IP Library › Granted Patent US 12,535,191
Granted Patent B2
US 12,535,191 · App. 18/158,207 · Granted Jan 27, 2026

LED module and lighting apparatus

Inventors: Sungwoo Choi (Suwon-si, KR); Seongmin Kim (Seongnam-si, KR); Jeongeun Yun (Hwaseong-si, KR); Chohui Kim (Hwaseong-si, KR); Seulgee Lee (Suwon-si, KR); Jeongrok Oh (Suwon-si, KR); Chulsoo Yoon (Hwaseong-si, KR)
Assignee: SAMSUNG ELECTRONICS CO., LTD.
F21K9/64H01L25/0753H10H20/8513F21Y2113/30F21Y2115/10
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Quick Facts
Patent No.
US 12,535,191
App. No.
18/158,207
Granted
Jan 27, 2026
Kind
B2
Abstract

A light emitting diode (LED) module that is configured to emit white light is provided. The LED module includes: a blue light emitting diode configured to emit blue light having a first peak wavelength of 420 nm to 465 nm; and a near-infrared wavelength conversion material that is configured to be excited by the blue light to emit additional light having a peak wavelength in a range of 740 nm to 900 nm, and further having a full width at half maximum (FWHM) of 120 nm or less. The near-infrared wavelength conversion material includes Ca(Al 12-x-y ,Ga y )O 19 :xCr 3+ (0≤x≤1, 0≤y≤6).

Claims (34)

1 . A light emitting diode (LED) module comprising:

a blue light emitting diode configured to emit blue light having a first peak wavelength of 420 nm to 465 nm; and

a near-infrared wavelength conversion material that is configured to be excited by the blue light to emit additional light having a peak wavelength in a range of 740 nm to 900 nm, and further having a full width at half maximum (FWHM) of 120 nm or less,

wherein the near-infrared wavelength conversion material comprises Ca(Al 12-x-y ,Ga y )O 19 :xCr 3+ (0≤x≤1, 0≤y≤6), and

wherein, in a spectrum of light emitted from the LED module, the light has a peak intensity in the range of 740 nm to 900 nm, and the peak intensity is greater than or equal to 4.5% of a peak intensity of the blue light.

2 . The LED module of claim 1 , wherein in a spectrum of light emitted from the LED module, an integrated light amount of a visible light wavelength band of 700 nm or less is 20% or less of an integrated light amount of an entirety of the spectrum.

3 . The LED module of claim 1 , wherein in a spectrum of light emitted from the LED module, wherein an integrated light amount of a visible light wavelength band of 700 nm or less is 10% or less of an integrated light amount of an entirety of the spectrum.

4 . The LED module of claim 1 , wherein the peak wavelength of the near-infrared wavelength conversion material is in a range of 750 nm to 850 nm.

5 . The LED module of claim 1 , wherein the near-infrared wavelength conversion material further comprises at least one phosphor selected from a group consisting of Lu 3 Al 5 O 12 :Ce 3+ , Cr 3+ , La 3 MgZrO 6 :Cr 3+ , LiInSi 2 O 6 :Cr 3+ , LiZnSnO:Cr 3+ , and ScBO 3 :Cr 3+ .

6 . The LED module of claim 1 , further comprising a colored light source configured to emit colored light in a visible light wavelength band.

7 . The LED module of claim 6 , wherein the colored light source comprises a first wavelength conversion material that is configured to be excited by the blue light to emit green light having a peak wavelength in a range of 520 nm to 560 nm.

8 . The LED module of claim 7 , wherein the first wavelength conversion material comprises at least one phosphor selected from a group consisting of (Ga,Gd,Y,Lu) 3 Al 5 O 12 :Ce 3+ , La 3 Si 6 N 11 :Ce 3+ , (Sr,Ca,Ba)Si 2 O 2 N 2 :Eu 2+ , (Sr,Ba) 2 SiO 4 :Eu 2+ , and β-SiAlON:Eu 2+ .

