at said beamsplitter (S76) to produce a maximum magnitude output signal, and when said first input signal has a non-zero amplitude, said mirror is moved to cause said second input signal to combine with itself destructively at said beamsplitter (S76) to produce a proportionally lower amplitude output signal, and when said first input signal has a maximum amplitude, a zero output is produced.
- 35. An interferometric modulator for performing a logic function from one of the group including logical OR, AND, NAND, NOR, XNOR and XOR on an electromagnetic reference signal comprising:
- means for receiving an electromagnetic reference signal;
- means for receiving an electromagnetic comparator signal;
- a control signal source for modulating said electromagnetic comparator signal to be out of phase with said reference signal in accordance with a selected logic function, said means for modulating including a reflecting means;
- means for combining said modulated comparator signal with said reference signal to produce a logic function signal having one of two states.
- 36. An interferometric modulator as in claim 35 wherein said modulating means modulates said comparator signal to be out of phase by 90 degrees with said reference signal to produce a function signal that is a logical OR of said comparator signal and said reference signal.
- 37. An interferometric modulator as in claim 35 wherein said modulating means modulates said comparator signal to be out of phase by 180 degrees with said reference signal to produce a function signal that is a logical XOR of said comparator signal and said reference signal.
- 38. An interferometric modulator as in claim 35 wherein said reflecting means comprises a mirror.
- 39. An interferometric modulator as in claim 35 wherein said modulating means includes a piezoelectric crystal.
- 40. An interferometric modulator as in claim 35 wherein said means for receiving said comparator signal includes a one-way mirror.
- 41. An interferometric modulator as in claim 35 wherein said means for receiving said reference signal includes a first one-way mirror and said means for combining includes said first one-way mirror.
- 42. An interferometric modulator as in claim 36 further comprising a negating means for receiving said OR function signal and for producing a resultant function signal that is a logical NOR of said comparator signal and said reference signal.
- 43. An interferometric modulator as in claim 42 wherein said negating means includes a beamsplitting means for receiving and combining said OR function signal with a negating signal that is 180 degrees out of phase with said OR function signal.
- 44. An interferometric modulator as in claim 37 further comprising a negating means for receiving said XOR function signal and for producing a resultant function signal that is a logical XNOR of said comparator signal and said reference signal.
- 45. An interferometric modulator as in claim 44 wherein said negating means includes a beamsplitting means for receiving and combining said XOR function signal with a negating signal that is 180 degrees out of phase with said XOR function signal.
Parent Case Info
This application is a continuation-in-part of pending U.S. application Ser. No. 07/780,786 filed Oct. 23, 1991, now U.S. Pat. No. 5,315,370.
US Referenced Citations (4)
Continuation in Parts (1)
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Number |
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Parent |
780786 |
Oct 1991 |
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