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Showing posts with label nanotechnology solar energy. Show all posts
Showing posts with label nanotechnology solar energy. Show all posts

Sandia Labs Creates Solar Cell that Uses 100 times Less Silicon and Generates Same Amount of Electricity-Can Be Used in Clothing to Recharge Batteries


Sandia National Laboratory representative thin crystalline-silicon photovoltaic cells – these are from 14 to 20 micrometers thick and 0.25 to 1 millimeter across.



Credit: Image by Murat Okandan   

The tiny cells could turn a person into a walking solar battery charger if they were fastened to flexible substrates molded around unusual shapes, such as clothing.

The solar particles, fabricated of crystalline silicon, hold the potential for a variety of new applications. They are expected eventually to be less expensive and have greater efficiencies than current photovoltaic collectors that are pieced together with 6-inch- square solar wafers. The cells are fabricated using microelectronic and microelectromechanical systems (MEMS) techniques common to today’s electronic foundries.

Sandia National Laboratory lead investigator Greg Nielson said the research team has identified more than 20 benefits of scale for its microphotovoltaic cells. These include new applications, improved performance, potential for reduced costs and higher efficiencies.

“Eventually units could be mass-produced and wrapped around unusual shapes for building-integrated solar, tents and maybe even clothing,” he said. This would make it possible for hunters, hikers or military personnel in the field to recharge batteries for phones, cameras and other electronic devices as they walk or rest.

Sandia project lead Greg Nielson holds a solar cell test prototype with a microscale lens array fastened above it. Together, the cell and lens help create a concentrated photovoltaic unit.


(Photo by Randy Montoya)

Even better, such microengineered panels could have circuits imprinted that would help perform other functions customarily left to large-scale construction with its attendant need for field construction design and permits.

Said Sandia field engineer Vipin Gupta, “Photovoltaic modules made from these microsized cells for the rooftops of homes and warehouses could have intelligent controls, inverters and even storage built in at the chip level. Such an integrated module could greatly simplify the cumbersome design, bid, permit and grid integration process that our solar technical assistance teams see in the field all the time.”

For large-scale power generation, said Sandia researcher Murat Okandan, “One of the biggest scale benefits is a significant reduction in manufacturing and installation costs compared with current PV techniques.”

Part of the potential cost reduction comes about because microcells require relatively little material to form well-controlled and highly efficient devices.

From 14 to 20 micrometers thick (a human hair is approximately 70 micrometers thick), they are 10 times thinner than conventional 6-inch-by-6-inch brick-sized cells, yet perform at about the same efficiency.

100 times less silicon generates same amount of electricity

“So they use 100 times less silicon to generate the same amount of electricity,” said Okandan. “Since they are much smaller and have fewer mechanical deformations for a given environment than the conventional cells, they may also be more reliable over the long term.”

Another manufacturing convenience is that the cells, because they are only hundreds of micrometers in diameter, can be fabricated from commercial wafers of any size, including today’s 300-millimeter (12-inch) diameter wafers and future 450-millimeter (18-inch) wafers.

Further, if one cell proves defective in manufacture, the rest still can be harvested, while if a brick-sized unit goes bad, the entire wafer may be unusable. Also, brick-sized units fabricated larger than the conventional 6-inch-by-6-inch cross section to take advantage of larger wafer size would require thicker power lines to harvest the increased power, creating more cost and possibly shading the wafer. That problem does not exist with the small-cell approach and its individualized wiring.

Other unique features are available because the cells are so small. “The shade tolerance of our units to overhead obstructions is better than conventional PV panels,” said Nielson, “because portions of our units not in shade will keep sending out electricity where a partially shaded conventional panel may turn off entirely.”

Because flexible substrates can be easily fabricated, high-efficiency PV for ubiquitous solar power becomes more feasible, said Okandan.

A commercial move to microscale PV cells would be a dramatic change from conventional silicon PV modules composed of arrays of 6-inch-by-6-inch wafers. However, by bringing in techniques normally used in MEMS, electronics and the light-emitting diode (LED) industries (for additional work involving gallium arsenide instead of silicon), the change to small cells should be relatively straightforward, Gupta said.

Each cell is formed on silicon wafers, etched and then released inexpensively in hexagonal shapes, with electrical contacts prefabricated on each piece, by borrowing techniques from integrated circuits and MEMS.

Offering a run for their money to conventional large wafers of crystalline silicon, electricity presently can be harvested from the Sandia-created cells with 14.9 percent efficiency. Off-the-shelf commercial modules range from 13 to 20 percent efficient.

A widely used commercial tool called a pick-and-place machine — the current standard for the mass assembly of electronics — can place up to 130,000 pieces of glitter per hour at electrical contact points preestablished on the substrate; the placement takes place at cooler temperatures. The cost is approximately one-tenth of a cent per piece with the number of cells per module determined by the level of optical concentration and the size of the die, likely to be in the 10,000 to 50,000 cell per square meter range. An alternate technology, still at the lab-bench stage, involves self-assembly of the parts at even lower costs.

Solar concentrators — low-cost, prefabricated, optically efficient microlens arrays — can be placed directly over each glitter-sized cell to increase the number of photons arriving to be converted via the photovoltaic effect into electrons. The small cell size means that cheaper and more efficient short focal length microlens arrays can be fabricated for this purpose.

High-voltage output is possible directly from the modules because of the large number of cells in the array. This should reduce costs associated with wiring, due to reduced resistive losses at higher voltages.Other possible applications for the technology include satellites and remote sensing.

The project combines expertise from Sandia’s Microsystems Center; Photovoltaics and Grid Integration Group; the Materials, Devices, and Energy Technologies Group; and the National Renewable Energy Lab’s Concentrating Photovoltaics Group.

