IP Library Granted Patent US 9,075,250
Granted Patent B2
US 9,075,250 · App. 13/560,644 · Granted Jul 7, 2015

Delayed optical logic gates for boolean algebra

Inventor: Byoung-Seung Ham (Incheon, KR)
Assignees: INHA INDUSTRY PARTNERSHIP INSTITUTE; GWANGJU INSTITUTE OF SCIENCE AND TECHNOLOGY
G02F3/00G02F1/3536
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Quick Facts
Patent No.
US 9,075,250
App. No.
13/560,644
Granted
Jul 7, 2015
Kind
B2
Abstract

A system, method, and apparatus for delayed optical logic gates based on slow light and enhanced nondegenerate four-wave mixing processes, where a single or multiple delayed optical routers are utilized for dark resonance interactions in which two-color lasers interact with a three-level nonlinear optical medium comprised of two ground states and one excited state through the nondegenerate four-wave mixing processes. The delayed optical logic mechanism is based on combination of single or multiple dark resonance-induced two-photon coherence conversion via slow light phenomenon. The two-photon coherence induced on the ground states is optically detected via nondegenerate four-wave mixing processes. The nondegenerate four-wave mixing generation is enhanced owing to dark resonance or electromagnetically induced transparency. The delayed optical logic gates have potential to keep up ultra-high-bandwidth optical information processing using relatively slow electronic processing devices.

Claims (20)

1. A method for operating a logical gate using at least one or more delayed optical routers comprising a nonlinear optical medium, wherein the nonlinear optical medium comprises two closely spaced ground states such that a transition between the two ground states is dipole forbidden, and an excited state such that two-photon transitions between the two ground states via the excited state are allowed, the method comprising:

using at least one of a slow light (S) or a non-degenerate four-wave mixing signal (D) as a result of Boolean algebra,

wherein the slow light (S) is appeared by applying, to the nonlinear optical medium, a first laser beam (P) with a first frequency corresponding to a first transition between a first ground state of the two ground states and the excited state and a second laser beam (C) with a second frequency corresponding to a second transition between a second ground state of the two ground states and the excited state; and

the non-degenerate four-wave mixing signal (D) is appeared by applying, to the nonlinear optical medium, the first laser beam (P) with the first frequency, the second laser beam (C) with the second frequency and a third laser beam (A) with a third frequency corresponding to the second transition,

wherein two parallel delayed optical routers are used for a Boolean OR algebra,

two third laser beams (As), which are respectively input to the two parallel delayed optical routers, correspond to inputs of the Boolean OR algebra, and

each of two signals (Ds), which are respectively produced by the two parallel delayed optical routers, corresponds to a result of the Boolean OR algebra.

2. An apparatus for an optical logic gate, comprising:

at least one or more delayed optical routers including at least one nonlinear optical medium, wherein the nonlinear optical medium comprises two closely spaced ground states such that a transition between the two ground states is dipole forbidden, and an excited state such that two-photon transitions between the two ground states via the excited state are allowed;

at least one port for outputting a result of the optical logic gate,

wherein the result is represented as at least one or more of a slow light (S) or a non-degenerate four-wave mixing signal (D),

the slow light (S) is appeared by applying, to the nonlinear optical medium, a first laser beam (P) with a first frequency corresponding to a first transition between a first ground state of the two ground states and the excited state and a second laser beam (C) with a second frequency corresponding to a second transition between a second ground state of the two ground states and the excited state; and

the non-degenerate four-wave mixing signal (D) is appeared by applying, to the nonlinear optical medium, the first laser beam (P) with the first frequency, the second laser beam (C) with the second frequency and a third laser beam (A) with a third frequency corresponding to the second transition,

wherein two parallel delayed optical routers are used for a Boolean OR algebra,

two third laser beams (As), which are respectively input to the two delayed optical routers, correspond to inputs of the Boolean OR algebra, and

each of two signals (Ds), which are respectively produced by the two delayed optical routers, corresponds to a result of the Boolean OR algebra.

3. The apparatus of claim 2 , wherein said nonlinear optical medium is a solid.

4. The apparatus of claim 2 , wherein said nonlinear optical medium is a multiply coupled semiconductor.

5. The apparatus of claim 4 , in which said two ground states and said excited state are selected in the conduction band of said multiply coupled semiconductor.

6. The apparatus of claim 2 , wherein said nonlinear optical medium is connected to optical waveguides, free space, or plasmon waveguides to guide at least one or more of said first, second and third laser beams (P, C and A), said slow light (S), and said signal (D).

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 27, 2014
From: INHA INDUSTRY PARTNERSHIP INSTITUTE
To: INHA INDUSTRY PARTNERSHIP INSTITUTE; GWANGJU INSTITUTE OF SCIENCE AND TECHNOLOGY
Reel/Frame 032051/0268 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 30, 2012
From: HAM, BYOUNG-SEUNG
To: INHA-INDUSTRY PARTNERSHIP INSTITUTE
Reel/Frame 028677/0703 →
Priority Claims (3)
KR 10-2007-0126380 · Dec 6, 2007 · national
KR 10-2007-0126381 · Dec 6, 2007 · national
WO PCT/KR2007/006846 · Dec 26, 2007 · international
Continuity (3)
Division 13014344 · Jan 26, 2011
Division 12280923 · Aug 27, 2008
Related Publication 20120307327A1 · Dec 6, 2012