IP Library Granted Patent US 10,211,353
Granted Patent B2
US 10,211,353 · App. 12/102,664 · Granted Feb 19, 2019

Aligned bifacial solar modules

Inventors: Sergey Frolov (Murray Hill, NJ); Michael Cyrus (Summit, NJ); Allan James Bruce (Scotch Plains, NJ)
Assignee: SUNLIGHT PHOTONICS INC.
H01L31/043H01L31/042H01L31/0547Y02E10/52
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Quick Facts
Patent No.
US 10,211,353
App. No.
12/102,664
Granted
Feb 19, 2019
Kind
B2
Abstract

A photovoltaic device includes a plurality of photovoltaic cells disposed in an array in which each cell is adjacent to another cell. Each of the cells includes first and second photovoltaic modules. The first photovoltaic module of each cell is configured to convert a first part of light energy incident thereon into electrical energy and to reflect to the second photovoltaic module of an adjacent cell at least some of a remaining portion of light energy incident thereon. The second photovoltaic module of each cell is configured to convert into electrical energy the remaining portion of the light energy received from the first photovoltaic module of an adjacent cell.

Claims (15)

1. A photovoltaic device, comprising: a plurality of photovoltaic cells disposed in a first and second array in which each cell is adjacent to another cell in each array, each of the cells being a bifacial photovoltaic cell that includes first and second photovoltaic modules located on opposing surfaces of a common planar substrate;

said first photovoltaic module of each cell being configured to convert a first part of light energy incident thereon into electrical energy and to reflect to the second photovoltaic module of an adjacent cell at least some of a remaining portion of light energy incident thereon;

said second photovoltaic module of each cell being configured to convert into electrical energy the remaining portion of the light energy received from the first photovoltaic module of an adjacent cell, wherein the first part and the remaining portion of the light energy are spectrally different parts of the optical energy, wherein at least one of the first and second photovoltaic modules includes a semiconductor absorber layer and a reflecting conducting layer disposed on and in contact with the semiconductor absorber layer, the first photovoltaic modules having an absorber layer with a larger bandgap than an absorber layer in the second photovoltaic modules, wherein the first and second arrays are each linear and the second array is offset from the first array such that a portion of light reflected from the second photovoltaic modules of the photovoltaic cells in the first array are directly reflected to respective ones of the first photovoltaic modules of the photovoltaic cells in the second array.

2. The photovoltaic device of claim 1 wherein the first and second photovoltaic modules in at least one of the cells are monolithically integrated.

3. The photovoltaic device of claim 1 wherein at least 50% of the remaining portion of the light energy is specularly reflected to the second photovoltaic module of the adjacent cell.

4. The photovoltaic device of claim 1 wherein at least 90% of the remaining portion of the light energy is specularly reflected to the second photovoltaic module of the adjacent cell.

5. The photovoltaic device of claim 1 wherein all of the plurality of photovoltaic cells are identical to one another.

6. The photovoltaic device of claim 1 wherein all of the photovoltaic cells have surfaces parallel to one another.

7. The photovoltaic device of claim 1 wherein the reflecting conducting layer is located between the semiconductor absorber layer and the common planar substrate.

8. The photovoltaic device of claim 1 further comprising a foldable frame on which each of the plurality of photovoltaic cells are secured such that the photovoltaic cells are repositionable on the foldable frame for selectively orienting the photovoltaic cells with respect to a light source.

9. The photovoltaic device of claim 1 wherein each photovoltaic module in each respective one of the photovoltaic cells has a separate electrical output.

