IP Library Granted Patent US 8,284,586
Granted Patent B2
US 8,284,586 · App. 13/226,533 · Granted Oct 9, 2012

Electronic and optoelectronic devices with quantum dot films

Assignee: InVisage Technologies, Inc.
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Quick Facts
Patent No.
US 8,284,586
App. No.
13/226,533
Granted
Oct 9, 2012
Kind
B2
Abstract

Optical and optoelectronic devices and methods of making same. Under one aspect, an optical device includes an integrated circuit an array of conductive regions; and an optically sensitive material over at least a portion of the integrated circuit and in electrical communication with at least one conductive region of the array of conductive regions. Under another aspect, a method of forming a nanocrystalline film includes fabricating a plurality of nanocrystals having a plurality of first ligands attached to their outer surfaces; exchanging the first ligands for second ligands of different chemical composition than the first ligands; forming a film of the ligand-exchanged nanocrystals; removing the second ligands; and fusing the cores of adjacent nanocrystals in the film to form an electrical network of fused nanocrystals. Under another aspect, a film includes a network of fused nanocrystals, the nanocrystals having a core and an outer surface, wherein the core of at least a portion of the fused nanocrystals is in direct physical contact and electrical communication with the core of at least one adjacent fused nanocrystal, and wherein the film has substantially no defect states in the regions where the cores of the nanocrystals are fused.

Claims (34)

1. A device, comprising:

a film comprising a network of fused nanocrystals, the nanocrystals having a core and an outer surface, wherein the core of at least a portion of the fused nanocrystals is in direct physical contact and electrical communication with the core of at least one adjacent fused nanocrystal, wherein the film has substantially no defect states in the regions where the cores of the nanocrystals are fused, and wherein the film is substantially free of ligands attached to the outer surface of the fused nanocrystals; and

first and second electrodes in spaced relation and in electrical communication with first and second portions of the network of fused nanocrystals.

2. The device of claim 1 , wherein the outer surfaces include at least one defect state.

3. A device, comprising:

a film comprising a network of fused nanocrystals, the nanocrystals having a core and an outer surface, wherein the core of at least a portion of the fused nanocrystals is in direct physical contact and electrical communication with the core of at least one adjacent fused nanocrystal, and wherein the film has substantially no defect states in the regions where the cores of the nanocrystals are fused; and

first and second electrodes in spaced relation and in electrical communication with first and second portions of the network of fused nanocrystals, wherein the electrical network of fused nanocrystals provides a plurality of relatively low-resistance electrical paths from the first electrode to the second electrode.

4. The device of claim 3 , wherein the film has an electrical resistance of at least about 25 k-Ohm/square.

5. The device of claim 3 , wherein the electrical resistance of the film changes in response to irradiation by light.

6. A device, comprising:

a film comprising a network of fused nanocrystals, the nanocrystals having a core and an outer surface, wherein the core of at least a portion of the fused nanocrystals is in direct physical contact and electrical communication with the core of at least one adjacent fused nanocrystal, and wherein the film has substantially no defect states in the regions where the cores of the nanocrystals are fused; and

first and second electrodes in spaced relation and in electrical communication with first and second portions of the network of fused nanocrystals, wherein the electrical network of fused nanocrystals provides a plurality of electrical paths from the first electrode to the second electrode and wherein at least some of those electrical paths undergo a change in electrical resistance in response to incident light.

7. A device, comprising:

a film comprising a network of fused nanocrystals, the nanocrystals having a core and an outer surface, wherein the core of at least a portion of the fused nanocrystals is in direct physical contact and electrical communication with the core of at least one adjacent fused nanocrystal, wherein the film has substantially no defect states in the regions where the cores of the nanocrystals are fused, and wherein the film has a carrier mobility of between about 0.001 cm 2 /Vs and about 10 cm 2 /Vs; and

first and second electrodes in spaced relation and in electrical communication with first and second portions of the network of fused nanocrystals.

8. A device, comprising:

a film comprising a network of fused nanocrystals, the nanocrystals having a core and an outer surface, wherein the core of at least a portion of the fused nanocrystals is in direct physical contact and electrical communication with the core of at least one adjacent fused nanocrystal, wherein the film has substantially no defect states in the regions where the cores of the nanocrystals are fused, and wherein the film has a carrier mobility of between about 0.01 cm 2 /Vs and about 0.1 cm 2 /Vs; and

first and second electrodes in spaced relation and in electrical communication with first and second portions of the network of fused nanocrystals.

9. A device, comprising:

a film comprising a network of fused nanocrystals, the nanocrystals having a core and an outer surface, wherein the core of at least a portion of the fused nanocrystals is in direct physical contact and electrical communication with the core of at least one adjacent fused nanocrystal, wherein the film has substantially no defect states in the regions where the cores of the nanocrystals are fused, and wherein the fused nanocrystals comprise a plurality of a first type of fused nanocrystals and a plurality of a second type of fused nanocrystals; and

first and second electrodes in spaced relation and in electrical communication with first and second portions of the network of fused nanocrystals.

10. The device of claim 9 , wherein the core of substantially each of the first type of fused nanocrystals is in direct physical contact and electrical communication with the core of another of the first type of fused nanocrystals.

