New world record set in renewable energy investments

renewable energy global investments

Record renewable energy investment in 2015. Image source.

All investments in renewables, including early-stage technology and R&D (Research and Development) as well as spending on new capacity, totalled $286 billion in 2015, some 3 per cent higher than the previous record in 2011, said the 10th edition of United Nations Environment Programme’s (UNEP) annual report — Global Trends in Renewable Energy Investment 2016.

According to Gulf News, a total of 134 gigawatts (GW) of renewable power was added worldwide in 2015 compared to 106GW in 2014 and 87GW in 2013, the report said.

It highlighted that the green investments had broadened out to a wider and wider array of developing countries, helped by sharply reduced costs and by the benefits of local power production over-reliance on imported commodities.

“Renewables are becoming ever more central to our low-carbon lifestyles, and the record-setting investments in 2015 are further proof of this trend. Importantly, for the first time in 2015, renewables in investments were higher in developing countries than developed,” said Achim Steiner, executive director at UNEP, in an official statement.

In 2015, for the first time, investments in renewable energy in developing and emerging economy nations ($156 billion, up 19 per cent compared to 2014) surpassed those in developed countries ($130 billion, down eight per cent from 2014).

Much of these record-breaking developing world investments took place in China (up 17 per cent to $102.9 billion, or 36 per cent of the world total).

Other developing countries showing increased investment included India (up 22 per cent to $10.2 billion), South Africa (up 329 per cent to $4.5 billion), Mexico (up 105 per cent to $4 billion) and Chile (up 151 per cent to $3.4 billion).

Among developed countries, investment in Europe was down 21 per cent, from $62 billion in 2014 to $48.8 billion in 2015, the continent’s lowest figure for nine years despite record investments in offshore wind projects.

Investments in the US were up by 19 per cent to $44.1 billion, and in Japan investment was much the same as the previous year at $36.2 billion.

The report was launched by the Frankfurt School-UNEP Collaborating Centre for Climate & amp; Sustainable Energy Finance and Bloomberg New Energy Finance (BNEF).

Emirates Insolaire Installs World’s First Coloured Solar Panels in Switzerland

world's first coloured solar panels in switzerland

Dubai firm installs Kromatix panels on building. Photo via Business Wire

Emirates Insolaire LLC, a pioneer in the development and application of unique solar technologies and a joint venture of Dubai Investments PJSC [DI] and SwissINSO Holding Inc., has created history with the successful installation of the world’s first KromatixTM coloured solar panels on a building façade in Lausanne, Switzerland.

According to Blackbird PR News, the entire installation, worth AED 850,000, is capable of generating sufficient electric power annually for two families of four people each. The building, boasting of its unique blue façade – thanks to the Emirates Insolaire glass panels, thus has the unique recognition of having the first coloured, photovoltaic solar panel façade in the world.

Two other projects in Basel, Switzerland, and Austria have also been completed. Emirates Insolaire continues to receive enquiries for its solar panels from UAE, Qatar, Saudi Arabia, Kuwait, Egypt, Bahrain, Lebanon, as well as from Europe, Asia, the US and Brazil.

Going by the projects on hand, demand and enquiries across the globe, Emirates Insolaire expects sales over 50,000 square metres for coloured solar panels in 2015 alone. Each coloured solar panel can generate above 150 watts electric power per square meter on roofs, or above 110 watts per square meter on façades.

Globally, the photovoltaic market has grown 40% year-on-year and the number of installations foreseen for 2015 is 160 GW – approximately 800 million square meters of glass. The share of Building Integrated Photovoltaic for rooftops and facades is witnessing one of the fastest growth rates.

Rafic Hanbali, Managing Partner of Emirates Insolaire, said: “The completion of Emirates Insolaire’s first project in Lausanne is a major milestone for the company. With the KromatixTM technology, the company has ushered in a paradigm shift in solar applications because of its aesthetic appeal to any building façade and efficiency due to its power generating attributes. The company sees significant growth opportunities going forward not only in the Europe but across the globe.”

KromatixTM solar panels can supply between 20% and 60% of the needed energy for a building. For certain industries with large roofs and façades, this can go up to 100%. Coming in virtually any colour, the Emirates Insolaire solar panels are optimised for both photovoltaic modules and solar thermal collectors.