9 . The LED module of claim 6 , wherein the colored light source comprises a second wavelength conversion material that is configured to be excited by the blue light to emit red light having a peak wavelength in a range of 600 nm to 650 nm.

10 . The LED module of claim 9 , wherein the second wavelength conversion material comprises at least one phosphor selected from a group consisting of (Sr,Ca)AlSiN 3 :Eu 2+ , CaAlSiN 3 :Eu 2+ , and K x SiF y :Mn 4+ (2≤x≤3, 4≤y≤7).

11 . The LED module of claim 6 , wherein the colored light source comprises an LED configured to emit blue, yellow, green, orange, or red light.

12 . A light emitting diode (LED) module comprising:

a blue light emitting diode configured to emit blue light having a first peak wavelength of 420 nm to 465 nm;

at least one wavelength conversion material that is configured to convert a portion of the blue light into first light having a second peak wavelength in a visible light wavelength band; and

a near-infrared wavelength conversion material that is configured to be excited by the blue light to emit second light having a third peak wavelength in a range of 740 nm to 900 nm, and further having a full width at half maximum (FWHM) of 120 nm or less,

wherein the near-infrared wavelength conversion material comprises Ca(Al 12-x-y , Ga y )O 19 :xCr 3+ (0≤x≤1, 0≤y≤6), and

wherein the first light, second light, and another portion of the blue light combine to form colored light in the visible light wavelength band, and

wherein, in a spectrum of the colored light, the colored light has a peak intensity in the range of 740 nm to 900 nm, and the peak intensity is greater than or equal to 4.5% of a peak intensity of the blue light.

13 . The LED module of claim 12 , wherein the at least one wavelength conversion material comprises at least one from among a phosphor and a quantum dot.

14 . The LED module of claim 12 , wherein the at least one wavelength conversion material comprises a first wavelength conversion material that is configured to be excited by the blue light to emit the first light having a peak wavelength in a range of 520 nm to 560 nm.

15 . The LED module of claim 12 , wherein the at least one wavelength conversion material comprises a second wavelength conversion material that is configured to be excited by the blue light to emit second light having a peak wavelength in a range of 600 nm to 650 nm.

16 . A light emitting diode (LED) module comprising:

a blue light emitting diode configured to emit blue light having a first peak wavelength of 420 nm to 465 nm; and

a near-infrared wavelength conversion material that is configured to be excited by the blue light to emit additional light having a peak wavelength in a range of 740 nm to 900 nm, and further having a full width at half maximum (FWHM) of 120 nm or less,

wherein in a spectrum of light emitted from the LED module, wherein an integrated light amount of a visible light wavelength band of 700 nm or less is 20% or less of an integrated light amount of an entirety of the spectrum,

wherein the near-infrared wavelength conversion material comprises at least one phosphor selected from a group consisting of Ca(Al 12-x-y ,Ga y )O 19 :xCr 3+ (0≤x≤1, 0≤y≤6), Lu 3 Al 5 O 12 :Ce 3+ , Cr 3+ , La 3 MgZrO 6 :Cr 3+ , LiInSi 2 O 6 :Cr 3+ , LiZnSnO:Cr 3+ , and ScBO 3 :Cr 3+ , and

wherein, in the spectrum of the light emitted from the LED module, the light has a peak intensity in the range of 740 nm to 900 nm, and the peak intensity is greater than or equal to 4.5% of a peak intensity of the blue light.

17 . The LED module of claim 16 , wherein the peak wavelength of the near-infrared wavelength conversion material is in a range of 750 nm to 850 nm.

18 . The LED module of claim 16 , wherein the full width at half maximum (FWHM) of the near-infrared wavelength conversion material is 100 nm or less.

19 . The LED module of claim 16 , wherein the near-infrared wavelength conversion material further comprises Ca(Al 12-x-y ,Ga y )O 19 :xCr 3+ (0≤x≤1, 0≤y≤6).

Priority Claims (1)
KR 10-2020-0185083 · Dec 28, 2020 · national
Continuity (2)
Continuation 17533689 · Nov 23, 2021
Related Publication 20230160545A1 · May 25, 2023
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