Showing posts with label rectenna. Show all posts
Showing posts with label rectenna. Show all posts

Tuesday, November 10, 2009

Picking up night waves

Published: 10 November 2009 07:00 AM
Source: The Engineer

Future solar cells could operate 24 hours a day by collecting radiation emitted from the Earth at night and turning it into energy.

So believe researchers at Manchester University's School of Electronic and Electrical Engineering, who are working on a new technology that would give solar cells the ability to collect light energy from multiple wavelengths.

The team has developed nano-diodes that detect terahertz waves lying at the far end of the infrared band, right before microwaves.

Project leader Aimin Song, a professor of nanoelectronics at Manchester University, said their nano-diode terahertz detector has a novel planar architecture and works at 1.5THz or 1,500GHz, the highest speed of electronic nano-devices to date.

He claimed that combining such a diode with an antenna would make it possible to collect energy from infrared waves and convert them into DC electricity.

Song said the technology would take advantage of the Earth's greenhouse effect.

'The Earth and the atmosphere absorb a lot of the sunlight,' he added. 'After absorption they slowly radiate this energy back but not in the visible light frequency range but in the infrared frequency band.'

Song said that the technology, which is known as rectenna because it combines a rectifier (diode) and antenna, has already been demonstrated to work for converting microwave energy into DC electricity with a claimed efficiency between 80 and 90 per cent. 'If we develop this rectenna technology for the infrared frequency band, we can develop solar cells that operate at night time,' he said. 'This rectenna concept could potentially offer solar cells 80-90 per cent efficiency.'

Manchester University recently began a one-year commercialisation programme for the technology and Song said a spin-out company could be formed within the first half of 2010.

'We hope at the end of this one-year programme to achieve the first prototype device to work at infrared frequencies,' he said. 'Our first prototype wouldn't work for visible sunlight, but it would work to harvest energy in the night.'

Manchester University is also involved in a three-year EU-funded project beginning in January that will attempt to develop nano-devices that can both detect and emit terahertz waves.

Siobhan Wagner

Source

Thursday, May 29, 2008

Quantum Solar Power Corp., Inc.

I am talking my head off here and elsewhere trying to get NNPP or anybody else to get interested in this rectenna development by NNPP's grandpa, a guy named Howard K. Schmidt.

Look here for the rectenna stuff so far:
http://donpatent.blogspot.com/2008/05/inventor-schmidt-howard-k.html

I think rectenna empowered solar could bury oil but what company will develop it is unknown - that's why I would like to see NNPP participate and use either Ren (Boston College) or Schmidt's developments or both to cover all the bases.

Re QVQV:
From : http://investing.businessweek.com/research/stocks/snapshot/snapshot.asp?capId=11817017

QV, Quantum Ventures Enters into Agreement with Canadian Integrated Optics International to Manufacture & Market CIOI's Patent Pending Solar Technology
04/16/2008

QV Quantum Ventures Inc. announced that the company has entered into a License agreement with Canadian Integrated Optics International Ltd. of Douglas, Isle of Man (CIOI), to manufacture and market CIOI's patent pending solar technology based on an optical rectenna. Closing of this agreement will occur on or about May 16, 2008 and is subject to certain terms and conditions. The Purchase Price for the license shall be paid in shares of the Company's common stock and a royalty.

I got this out of the 8K: http://sec.edgar-online.com/2008/04/16/0001096350-08-000061/Section6.asp

"Patent Rights" means issued patents and pending patent applications in any country in respect of an invention owned by the Licensor relating to the Technology, including provisionals, continuations-in-part, continuations, divisionals, re-issues and extensions of those issued patents and pending patent applications, including inventions described in the specifications of United States Patent Application Numbers 60/911,847, 60/911,815, 60/911,823 and 60/911,837 filed on April 13, 2007.

I searched and found nothing - they are not yet published. '60' signifies an early incomplete informal filing to get an early filing date - they have a year to get a proper application filed and to maintain that early filing date.

Rectenna. Remember it - it will change the world.

Goodbye oil and coal, hello rectenna solar.