Solar-powered LED lighting for Northern regions

solar-powered LED lighting

Danish research collaboration results in solar-powered LED lighting that operates in Northern regions. Image via ledsmagazine.com

At first glance, the best approach to make a solar powered outdoor lighting product work at winter in the far North is to go for state-of-the-art components: photovoltaic panels, batteries and super effective LEDs. However, the heart of the systems is actually what binds these components together: the power supply and the battery management system.

With a very limited amount of PV power input during the short winter days, the energy conversion efficiency and the stand-by power consumption of the management system are crucial factors. In this project, a prototype channeled the power generated in the PV panel to the battery with an extreme efficiency of 98-99%.

According to ledsmagazine.com, most commercial LED power supplies consume 8-15% of the load. Nevertheless, the same prototype discharged a 10-25W output from the battery to the LED with an impressive conversion efficiency of 97.5%.

A much smaller 10W version was prototyped as well. In this case, high efficiencies are even harder to obtain, but even this model produced similar impressive conversion efficiencies for the solar-powered LED lighting.

The results have great potential in actual solutions that are ready for the market. Both prototypes were specified in close cooperation with private companies to enable direct use in real products. Hence, the prototypes were tested in five different outdoor products with LED.

And who says it will stop here? The project generated an advanced design and dimensioning tool that can manage all of the limiting conditions. All parts are highly dependent on temperature conditions in the environment and the PV panels obviously depend on latitude and shading conditions. Hence, all local conditions as well as the dynamical and technical performance figures of potential components can be loaded into the design tool, and an optimized solution can be designed.

This design tool is valuable not only in stand-alone solar-powered LED lighting systems in the Nordic region but essentially all over the world. Furthermore, the prototyped power managements system can be applied to many other PV systems, as for instance stand-alone outdoor surveillance and intelligent parking meters.

The project was sponsored by the Danish Energy Agency (EUDP) and was managed by the DTU Fotonik (Technical University of Denmark) in close collaboration with DTU Energy and DTU Elektro. Three different private companies participated (Out-sider, AKJ Inventions and Morten Lyhne).

Inventors say they’ve created a solar panel like no other

new type of solar panel

Researchers testing claims for light, heat capturing panels.Photo by Mallika Viegas

Crystal Green Energy Corporation is a small company of three men, producing extraordinary things.

Lead technical and engineering expert Gilles Leduc, along with partners James Delsaut, a pharmacist, and Malik Amjad, an optical design enginer, say they have found a way of building highly efficient solar panels like no other.

According to northernlife.ca, while typical solar panels only gather light, Crystal Green’s high-concentration photovoltaic thermal (HCPVT) systems not only concentrate sunlight on a compact panel for conversion to high-amperage electricity, but also extracts and stores heat — something no other solar panel on the planet can do, they say.

“When you play with magnifying glasses you have heat — you can burn things. I started there,” Leduc said. “There’s a lot of energy that no one’s using right now.”

Other solar panels have to dissipate heat because it can damage the solar cells, Leduc said. But Crystal Green Energy has found away around that.

“With our heat exchanger, we also capture the thermal energy and store it,” said Delsault. “It can then be used in your home for hot water, heating and, (if we) reverse that process, cooling.

The panels themselves are something like lightweight, mirrored bowls that are mounted on a sun-tracking system, allowing the panels to follow the sun across the sky from sunrise to sunset, which maximizes the amount of energy generated.

Crystal Green told NorthernLife.ca the thermal mirroring on their optics is 98-per-cent efficient, calling it a huge leap over the 80-per-cent efficiency of previous systems.

The designers say their “triple junction photovoltaic cell” is another innovation over the competition. They use fibre optics to channel the sun’s rays through a reflective Winston cone onto the photovoltaic cell, which converts light energy into electricity. Generated energy is stored using lithium ion batteries.

“We’re trying to gather all that energy as fast as we can, and pouring it into a backup system, so on the days the sun does not shine, you have those backup systems,” Leduc said.

Their design is so effective and efficient, Crystal Green said, a 1500-square-foot home can get all the power and heat it needs from only six of their 1.1-x-1.1-square-metre panels. The company said it’s panels are are not only more compact that traditional solar panels, but are also 40-per-cent efficient compared to 15-per-cent for standard panels.

