IP Library › Granted Patent US 12,080,818
Granted Patent B2
US 12,080,818 · App. 17/510,613 · Granted Sep 3, 2024

Photovoltaic glass pane and method of producing a photovoltaic glass pane

Inventors: Ilias Stathatos (Patras, GR); Nikolaos Kanopoulos (Salonika, GR); Theodoros Makris (Patras, GR); Ioannis Katsagounos (Kirras Fokidas, GR); Panagiotis Giannopoulos (Patras, GR); Georgios Tselepidis (Edessa, GR)
Assignee: BRITE HELLAS AE
H01L31/0488H01L31/054H01L31/18H02S40/20
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Quick Facts
Patent No.
US 12,080,818
App. No.
17/510,613
Granted
Sep 3, 2024
Kind
B2
Abstract

A photovoltaic glass pane includes a glass panel, and one or more photovoltaic cells arranged on or in the glass panel. Each of the one or more photovoltaic cells has a light receiving surface to be exposed to light from a light source and being comprised of a semiconducting material having a spectral response to the light. A spectral conversion layer is arranged between the light receiving surface and the light source and is configured to convert photons from the light source of a first energy into photons of a second energy. The spectral response to the photons of the second energy is higher than the spectral response to the photons of the first energy.

Claims (14)

1. A transparent photovoltaic glass pane, comprising:

a transparent glass panel;

one or more photovoltaic cells arranged on or in the transparent glass panel, each of the one or more photovoltaic cells having a light receiving surface to be exposed to light from a light source and being comprised of a semiconducting material having a spectral response to the light; and

a spectral conversion layer arranged between the light receiving surface and the light source and configured to convert photons from the light source of a first energy into photons of a second energy,

wherein the spectral response to the photons of the second energy is higher than the spectral response to the photons of the first energy, and

wherein the spectral conversion layer is a luminescent nano-coating printed on top of a surface of the transparent glass panel that faces the light source, said coating being printed by inkjet printing of an ink on top of said surface of the transparent glass panel, wherein the ink comprises a europium salt and a diketone compound in an inorganic polymer matrix of a silane derivative, wherein the inorganic polymer matrix comprises (aminopropyl)triethoxysilane and 3-(triethoxysilyl)propyl isocyanate hosting a europium-thenoyl trifluoroacetone complex.

2. The transparent photovoltaic glass pane according to claim 1 , wherein the spectral conversion layer is a luminescent down-shifting layer configured to convert the photons of the first energy into the photons of the second energy, wherein the first energy is higher than the second energy.

3. The transparent photovoltaic glass pane according to claim 2 , wherein the photons of the first energy are photons having wavelengths in the UV part of the light spectrum and wherein the photons of the second energy are photons having wavelengths in the visible part of the light spectrum.

4. The transparent photovoltaic glass pane according to claim 1 , wherein the spectral conversion layer is arranged across the whole surface of the glass panel.

5. A method of manufacturing a transparent photovoltaic glass pane, comprising;

providing a transparent glass panel;

arranging one or more photovoltaic cells on or in the transparent glass panel, each of the one or more photovoltaic cells having a light receiving surface to be exposed to light from a light source and being comprised of a semiconducting material having a spectral response to the light; and

arranging a spectral conversion layer between the light receiving surface and the light source which is configured to convert photons from the light source of a first energy into photons of a second energy, wherein the spectral response to the photons of the second energy is higher than the spectral response to the photons of the first energy,

wherein the step of arranging the spectral conversion layer between the light receiving surface and the light source comprises printing a luminescent nano-coating on the surface of the transparent glass panel that faces the light source by inkjet printing of an ink on top of said surface of the transparent glass panel, wherein the ink comprises a europium salt, and a diketone compound in an inorganic polymer matrix of a silane derivative, wherein the inorganic polymer matrix comprises (aminopropyl)triethoxysilane and 3-(triethoxysilyl)propyl isocyanate hosting a europium-thenoyl trifluoroacetone complex.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 9, 2021
From: STATHATOS, ILIAS; KANAPOULOS, NIKOLAOS; MAKRIS, THEODOROS; KATSAGOUNOS, IOANNIS; GIANNOPOULOS, PANAGIOTIS; TSELEPIDIS, GEORGIOS
To: BRITE HELLAS AE
Reel/Frame 058343/0295 →
Priority Claims (2)
NL 2027662 · Feb 26, 2021 · national
EP 21199432 · Sep 28, 2021 · regional
Continuity (1)
Related Publication 20220278244A1 · Sep 1, 2022