What is a rectenna? It is an antenna which receives electromagnetic waves from the sun, for example, and converts them into rectified direct electric current.

Quantm Ventures - shortly (June 16, 2008) to be renamed - Quantum Solar Power Corp., Inc.
http://knobias.10kwizard.com/filing.php?param=&ipage=5683950&DSEQ=1&SEQ=&SQDESC=SECTION_BODY&exp=

Thursday, May 22, 2008

Inventor: SCHMIDT, Howard K.

Hello!! Isn't this NNPP(Nano-Proprietary, now Applied Nanotech - APNT)'s grandpa?

Inventor: SCHMIDT, Howard K.

(WO/2008/060640) NANOPARTICLE / NANOTUBE-BASED NANOELECTRONIC DEVICES AND CHEMICALLY-DIRECTED ASSEMBLY THEREOF

Pub. No.: WO/2008/060640 International Application No.: PCT/US2007/061563
Publication Date: 22.05.2008 International Filing Date: 02.02.2007
IPC: G02B 6/12 (2006.01)

Applicants: WILLIAM MARSH RICE UNIVERSITY [US/US]; 6100 Main Street, Houston, TX 77005 (US) (All Except US).
SCHMIDT, Howard K. [US/US]; 20702 Bradford Creek Ct, Cypress, TX 77433 (US) (US Only).

Inventor: SCHMIDT, Howard K. [US/US]; 20702 Bradford Creek Ct, Cypress, TX 77433 (US).

Agent: SHADDOX, Robert C.; Winstead Sechrest & Minick P.c., P.O. Box 50784, Dallas, TX 75201 (US).
Priority Data:
60/764,636 02.02.2006 US

Title: NANOPARTICLE / NANOTUBE-BASED NANOELECTRONIC DEVICES AND CHEMICALLY-DIRECTED ASSEMBLY THEREOF

Abstract:
According to some embodiments, the present invention provides a nanoelectronic device based on a nanostructure that may include a nanotube with first and second ends, a metallic nanoparticle attached to the first end, and an insulating nanoparticle attached to the second end. The nanoelectronic device may include additional nanostructures so a to form a plurality of nanostructures comprising the first nanostructure and the additional nanostructures. The plurality of nanostructures may arranged in a network comprising a plurality of edges and a plurality of vertices, wherein each edge comprises a nanotube and each vertex comprises at least one insulating nanoparticle and at least one metallic nanoparticle adjacent the insulating nanoparticle. The combination of at least one edge and at least one vertex comprises a diode. The device may be an optical rectenna.

[0005] An attraction for rectenna technology is its high theoretical conversion efficiency - roughly 95%. The greatest conversion efficiency ever recorded by a rectenna element occurred in 1977 by Brown, Raytheon Company. Using a GaAs-Pt Schottky barrier diode, a 90.6% conversion efficiency was recorded with an input microwave-power level of 8W. Conversion efficiencies in the range of 80% are typical, with representative circuits shown below.

[0006] The concept is arbitrarily scaleable, and the optical rectenna is a direct extension to shorter wavelengths. Some of recent work in the area was performed by ITN energy systems [[For background see below!]] under DOE and DARPA sponsorship "BROADBAND OPTICAL RECTENNA FOR ENERGY HARVESTING", CECOM ENERGY HARVESTING PROGRAM Slides, April 14, 2000 ). Such micro- and nano-scale rectenna devices can convert ambient electromagnetic radiation (i.e. solar spectrum, blackbody radiators, active emitters) to DC electric power. The potential is to convert over 85% of the sun's energy to useable power compared to ~30% now achievable with conventional semiconductor based photovoltaics. Such devices may also be applicable to uncooled infrared detectors.

[0007] While the concept has been proven in principal, useful power conversion in the optical frequency range is prevented by the low frequency response of the planar diodes employed.

[0008] Thus there remains a need for optical rectennas having desirable frequency response and power conversion.