“Solar panels are a 30-year-old technology that can’t be adapted,” Delsaut said. “We’re not comparing apples to apples anymore — this technology is way beyond (that).”

Leduc, Delsaut and Amjad spent the past four years perfecting the product in their small Sudbury office, self-funding the prototype design.

“We do this on the side,” Delsaut said. “We still have our full time jobs. We just want to see the product succeed.”

So what’s next? The men behind Crystal Green Energy said they have partnered with researchers at the University of Sherbrooke, Ottawa University and Cambrian College for pre-testing certification and advanced development of the cells.

MIT research team is turning salt water into drinking water using solar panels

Solar-powered desalination

Solar-powered desalination. Image via sciencealert.com

By inexpensively turning salt water into drinking water using sustainable solar power, a team from MIT in the US has not only come up with a portable desalination system for use anywhere in the world that needs it, but it’s just won the 2015 Desal Prize – a competition run by USAID to encourage better solutions to water shortages in developing countries.

In order to win the $140,000 prize, entries had to demonstrate how their invention not only works well, but is cost-effective, environmentally sustainable, and energy efficient. And the MIT researchers teamed up with US-based manufacturing company, Jain Irrigation Systems, to do just that.

According to Science Alert, the team’s invention works by using solar panels to charge a cache of batteries that power an electrodialysis machine that removes salt from the water and makes it perfectly drinkable. David L. Chandler explains for MIT News:

“Electrodialysis works by passing a stream of water between two electrodes with opposite charges. Because the salt dissolved in water consists of positive and negative ions, the electrodes pull the ions out of the water, Winter says, leaving fresher water at the centre of the flow. A series of membranes separate the freshwater stream from increasingly salty ones.”

Solar-powered desalination plants are nothing new, and officials are investigating potential in water-poor areas such as Chile and California right now, but the technology has so far been extremely expensive to both piece together and run. And this obviously makes it difficult for developing countries to adopt. The key to the MIT plant is the electrodialysis process, says Chandler, talking to one of the team, mechanical engineer Amos Winter:

“Both electrodialysis and reverse osmosis require the use of membranes, but those in an electrodialysis system are exposed to lower pressures and can be cleared of salt buildup simply by reversing the electrical polarity. That means the expensive membranes should last much longer and require less maintenance, Winter says.”

Chandler reports that the MIT system can turn 90 percent of the salt water that’s fed into it into drinking water, which is huge, compared to the 40 to 60 percent from reverse-osmosis systems.

The team has been testing their system out in several villages across India since 2014, and have been using the Brackish Groundwater National Desalination Research Facility in the US to run 24-hour tests to analyse its efficiency and cost of maintenance. According to Mary Beth Griggs at Popular Science, in just 24 hours, their system can remove the salt from 2,100 gallons (7,950 litres).

They’re now hoping to expand their field tests to rural communities in developing countries, in the hopes that they can set them up as irrigation systems in small farms. “A solution with the potential to double recoverable water in an environment where water is becoming more precious by the day could have a huge impact,” environmental and civil engineer Susan Amrose from the University of California at Berkeley, who was not involved in the research, told MIT News.

Tesla’s new home battery to solve one of solar power’s biggest problems

Tesla's new home battery

Tesla’s home battery to be unveiled this month. Photo via gizmodo.com

So far, specific details are thin on the new battery designed for home use that Tesla will unveil this month. But just based on what we do know, it’s a pretty big deal. The quest for a good battery that can store home-generated power is kind of like the holy grail for a renewable energy future. This one product might change everything.

A New York Times article published earlier this week essentially sets up the problem that Tesla’s battery will solve. In Hawaii, 12 percent of homes have some kind of solar energy, by far the highest rate for any place in the US at the moment. In fact, that rate is growing too quickly—solar customers are dumping so much energy back onto the grid that they’re taxing the delicate and often aging infrastructure that was only designed to deliver power to homes. What’s happening in Hawaii is actually indicative of what’s going to be an issue everywhere as many cities start to see an increase in large-scale solar implementation: There’s going to be too much energy generated, and nowhere to put it.

