IP Library Granted Patent US 11,495,703
Granted Patent B2
US 11,495,703 · App. 17/035,398 · Granted Nov 8, 2022

Optical downshifting layer

Inventors: Juanita N. Kurtin (Hillsboro, OR); Steven M. Hughes (Salem, VA); Alex C. Mayer (Mill Valley, CA); Oun-Ho Park (San Jose, CA); Georgeta Masson (Lafayette, CA)
Assignee: OSRAM Opto Semiconductors GmbH
H01L31/055C09K11/02C09K11/565Y02E10/52Y02E10/542
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Quick Facts
Patent No.
US 11,495,703
App. No.
17/035,398
Granted
Nov 8, 2022
Kind
B2
Abstract

The light conversion efficiency of a solar cell is enhanced by using an optical downshifting layer in cooperation with a photovoltaic material. The optical downshifting layer converts photons having wavelengths in a supplemental light absorption spectrum into photons having a wavelength in the primary light absorption spectrum of the photovoltaic materiaL The cost effectiveness and efficiency of solar cells platforms can be increased by relaxing the range of the primary light absorption spectrum of the photovoltaic materiaL The optical downshifting layer can be applied as a low cost solution processed film composed of highly absorbing and emissive quantum dot heterostructure nanomaterial embedded in an inert matrix to improve the short wavelength response to the photovoltaic materiaL The enhanced efficiency provided by the optical downshifting layer permits advantageous modifications to the solar cell platform that enhances its efficiency as well.

Claims (14)

1. An optical downshifting layer, comprising:

a plurality of individually encapsulated non-spherical nanocrystals, each comprising a quantum dot heterostructure having a quantum dot core surrounded by a shell and individually encapsulated in a silica encapsulating material, wherein at least some of the plurality of individually encapsulated non-spherical nanocrystals comprise a quantum dot heterostructure having a quantum dot core surrounded by more than one shell; the plurality of individually encapsulated non-spherical nanocrystals absorbing incident photons in a first wavelength range of the electromagnetic spectrum shorter than or equal to 600 nm, and emitting photons in a second wavelength range of the electromagnetic spectrum having a wavelength greater than 600 nm, such that the optical downshifting layer transforms the incident photons in the first wavelength range into photons in the second wavelength range of the electromagnetic spectrum.

2. The optical downshifting layer of claim 1 , wherein the quantum dot heterostructure having a quantum dot core surrounded by a shell comprises a quantum dot heterostructures having a CdSe quantum dot core surrounded by a CdS shell.

3. The optical downshifting layer of claim 1 , wherein the quantum dot heterostructure having a quantum dot core surrounded by a shell comprises a quantum dot heterostructure having a quantum dot core surrounded by a rod-shaped shell.

4. The optical downshifting layer of claim 1 , wherein the plurality of individually encapsulated non-spherical nanocrystals, each comprising a quantum dot heterostructure, comprises a plurality of individually encapsulated non-spherical nanocrystals, each comprising a quantum dot heterostructure having a shape resembling a nanorod.

5. The optical downshifting layer of claim 1 , wherein the plurality of individually encapsulated non-spherical nanocrystals, each comprising a quantum dot heterostructure, comprises a plurality of individually encapsulated non-spherical nanocrystals, each comprising one of at least two types of an individually encapsulated quantum dot heterostructure.

6. The optical downshifting layer of claim 1 , wherein the plurality of individually encapsulated non-spherical nanocrystals absorbing incident photons in the first wavelength range of the electromagnetic spectrum comprise a plurality of individually encapsulated non-spherical nanocrystals absorbing incident photons in a wavelength range of 0.2 to 0.6 microns.

7. The optical downshifting layer of claim 1 , wherein the first wavelength range of the electromagnetic spectrum is substantially outside of the second wavelength range of the electromagnetic spectrum.

8. The optical downshifting layer of claim 1 , wherein a majority of the first wavelength range of the electromagnetic spectrum is outside of the second wavelength range of the electromagnetic spectrum.

9. The optical downshifting layer of claim 1 , wherein the first wavelength range of the electromagnetic spectrum is completely outside of the second wavelength range of the electromagnetic spectrum.

10. The optical downshifting layer of claim 1 , wherein the first wavelength range of the electromagnetic spectrum is separated from the second wavelength range of the electromagnetic spectrum such that the emitted photons in the second wavelength range of the electromagnetic spectrum are not substantially reabsorbed in the optical downshifting layer.

11. The optical downshifting layer of claim 1 , wherein the optical downshifting layer is transmissive to incident photons in the second wavelength range of the electromagnetic spectrum such that they pass through the optical downshifting layer.

12. The optical downshifting layer of claim 1 , wherein the plurality of individually encapsulated non-spherical nanocrystals are encapsulated in a polymer matrix material.

13. The optical downshifting layer of claim 1 , wherein the plurality of individually encapsulated non-spherical nanocrystals are homogeneously dispersed in a matrix media.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 2, 2020
From: KURTIN, JUANITA N.; HUGHES, STEVEN M.; MAYER, ALEX C.; PARK, OUN-HO; MASSON, GEORGETA
To: PACIFIC LIGHT TECHNOLOGIES CORP.
Reel/Frame 053958/0360 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 2, 2020
From: PACIFIC LIGHT TECHNOLOGIES CORP.
To: OSRAM OPTO SEMICONDUCTORS GMBH
Reel/Frame 053958/0390 →
Continuity (5)
Continuation 15712091 · Sep 21, 2017
Division 13536857 · Jun 28, 2012
Continuation 12836511 · Jul 14, 2010
Provisional Application 61225472 · Jul 14, 2009
Related Publication 20210242358A1 · Aug 5, 2021