BRIEF DESCRIPTION OF THE INVENTION

[0009] These and other features and advantages of the invention will be apparent to those skilled in the art from the following detailed description of various embodiments, taken together with the accompanying figures and claims, in which:

[0010] According to some embodiments, the present invention provides a nanoelectronic device based on a nanostructure that may include a nanotube with first and second ends, a metallic nanoparticle attached to the first end, and an insulating nanoparticle attached to the second end.

[0011] The nanotube may be conducting. Thus, it may be any one of conducting, semiconducting, and semi-metallic. Further, the nanotube may be a single walled nanotube or a multi-walled nanotube. The nanotube may be primarily carbon.

[0012] The nanotube may absorb light. Yet further, the nanotube may be an antenna.

The length between the first and second ends is about half a wavelength of the light. The light may include at least one of visible and infrared radiation.

[0013] The insulating nanoparticle may be formed of a metal oxide. The metallic nanoparticle may be formed of elemental metal.

WHAT IS CLAIMED IS:

1. A nanoelectronic device, comprising: a first nanostructure, comprising: a nanotube having first and second opposing ends; a metallic nanoparticle attached to the first end; and an insulating nanoparticle attached to the second end.

2. The nanoelectronic device according to claim 1, wherein the nanotube is conducting.

3. The nanoelectronic device according to claim 1, wherein the nanotube absorbs light.


4. The nanoelectronic device according to claim 3, wherein the nanotube comprises an antenna.

5. The nanolectronic device according to claim 4, wherein the length between the first and second ends is about half a wavelength of the light.


6. The nanolectronic device according to claim 5, wherein the light comprises at least one of visible and infrared radiation.


7. The nanolectronic device according to claim 1, wherein the insulating nanoparticle comprises a metal oxide.


8. The nanolectronic device according to claim 1, wherein the metallic nanoparticle comprises elemental metal.


9. The nanolectronic device according to claim 1, wherein the nanoelectronic device further comprises additional nanostructures so a to form a plurality of nanostructures comprising the first nanostructure and the additional nanostructures.


10. The nanoelectronic device according to claim 9, wherein the plurality of nanostructures is arranged in a network comprising a plurality of edges and a plurality of vertices, wherein each edge comprises a nanotube and each vertex comprises at least one insulating nanoparticle and at least one metallic nanoparticle adjacent the insulating nanoparticle.

11. The nanolectronic device according to claim 10, wherein the combination of at least one edge and at least one vertex comprises a diode.


12. The nanolectronic device according to claim 9, wherein the device is an optical rectenna.


13. A nanoelectronic device comprising an optical rectenna comprising a plurality of nanostructures arranged so as to form a plurality of nanoscale diodes with integrated antennas, wherein each nanostructure comprises:
a conducting nanotube having first and second opposing ends; a metallic nanoparticle attached to the first end, wherein the first nanoparticle comprises elemental metal; and an insulating nanoparticle attached to the second end, wherein the insulating nanoparticle comprises a metal oxide.

14. The nanoelectronic device according to claim 13, wherein the conducting nanotube is metallic.


15. The nanoelectronic device according to claim 13, wherein the conducting nanotube is semi-metallic.


16. The nanoelectronic device according to claim 13, wherein the conducting nanotube is semi-conducting.


17. The nanoelectronic device according to claim 13, wherein the conducting nanotube is a single-walled nanotube.


18. The nanoelectronic device according to claim 13, wherein the conducting nanotube is a multi-walled nanotube.


19. A method of making a nanoelectronic device, comprising: making a plurality of asymmetric nanostructures, wherein making the plurality of nanostructures comprises: providing a plurality of nanotubes, each having a first end functionalized with at least one functionalizing moiety and a second end having a linker molecule attached thereto; attaching a metallic nanoparticle to the linker molecule; and attaching an insulating nanoparticle to the functionalizing moiety.


20. The method according to claim 17, comprising: aligning the plurality of nanostructures so as to form an oriented network.