11. A device, comprising:

a film comprising a network of fused nanocrystals, the nanocrystals having a core and an outer surface, wherein the core of at least a portion of the fused nanocrystals is in direct physical contact and electrical communication with the core of at least one adjacent fused nanocrystal, wherein the film has substantially no defect states in the regions where the cores of the nanocrystals are fused, and wherein each fused nanocrystal is of a size and composition to absorb at least one of infrared radiation, x-ray radiation, ultraviolet radiation, and visible radiation; and

first and second electrodes in spaced relation and in electrical communication with first and second portions of the network of fused nanocrystals.

12. A device, comprising:

a film comprising a network of fused nanocrystals, the nanocrystals having a core and an outer surface, wherein the core of at least a portion of the fused nanocrystals is in direct physical contact and electrical communication with the core of at least one adjacent fused nanocrystal, and wherein the film has substantially no defect states in the regions where the cores of the nanocrystals are fused; and

first and second electrodes in spaced relation and in electrical communication with first and second portions of the network of fused nanocrystals, wherein the first and second electrodes are disposed on a substrate with the film therebetween and are substantially parallel to one another.

13. A device, comprising:

a film comprising a network of fused nanocrystals, the nanocrystals having a core and an outer surface, wherein the core of at least a portion of the fused nanocrystals is in direct physical contact and electrical communication with the core of at least one adjacent fused nanocrystal, and wherein the film has substantially no defect states in the regions where the cores of the nanocrystals are fused; and

first and second electrodes in spaced relation and in electrical communication with first and second portions of the network of fused nanocrystals, wherein the first and second electrodes are disposed on a substrate with the film therebetween and are interdigitated.

14. A device, comprising:

a film comprising a network of fused nanocrystals, the nanocrystals having a core and an outer surface, wherein the core of at least a portion of the fused nanocrystals is in direct physical contact and electrical communication with the core of at least one adjacent fused nanocrystal, and wherein the film has substantially no defect states in the regions where the cores of the nanocrystals are fused; and

first and second electrodes in spaced relation and in electrical communication with first and second portions of the network of fused nanocrystals, wherein the first and second electrodes are spaced by about 0.2 μm to about 2 μm from each other.

Assignments (11)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 13, 2017
From: SARGENT, EDWARD
To: INVISAGE TECHNOLOGIES, INC.
Reel/Frame 042700/0766 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 13, 2017
From: SARGENT, EDWARD HARTLEY; CLIFFORD, JASON PAUL; KONSTANTATOS, GERASIMOS; HOWARD, IAN; KLEM, ETHAN J.D.
To: UNIVERSITY OF TORONTO
Reel/Frame 042700/0773 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 13, 2017
From: UNIVERSITY OF TORONTO
To: SARGENT, EDWARD HARTLEY; CLIFFORD, JASON PAUL; KONSTANTATOS, GERASIMOS; HOWARD, IAN; KLEM, ETHAN JD
Reel/Frame 042700/0798 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 13, 2017
From: LEVINA, LARISSA; KONSTANTATOS, GERASIMOS; HOWARD, IAN; KLEM, ETHAN J.D.; CLIFFORD, JASON PAUL
To: SARGENT, EDWARD
Reel/Frame 042700/0738 →
RELEASE OF SECURITY INTEREST Recorded Mar 20, 2017
From: PACIFIC WESTERN BANK, AS SUCCESSOR IN INTEREST TO SQUARE 1 BANK
To: INVISAGE TECHNOLOGIES, INC.
Reel/Frame 041652/0945 →
RELEASE OF SECURITY INTEREST Recorded Mar 16, 2017
From: HORIZON TECHNOLOGY FINANCE CORPORATION
To: INVISAGE TECHNOLOGIES, INC.
Reel/Frame 042024/0887 →
SECURITY INTEREST Recorded Jul 21, 2015
From: INVISAGE TECHNOLOGIES, INC.
To: HORIZON TECHNOLOGY FINANCE CORPORATION
Reel/Frame 036148/0467 →
RELEASE OF SECURITY INTEREST Recorded Oct 2, 2014
From: TRIPLEPOINT CAPITAL LLC
To: INVISAGE TECHNOLOGIES, INC.
Reel/Frame 033886/0632 →
RELEASE OF SECURITY INTEREST Recorded Sep 5, 2013
From: TRIPLEPOINT CAPITAL LLC
To: INVISAGE TECHNOLOGIES, INC.
Reel/Frame 031163/0810 →
SECURITY AGREEMENT Recorded Sep 3, 2013
From: INVISAGE TECHNOLOGIES, INC.
To: SQUARE 1 BANK
Reel/Frame 031160/0411 →
SECURITY AGREEMENT Recorded Jan 4, 2012
From: INVISAGE TECHNOLOGIES, INC.
To: TRIPLEPOINT CAPITAL LLC
Reel/Frame 027479/0419 →
Continuity (6)
Continuation 12780420 · May 14, 2010
Division 11510263 · Aug 24, 2006
Continuation In Part 11327655 · Jan 9, 2006
Provisional Application 60710944 · Aug 25, 2005
Provisional Application 60641766 · Jan 7, 2005
Related Publication 20110315959A1 · Dec 29, 2011