IP Library Granted Patent US 8,993,881
Granted Patent B2
US 8,993,881 · App. 13/965,903 · Granted Mar 31, 2015

Architectures and criteria for the design of high efficiency organic photovoltaic cells

Inventors: Barry Rand (Princeton, NJ); Stephen R. Forrest (Ann Arbor, MI); Diane Pendergrast Burk (Middleton, DE)
Assignees: The Trustees of Princeton University; The Regents of the University of Michigan
H01L51/4246B82Y10/00H01L27/302H01L51/4253H01L51/0046H01L51/0071H01L51/0072H01L51/0078Y02E10/549
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Quick Facts
Patent No.
US 8,993,881
App. No.
13/965,903
Granted
Mar 31, 2015
Kind
B2
Abstract

A method for fabricating an organic photovoltaic cell includes providing a first electrode; depositing a series of at least seven layers onto the first electrode, each layer consisting essentially of a different organic semiconductor material, the organic semiconductor material of at least an intermediate layer of the sequence being a photoconductive material; and depositing a second electrode onto the sequence of at least seven layers. One of the first electrode and the second electrode is an anode and the other is a cathode. The organic semiconductor materials of the series of at least seven layers are arranged to provide a sequence of decreasing lowest unoccupied molecular orbitals (LUMOs) and a sequence of decreasing highest occupied molecular orbitals (HOMOs) across the series from the anode to the cathode.

Claims (15)

1. A method comprising:

providing a first electrode;

depositing a series of at least seven layers onto the first electrode, each layer consisting essentially of a different organic semiconductor material, the organic semiconductor material of at least an intermediate layer of the sequence being a photoconductive material; and

depositing a second electrode onto the sequence of at least seven layers,

wherein one of the first electrode and the second electrode is an anode and the other is a cathode, and

wherein the organic semiconductor materials of the series of at least seven layers are arranged to provide a sequence of decreasing lowest unoccupied molecular orbitals (LUMOs) and a sequence of decreasing highest occupied molecular orbitals (HOMOs) across the series from the anode to the cathode.

2. The method of claim 1 , wherein an energy difference between a HOMO of the organic semiconductor material of the layer of the series of at least seven layers closest to the anode and a LUMO of the organic semiconductor material of the layer of the series of at least seven layers closest to the cathode is between 0.5 eV and 3.0 eV.

3. The method of claim 1 , wherein the energy difference between the HOMO of the organic semiconductor material of the layer of the series of at least seven layers closest to the anode and the LUMO of the organic semiconductor material of the layer of the series of at least seven layers closest to the cathode is at least 1 eV.

4. A method comprising:

providing a series of layers of different organic semiconductor materials between an anode and a cathode, the series of layers consisting essentially of a different organic semiconductor material, the organic semiconductor material of at least an intermediate layer of the series of layers being a photoconductive material, the series of layers are arranged to provide a sequence of decreasing lowest unoccupied molecular orbitals and a sequence of decreasing highest occupied molecular orbitals across the series from the anode to the cathode, whereby the arrangement simulates a built-in field at thermal equilibrium between the anode and the cathode;

generating an exciton by photoabsorption within the intermediate layer of the series of layers;

spatially dissociating the exciton generated within an intermediate layer, the simulated built-in field attracting a bound electron of the exciton from the intermediate layer into one or more of the series layers toward the cathode, while attracting a bound hole of the exciton from the intermediate layer into one or more of the plurality of the organic semiconductor layers toward the anode; and

applying photocurrent from the spatially dissociated exciton to a load electrically connected from the anode to the cathode.

5. The method of claim 4 , wherein an open-circuit voltage across the anode and the cathode is at between 0.5 and 3.0 V.

6. The method of claim 5 , wherein the open-circuit voltage across the anode and the cathode is at least 1.0 V.

Assignments (3)
CONFIRMATORY LICENSE Recorded Aug 19, 2020
From: UNIVERSITY OF MICHIGAN
To: UNITED STATES DEPARTMENT OF ENERGY
Reel/Frame 053538/0321 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 13, 2013
From: FORREST, STEPHEN R.
To: THE REGENTS OF THE UNIVERSITY OF MICHIGAN
Reel/Frame 031001/0044 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 13, 2013
From: RAND, BARRY; BURK, DIANE PENDERGRAST
To: THE TRUSTEES OF PRINCETON UNIVERSITY
Reel/Frame 031001/0102 →
Continuity (2)
Division 11486163 · Jul 14, 2006
Related Publication 20140000714A1 · Jan 2, 2014