Source:
http://tinyurl.com/68f82h

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BACKGROUND -
ITN Energy Systems:

http://www.itnes.com/about_itn/itn_team.html

Photovoltaic Technologies Beyond the Horizon
Optical Rectenna Solar Cell

1. Background on ITN Energy Systems’ Optical Rectenna Technology
1.1. Motivation for Next-Generation, High-Efficiency Solar Cells

Worldwide energy demands have increased by 40% over the last 20 years.1 Although the deleterious effects of hydrocarbon-based power are becoming increasingly apparent, more than 85% of the world’s power is still generated by combustion of fossil fuels.1 Clean renewable alternative energy sources are required to meet the demands, with direct solar-conversion devices as leading candidates. The worldwide market for conventional photovoltaics (PV) has increased at an annual rate of 20% over the last five years, and industry estimates suggest as much as 18 billion watts per year could ship by 2020.1 To meet the increased demands for solar-conversion technologies, dramatic improvements are required in state-of-the-art PV technologies. Efficiency improvements and cost/complexity reduction are the main issues that need to be addressed to meet these goals.

Traditional p-n junction solar cells are the most mature of the solar-energy-harvesting technologies. Although great improvements have been made in the last 20 years, energy absorption, carrier generation, and collection are all a function of the materials chemistry and corresponding electronic properties (i.e., bandgap). As a quantum device, the efficiency of PV is a function of, and therefore, ultimately fundamentally limited by, the bandgap and the match of the bandgap to the solar spectrum. For single-junction cells, this sets an upper efficiency limit of ~30%.2 Even with complex multi-junction designs, the theoretical efficiency plateaus around 55% without excessive concentration of the incident radiation.3 Current state-of-the-art solar cells are ~20% efficient for single cells and ~30% efficient for multijunction systems.4 In the long term, the PV industry will require newer, higher efficiency technologies to improve performance and to meet the increasing demands of the solar power market.

As an alternative, ITN Energy Systems is developing next-generation solar cells based on the concepts of an optical rectenna (see Figure 1). ITN’s optical rectenna consists of two key elements: 1) an optical antenna to efficiently absorb the incident solar radiation, and 2) a highfrequency metal-insulator-metal (MIM) tunneling diode that rectifies the AC field across the antenna, providing DC power to an external load. The combination of a rectifying diode at the feedpoints of a receiving antenna is often referred to as a rectenna. Rectennas were originally proposed in the 1960s for power transmission by radio waves for remote powering of aircraft for surveillance or communications platforms.5 Conversion efficiencies greater than 85% have been demonstrated at radio frequencies (efficiency defined as DC power generated divided by RF power incident on the device). Later, concepts were proposed to extend the rectennas into the infrared (IR) and optical region of the electromagnetic spectrum for use as energy collection devices (optical rectennas).6
http://www.nrel.gov/docs/fy03osti/33263.pdf

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BACKGROUND: Boston College -
Ren; Zhifeng

United States Patent Application 20070240757
Kind Code A1
Ren; Zhifeng ; et al. October 18, 2007

Solar cells using arrays of optical rectennas

Abstract

The present invention discloses a solar cell comprising a nanostructure array capable of accepting energy and producing electricity. In an embodiment, the solar cell comprises an at least one optical antenna having a geometric morphology capable of accepting energy. In addition, the cell comprises a rectifier having the optical antenna at a first end and engaging a substrate at a second end wherein the rectifier comprises the optical antenna engaged to a rectifying material (such as, a semiconductor). In addition, an embodiment of the solar cell comprises a metal layer wherein the metal layer surrounds a length of the rectifier, wherein the optical antenna accepts energy and converts the energy from AC to DC along the rectifier. Further, the invention provides various methods of efficiently and reliably producing such solar cells.