Involved in the process, in addition to Nielson, Okandan and Gupta, are Jose Luis Cruz-Campa, Paul Resnick, Tammy Pluym, Peggy Clews, Carlos Sanchez, Bill Sweatt, Tony Lentine, Anton Filatov, Mike Sinclair, Mark Overberg, Jeff Nelson, Jennifer Granata, Craig Carmignani, Rick Kemp, Connie Stewart, Jonathan Wierer, George Wang, Jerry Simmons, Jason Strauch, Judith Lavin and Mark Wanlass (NREL).

The work is supported by DOE’s Solar Energy Technology Program and Sandia’s Laboratory Directed Research & Development program, and has been presented at four technical conferences this year.

The ability of light to produce electrons, and thus electricity, has been known for more than a hundred years.

From left to right, Sandia researchers Murat OKandan, Greg Nielson, and Jose Luis Cruz-Campa, hold samples containing arrays of microsolar cells.


Photo by Randy Montoya
 

Sandia National Laboratories is a multiprogram laboratory operated by Sandia Corporation, an autonomous Lockheed Martin company, for the U.S. Department of Energy’s National Nuclear Security Administration. With main facilities in Albuquerque, N.M., and Livermore, Calif., Sandia has major R&D responsibilities in national security, energy and environmental technologies, and economic competitiveness.

Sandia news media contact: Neal Singer, nsinger@sandia.gov (505) 845-7078

Russia Aims for $29 Billion in Nanotechnology Sales by 2015, RUSNANO Plans $10 Billion in Investments, Evaluating 237 Projects


On December 23rd, RUSNANO CEO Anatoly Chubais held a press conference in Moscow to announce the results of the Corporation’s activity in 2009. In order to implement the government approved strategy of increasing total sales of Russia's nanotechnology-enabled products to $29 billion (900 billion rubles) by 2015—RUSNANO plans to invest about $10.2 billion (310 billion rubles) in nanotech projects. To help meet that goal, in 2010 RUSNANO plans to raise funds in the form of external loans guaranteed by the State.

A priority direction for RUSNANO is co-investment in industry, infrastructure and educational projects in the field of nanotechnology. The Russian Corporation of Nanotechnologies (RUSNANO) was established in 2007 by the Federal law № 139-FZ to enable Government policy in the field of Nanotechnology.

The Corporation started to accept applications for nanotechnology projects financing beginning April 1, 2008. As of December 22, 2009 RUSNANO received 1,356 applications with requested financing exceeding $59.6  billion (1.8 trillion rubles), including financing requested from the Corporation exceeding $36.4 (1.1 trillion rubles). 237 project applications now undergo the Corporation’s expert evaluation procedures.

By December 23, 2009 the Supervisory Council of RUSNANO approved financing of 61 projects, including 51 industry projects, three infrastructure projects, one educational project, as well as six investment funds. The total financing of these 61 projects amounts to $6.3 billion (192.8 billion rubles), including the financing from RUSNANO $3 billion (91 billion rubles).

The projects’ financing is increasing rapidly. By the end of 2008 the Supervisory Council approved seven projects, as of 23 December 2009 the number increased almost eight times to 54 projects. The number of projects increased partly due to the new approach to the Corporation’s investment policy, the essence of which is the gradual transition from the passive acceptance of applications to active search of investment projects. In July 2009 the Corporation achieved its designed capacity of starting 15 new projects per quarter.

By the end of 2009 RUSNANO eliminated the underrun in the actual funding of projects from targets set by the Corporation’s strategy. Furthermore, the actual volume of project’s financing in 2008-2009 amounted to $1.05 billion (31.8 billion rubles) comparing to the target of $960 million (29 billion rubles).

In addition to the industrial projects co-financing, the RUSNANO approach to nanotech industry development implies establishing the R&D, financial and educational infrastructure of the innovative economy. In 2009 it was decided to form five venture capital funds with the Corporation’s participation. RUSNANO and MICEX also launched the new Market for Innovations and Investments (MICEX MII), designed to attract investment, especially in mid and small capitalization sector of Russia's innovative economy. The first IPO at MICEX MII was launched on December 10, 2009.

In 2009 RUSNANO adopted key documents, laying the foundations of the Corporation’s activities in several key areas including education. The concept of RUSNANO activities in education was approved by the Supervisory Council on 4 August 2009. According to the document, RUSNANO will focus on building human resources capacity through support of education programs of advanced training and retraining for nanotechnology industry professionals.

 In 2009 RUSNANO held four competitive tenders for this kind of educational programs. By 2015 the number of the educational programs supported by RUSNANO should increase to 120. Another area of RUSNANO activities is assistance in the preparation of professional standards. RUSNANO plans to participate in the development of inter-institutional educational training programs for the high qualification workforce and adaptation of the best foreign training courses.

On October 13, 2009 the Supervisory Council of the Corporation approved the concept of nanotechnology centers—infrastructure facilities intended for the commercialization of nanotechnology developments. The key feature of nanotechnology centers is the concentration of technological equipment and incubation competence for small innovative companies (marketing, management and information support). The first competitive tender to create nanotechnology center is to be announced before the end of this year and to be finalized in the first quarter of 2010.

On October 6-8, 2009 Moscow hosted the Second Nanotechnology International Forum, designed to provide a global platform for professional discussion of nanotechnology developments and innovations. This year it was attended by 11,394 participants and visitors from Russia and 38 foreign countries.

In December 2009 RUSNANO, in accordance with the decision of the Government of the Russian Federation, transferred $2.2 billion (66.4 billion rubles) of temporarily free funds to the state budget. By the Decree of the Government of the Russian Federation No 1454-r the transfer of RUSNANO’s free funds to the state budget is carried out on a return basis: it is expected that in 2010-2012 these funds will be transferred back to the Corporation.


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