10. A photovoltaic device, comprising: a plurality of photovoltaic cells disposed in a first and second array in which each cell is adjacent to another cell in each array, each of the cells having a first absorbing surface and a second absorbing surface opposing the first absorbing surface, each of the cells being a bifacial photovoltaic cell that includes first and second photovoltaic modules located on opposing surfaces of a common planar substrate;

said first photovoltaic module of each cell being configured to convert a first part of light energy incident on the first absorbing surface of the respective cell into electrical energy and to reflect to the second photovoltaic module of an adjacent cell at least some of a remaining portion of light energy incident thereon;

said second photovoltaic module of each cell being configured to convert into electrical energy the remaining portion of the light energy received from the first photovoltaic module of an adjacent cell, said remaining portion of the light energy received from the first photovoltaic module of an adjacent cell being incident on the second absorbing surface of each respective cell, wherein the first part and the remaining portion of the light energy are spectrally different parts of the optical energy, wherein at least one of the first and second photovoltaic modules includes a semiconductor absorber layer and a reflecting conducting layer disposed on and in contact with the semiconductor absorber layer, the first photovoltaic modules having an absorber layer with a larger bandgap than an absorber layer in the second photovoltaic modules, wherein the first and second arrays are each linear and the second array is offset from the first array such that a portion of light reflected from the second photovoltaic modules of the photovoltaic cells in the first array are directly reflected to respective ones of the first photovoltaic modules of the photovoltaic cells in the second array.

11. The photovoltaic device of claim 10 wherein the reflecting conducting layer is located between the semiconductor absorber layer and the common planar substrate.

Assignments (10)
CHANGE OF NAME Recorded May 17, 2019
From: SUNLIGHT PHOTONICS INC.
To: SUNLIGHT AEROSPACE INC.
Reel/Frame 049217/0818 →
CORRECTIVE ASSIGNMENT TO CORRECT THE INCORRECT SERIAL NO. 13/856,592 PREVIOUSLY RECORDED AT REEL: 034961 FRAME: 0933. ASSIGNOR(S) HEREBY CONFIRMS THE RELEASE OF SECURITY INTEREST. Recorded Feb 26, 2015
From: VENEARTH FUND, LLC
To: SUNLIGHT PHOTONICS INC.
Reel/Frame 035110/0526 →
RELEASE OF SECURITY INTEREST Recorded Feb 13, 2015
From: VENEARTH FUND, LLC
To: SUNLIGHT PHOTONICS INC.
Reel/Frame 034961/0933 →
AMENDMENT NO. 5 TO PATENT AND TRADEMARK SECURITY AGREEMENT Recorded Jan 17, 2014
From: SUNLIGHT PHOTONICS INC.
To: VENEARTH FUND, LLC
Reel/Frame 032087/0659 →
AMENDMENT NO. 4 TO PATENT AND TRADEMARK SECURITY AGREEMENT Recorded Jul 29, 2013
From: SUNLIGHT PHOTONICS INC.
To: VENEARTH FUND, LLC
Reel/Frame 030918/0922 →
AMENDMENT NO. 3 TO PATENT AND TRADEMARK SECURITY AGREEMENT Recorded Feb 22, 2013
From: SUNLIGHT PHOTONICS INC.
To: VENEARTH FUND, LLC
Reel/Frame 029855/0507 →
SECURITY AGREEMENT Recorded Oct 22, 2010
From: SUNLIGHT PHOTONICS INC.
To: VENEARTH FUND, LLC
Reel/Frame 025184/0607 →
CHANGE OF NAME Recorded Oct 8, 2008
From: SUNLIGHT ACQUISITION, INC.
To: SUNLIGHT PHOTONICS INC.
Reel/Frame 021652/0432 →
BILL OF SALE AND ASSIGNMENT AGREEMENT Recorded Oct 7, 2008
From: SUNLIGHT PHOTONICS INC.
To: SUNLIGHT ACQUISITION, INC.
Reel/Frame 021644/0734 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 14, 2008
From: FROLOV, SERGEY; CYRUS, MICHAEL; BRUCE, ALLAN JAMES
To: SUNLIGHT PHOTONICS INC.
Reel/Frame 020801/0209 →
Continuity (1)
Related Publication 20090255567A1 · Oct 15, 2009