Inventors: Ren; Zhifeng; (Newton, MA) ; Kempa; Krzysztof; (Billerica, MA) ; Wang; Yang; (Allston, MA)
Assignee Name and Adress: The Trustees of Boston College

Link

See also:

(WO/2007/086903) APPARATUS AND METHODS FOR SOLAR ENERGY CONVERSION USING NANOCOAX STRUCTURES

[SNIP]

The presently disclosed embodiments generally relate to the use of nano-coaxial transmission lines (NCTL) to fabricate a nano-optics apparatus. The nano-optics apparatus is a multifunctional nano-composite material made of a metallic film having a top surface and a bottom surface and a plurality of cylindrical channels filled with a dielectric material. An array of nanorods penetrate the metallic film through the plurality of cylindrical channels. The array of nanorods has a protruding portion that extends beyond a surface of the metallic film and an embedded portion that is within the metallic film. The protruding portion acts as a nano-antenna and is capable of receiving and transmitting an electromagnetic radiation at a visible frequency. The embedded portion acts as a nano-coaxial transmission line (CTL) and allows for propagation of external radiation with a wavelength exceeding the perpendicular dimensions of the nanorod.

The nano-optics apparatus can concentrate light, and therefore enhance a field up to about 103 times. The array of optical nano-antennas, with nano-CTL embedded in a metallic film, effectively compresses light into nanoscopic dimensions. The nano-antennas are capable of receiving and transmitting an electromagnetic radiation at the visible frequencies. The extreme compression of light in the nano-CTL leads to an asymmetric tunneling of electrons between the electrodes of the nano-CTL, and thus provides a rectifying action at the light frequencies, and thus conversion of the light into a direct current (DC) voltage. This property leads to a new class of efficient, and low cost rectenna solar cells. The extreme compression of light in the nano-CTL is quick, and is not limited by the usual parasitic capacitances that make the conventional diode rectification inefficient, if not impossible, at the light frequencies.

And these, as well:

Physics Team Sees Potential for 'Perfect' Solar Cell

Solasta Inc.

Abstract

Submitted for the MAR08 Meeting of The American Physical Society

Sorting Category: 16.12.6 (E)
Nanocoax Solar Cells1 M.J. NAUGHTON, K. KEMPA, Z.F. REN, J. RYBCZYNSKI2, T. PAUDEL, Y. GAO, Y. XU, Boston College
A novel architecture for high effciency solar energy conversion, employing separated photo- and -voltaic pathways and antenna-based light collection, is described.

**************************************************************

Dr. Howard K. Schmidt Bio:

Dr. Howard K. Schmidt, Executive Director of the Carbon Nanotechnologies Laboratory

Howard Schmidt is the Executive Director of the Carbon Nanotechnology Laboratory (CNL) at Rice University. He is an expert in the field of carbon nanotechnology and single-wall carbon nanotubes, one of the most versatile materials on the nanotechnology horizon. At the CNL, Dr. Schmidt is responsible for developing and managing key federal and industrial relationships to drive emerging applications for carbon nanotubes. He serves on the Board of Directors of Axion Power Corporation (member of Audit and Technology Committees), and the Advisory Board of Texas Nanotech Ventures (Chairman). He also serves occasionally as an Expert Witness or Technology Advisor in patent litigation.

Schmidt's current research and development projects focus on nanostructured carbon and metallic materials for structural composites, energy storage and solar cells.

Prior to joining the CNL, Schmidt founded or co-launched four technology companies over seventeen years: Ionwerks, SI Diamond Technology (SIDT), EQUEX and Road-Show.Com. Schmidt took SIDT public in 1993; the firm (now called NanoProprietary) is a long-time leader in developing nanotechnology applications.

Schmidt holds a Bachelors' in Electrical Engineering (1980) and a Doctorate in Physical Chemistry (1986), both from Rice University.

http://www.tntventures.com/schmidt.html

Re TNT:
http://www.tntventures.com/board.html
(Note 'Zvi Yaniv')

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Power Review:

http://cohesion.rice.edu/CentersAndInst/CNST/emplibrary/HTC%20Panel%20040615%20Final.ppt

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You know - when I see this kinda statement --The potential is to convert over 85% of the sun's energy to useable power compared to ~30% now achievable-- I get all tingly with excitement, sell oil short and believe in sugarplum fairies!!

And go talk to grandpa just to say hello....and maybe see what's up, too.

The wallet needs filling!

Did you notice Schmidt and Ren are both using CNTs!!!

;-)

Hello grandpa!!!! Come back to NNPP. Bring Boston College and Ren et al with you!!