IP Library Granted Patent US 12699304
Granted Patent B2
US 12699304 · App. 18/688,451 · Granted Aug 4, 2026

Wavelength conversion device

Inventors: In Ho Bae (Daejeon, KR); Dong Hoon Lee (Sejong, KR)
Assignee: KOREA RESEARCH INSTITUTE OF STANDARDS AND SCIENCE
G02F1/365G02F1/35G02F1/3548G02F1/355G02F1/3551G02F1/3553G02F1/3558G02F1/37
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Quick Facts
Patent No.
US 12699304
App. No.
18/688,451
Granted
Aug 4, 2026
Kind
B2
Abstract

A wavelength conversion device includes a nonlinear optical crystal, a guide light source configured to provide a guide light traveling in a first direction within the nonlinear optical crystal such that a thermal waveguide penetrating the nonlinear optical crystal is formed, a signal light source configured to provide a signal light having a first wavelength (λ1) and traveling in a second direction opposite to the first direction through the thermal waveguide, and a pump light source configured to provide a pump light having a second wavelength (λ2) and traveling in the second direction through the thermal waveguide, wherein an output light including a wavelength component corresponding to a sum of energies of the first wavelength (λ1) and the second wavelength (λ2) is provided from the thermal waveguide.

Claims (40)

1 . A wavelength conversion device comprising:

a nonlinear optical crystal;

a guide light source configured to provide a guide light traveling in a first direction within the nonlinear optical crystal such that a thermal waveguide penetrating the nonlinear optical crystal is formed;

a signal light source configured to provide a signal light having a first wavelength (λ1) and traveling in a second direction opposite to the first direction through the thermal waveguide; and

a pump light source configured to provide a pump light having a second wavelength (λ2) and traveling in the second direction through the thermal waveguide, wherein an output light including a wavelength component corresponding to a sum of energies of the first wavelength (λ1) and the second wavelength (λ2) is provided from the thermal waveguide.

2 . The wavelength conversion device of claim 1 , wherein the nonlinear optical crystal is a periodically poled lithium niobate (PPLN)-based material, and

a wavelength of the guide light is 532 nm.

3 . The wavelength conversion device of claim 1 , wherein the nonlinear optical crystal has different periods depending on a position of the nonlinear optical crystal, and

the wavelength of the output light corresponds to a period, of the different periods depending on the position of the nonlinear optical crystal, formed in the thermal wavequide.

4 . The wavelength conversion device of claim 3 , further comprising a position adjusting unit configured to control the position of the nonlinear optical crystal,

wherein the wavelength of the output light changes depending on the position of the nonlinear optical crystal, which is controlled by the position adjusting unit.

5 . The wavelength conversion device of claim 1 , wherein the nonlinear optical crystal includes any one of a KTP-based material, a KDP-based material, an ADP-based material, a BBO-based material, a KTA-based material, a GaSe-based material, a GaAs-based material, and a GAP-based material.

6 . The wavelength conversion device of claim 5 , wherein a wavelength of the guide light of the nonlinear optical crystal made of the KTP-based material is 532 nm, a wavelength of the guide light of the nonlinear optical crystal made of the KDP-based material is 1.3 μm, a wavelength of the guide light of the nonlinear optical crystal made of the ADP-based material is 1.08 μm, a wavelength of the guide light of the nonlinear optical crystal made of the BBO-based material is 2.5 μm, a wavelength of the guide light of the nonlinear optical crystal made of the KTA-based material is 5 μm, and a wavelength of the guide light of the nonlinear optical crystal made of the GaSe-based material is 0.65 μm.

7 . The wavelength conversion device of claim 1 , wherein the output light output from the thermal waveguide includes a wavelength corresponding to a difference between the energies of the first wavelength (λ1) and the second wavelength (λ2).

8 . The wavelength conversion device of claim 1 , further comprising:

a guide optical system configured to adjust a spot size of a beam of the guide light provided by the guide light source;

a signal optical system configured to adjust a spot size of a beam of the signal light provided by the signal light source; and

a pump optical system configured to adjust a spot size of the pump light provided by the pump light source.

9 . The wavelength conversion device of claim 8 , wherein the spot size of the beam of the guide light, the spot size of the beam of the signal light, and the spot size of the pump light are adjusted to be equal to each other.

10 . The wavelength conversion device of claim 1 , further comprising an optical system configured to adjust spot sizes of the guide light, the pump light, and the signal light.

11 . A wavelength conversion device comprising:

a nonlinear optical crystal;

a guide light source configured to provide a guide light traveling in a first direction within the nonlinear optical crystal such that a thermal waveguide penetrating the nonlinear optical crystal is formed;

a signal light source configured to provide a signal light having a first wavelength (λ1) and traveling in the first direction through the thermal waveguide; and

a pump light source configured to provide a pump light having a second wavelength (λ2) and traveling in the first direction through the thermal waveguide,

wherein an output light including a wavelength component corresponding to a sum of energies of the first wavelength (λ1) and the second wavelength (λ2) is provided from the thermal waveguide.

12 . The wavelength conversion device of claim 11 , wherein the nonlinear optical crystal is a periodically poled lithium niobate (PPLN)-based material, and

a wavelength of the guide light is 532 nm.

13 . The wavelength conversion device of claim 11 , wherein the nonlinear optical crystal has different periods depending on a position of the nonlinear optical crystal, and the wavelength of the output light corresponds to a period, of the different periods depending on the position of the nonlinear optical crystal, formed in the thermal wavelength waveguide.

14 . The wavelength conversion device of claim 13 , further comprising a position adjusting unit configured to control the position of the nonlinear optical crystal,

wherein the wavelength of the output light changes depending on the position of the nonlinear optical crystal, which is controlled by the position adjusting unit.

15 . The wavelength conversion device of claim 11 , wherein the nonlinear optical crystal includes any one of a KTP-based material, a KDP-based material, an ADP-based material, a BBO-based material, a KTA-based material, a GaSe-based material, a GaAs-based material, and a GAP-based material.

16 . The wavelength conversion device of claim 15 , wherein a wavelength of the guide light of the nonlinear optical crystal made of the KTP-based material is 532 nm, a wavelength of the guide light of the nonlinear optical crystal made of the KDP-based material is 1.3 μm, a wavelength of the guide light of the nonlinear optical crystal made of the ADP-based material is 1.08 μm, a wavelength of the guide light of the nonlinear optical crystal made of the BBO-based material is 2.5 μm, a wavelength of the guide light of the nonlinear optical crystal made of the KTA-based material is 5 μm, and a wavelength of the guide light of the nonlinear optical crystal made of the GaSe-based material is 0.65 μm.

17 . The wavelength conversion device of claim 11 , wherein the output light output from the thermal waveguide includes a wavelength corresponding to a difference between the energies of the first wavelength (λ1) and the second wavelength (λ2).

18 . The wavelength conversion device of claim 11 , further comprising:

a guide optical system configured to adjust a spot size of a beam of the guide light provided by the guide light source;

a signal optical system configured to adjust a spot size of a beam of the signal light provided by the signal light source; and

a pump optical system configured to adjust a spot size of the pump light provided by the pump light source.

19 . The wavelength conversion device of claim 18 , wherein the spot size of the beam of the guide light, the spot size of the beam of the signal light, and the spot size of the pump light are adjusted to be equal to each other.

20 . The wavelength conversion device of claim 11 , further comprising an optical system configured to adjust spot sizes of the guide light, the pump light, and the signal light.