IP Library Granted Patent US 9,190,555
Granted Patent B2
US 9,190,555 · App. 14/471,887 · Granted Nov 17, 2015

Polycrystalline CdTe thin film semiconductor photovoltaic cell structures for use in solar electricity generation

Inventor: James David Garnett (Simi Valley, CA)
Assignee: URIEL SOLAR, INC.
H01L31/1828H01L31/0296H01L31/02966H01L31/0392H01L31/03925H01L31/073H01L31/078H01L31/0725H01L31/1832H01L31/1836Y02E10/543
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Quick Facts
Patent No.
US 9,190,555
App. No.
14/471,887
Granted
Nov 17, 2015
Kind
B2
Abstract

Solar cell structures formed using molecular beam epitaxy (MBE) that can achieve improved power efficiencies in relation to prior art thin film solar cell structures are provided. A reverse p-n junction solar cell device and methods for forming the reverse p-n junction solar cell device using MBE are described. A variety of n-p junction and reverse p-n junction solar cell devices and related methods of manufacturing are provided. N-intrinsic-p junction and reverse p-intrinsic-n junction solar cell devices are also described.

Claims (44)

1. A method for forming a photovoltaic device, comprising:

forming a first layer over a substrate, the first layer comprising tellurium (Te) and zinc (Zn) and not containing cadmium (Cd);

forming a second layer over the first layer, the second layer comprising Cd and Te; and

forming a third layer over the second layer, the third layer comprising Cd, Zn and Te.

2. The method of claim 1 , further comprising forming a layer comprising Zn and Te over the substrate before forming the first layer.

3. The method of claim 1 , further comprising forming an other layer over the third layer, the other layer comprising Cd, Zn and Te.

4. The method of claim 1 , wherein the first layer is chemically doped n-type, the second layer is chemically doped n-type, and the third layer is chemically doped p-type.

5. The method of claim 1 , wherein the first layer is chemically doped p-type, the second layer is chemically doped p-type, and the third layer is chemically doped n-type.

6. A method for forming a photovoltaic device, comprising:

forming a low ohmic ZnTe:N++ contact layer over a superstrate;

forming a p-type CdTe layer over the low ohmic ZnTe:N++ layer;

forming an n-type, compositionally graded, CdZnTe layer over the p-type CdTe to form a p-n heterojunction; and

forming a low ohmic CdZnTe:In++ contact layer over the p-n heterojunction.

7. The method of claim 6 , further comprising forming a ZnTe buffer layer over the superstrate before forming the ZnTe:N++ contact layer.

8. A method for forming a photovoltaic device, comprising:

forming a low ohmic ZnTe:N++ contact layer over a superstrate;

forming an intrinsic CdTe (i-CdTe) layer over the low ohmic ZnTe:N++ layer; and

forming a low ohmic CdZnTe:In++ contact layer over the i-CdTe layer.

9. The method of claim 8 , further comprising forming a ZnTe buffer layer over the superstrate before forming the ZnTe:N++ contact layer.

10. A method for forming a high performance single junction photovoltaic device, comprising:

forming a low ohmic CdTe:In++ contact layer over a superstrate;

forming an n-type CdTe layer over the low ohmic CdTe:In++ layer;

forming a p-type, compositionally graded, CdZnTe layer over the n-type CdTe to form a p-n heterojunction; and

forming a low ohmic CdZnTe:As++ contact layer over the p-n heterojunction.

11. The method of claim 10 , further comprising forming a ZnTe buffer layer over the superstrate before forming the CdTe:In++ contact layer.

12. A method for forming a photovoltaic device, comprising

forming an n-type layer having Cd and Te;

forming an intrinsic CdTe layer over the n-type layer; and

forming a p-type layer having Te and one or more of Cd and Zn over the intrinsic CdTe layer.

13. The method of claim 12 , wherein the photovoltaic device comprises a superstrate below the n-type layer.

14. The method of claim 12 , wherein the photovoltaic device comprises a superstrate above the p-type layer.

15. A method for forming a photovoltaic device, comprising:

forming a first layer over a substrate that does not contain CdTe, the first layer comprising cadmium (Cd) and tellurium (Te), wherein the substrate is amorphous;

forming a second layer over the first layer, the second layer comprising Cd, Zn and Te; and

forming a third layer over the second layer, the third layer comprising Te.

16. The method of claim 15 , wherein the first layer is chemically doped n-type, the second layer is chemically doped p-type, and the third layer is chemically doped p-type.

17. The method of claim 15 , wherein the third layer does not contain Cd.

18. A method for forming a photovoltaic device, comprising:

forming a first layer over a substrate, the first layer comprising tellurium (Te) and cadmium (Cd), wherein the first layer does not contain zinc (Zn), wherein the substrate is amorphous;

forming a second layer over the first layer, the second layer comprising Cd, Zn and Te; and

forming a third layer over the second layer, the third layer comprising Te.

19. The method of claim 18 , wherein the substrate does not contain CdTe.

20. The method of claim 18 , wherein the first layer is chemically doped n-type, the second layer is chemically doped p-type, and the third layer is chemically doped p-type.

21. The method of claim 18 , wherein the third layer does not contain Cd.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 17, 2017
From: DINGUS, PETER
To: URIEL SOLAR, INC.
Reel/Frame 044166/0046 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 5, 2014
From: GARNETT, JAMES DAVID
To: URIEL SOLAR, INC.
Reel/Frame 033677/0769 →
Continuity (7)
Continuation 14054732 · Oct 15, 2013
Continuation 13628016 · Sep 26, 2012
Continuation 12505391 · Jul 17, 2009
Provisional Application 61081625 · Jul 17, 2008
Provisional Application 61082759 · Jul 22, 2008
Provisional Application 61186788 · Jun 12, 2009
Related Publication 20140370647A1 · Dec 18, 2014