According to Gizmodo, utility companies might spend the money to upgrade the grid, but even then it’s difficult for them to predict how much more capacity they’ll need (and of course those costs will certainly be passed down to consumers). The absolute best idea is for homeowners to start installing batteries that can store the power for later use instead of giving the power back to the utilities, something called peak load shaving. It’s not just solar power that can be stored, of course—it can also come from wind turbines or hydroelectricity or the treadmill you rigged together to juice up your house with kinetic energy.

Enter Tesla. In its quest to design the perfect electric car, Tesla has pretty much engineered the best battery on the market. Now, basically, the company is manufacturing an electric car battery for home use. They’re already out there: Tesla’s installed batteries in about 400 locations, including businesses like Walmart. Supposedly this new battery concept will improve upon what’s available now. But the real game changer here—like almost everything about energy—is price.

Thanks to companies like Tesla, the cost per kilowatt-hour of these batteries is coming down much faster than once predicted. Right now, Tesla’s batteries are about about $300 per kWh, which is comparable to the market rate the industry expected for 2020. This cost is intertwined with the proliferation of renewable energy because cheaper batteries mean that the price of entry for something like solar energy is essentially cheaper. Which means more people will be able to get into the solar game.

The biggest news here—and why utility companies are likely worried—is that with a cheaper, more accessible battery, homeowners will now very easily be able to achieve complete energy independence. You could store your power for off-peak usage, and you might be able to sell your excess energy to a neighbor. In the near future, cord-cutting may mean severing one’s self from the electrical grid.

Now here’s the very interesting twist: Tesla is also announcing a “utility-scale” battery, something we don’t know anything about at all. If this is something that the utility companies can use to help shoulder some of that grid burden, then this, too, will be a game changer for utilities. That’s a win-win for both energy customers and energy companies.

Breakthrough technology generate clean power

Enclosed wind turbine

Enclosed wind turbine

AirClear Energy has announced they have discovered an efficient solution that will generate renewable electrical energy without using fuel. The innovative system has two models that both use clean air and wind to create energy that can keep households, businesses, and private entities operating.

To build the first plant in Washington, D.C., the company has launched an IndieGoGo campaign to raise $500,000.

According to pressreleaserocket.net, as a subsidiary of Tajintech, Inc., which was founded in 2013, AirClear Energy is excited to bring to the world a solution to global warming. As the world relies heavily on non-sustainable energy sources, the damage done to the world everyone lives in is irreversible. However, there is a way to stop further harm to the earth with AirClear Energy.

The company created two models: plant model and portable model. Both use clean air compression methods. In the plant model, an enclosed wind turbine will be used to generate renewable energy. The method is efficient, reliable, and dependable by generating pressure that is compressed in the enclosed structure to turn the turbines.

As the turbines move, natural air is converted into mechanical energy, the mechanical energy is then converted into electrical energy that can be used anywhere. Wind plants that exist today usually have to wait for wind, but in this model there is no need to wait and it will operate longer than current air systems.

AirClear Energy also developed the portable model, which is great to use in living rooms, bedrooms, or any enclosed area. The system extracts proportionate amounts of outside pressure and compresses it. This pressure is used to operate the wind turbines while circulating cool air into the environment, which is perfect to control thermal conditions.

Both models are a cheaper energy source that will also support humanitarian needs. It is a reliable source of energy that is also perfect to be used in times of emergencies during natural disasters, refugee camps, or in the remote military locations.

Scientists create a new type of solar cell

new solar cell

esearchers combine 2 types of photovoltaic material to make a cell that harnesses more sunlight

Researchers at MIT and Stanford University have developed a new kind of solar cell that combines two different layers of sunlight-absorbing material in order to harvest a broader range of the sun’s energy.

According to pddnet.com, the development could lead to photovoltaic cells that are more efficient than those currently used in solar-power installations, the researchers say.

The new cell uses a layer of silicon — which forms the basis for most of today’s solar panels — but adds a semi-transparent layer of a material called perovskite, which can absorb higher-energy particles of light. Unlike an earlier “tandem” solar cell reported by members of the same team earlier this year — in which the two layers were physically stacked, but each had its own separate electrical connections — the new version has both layers connected together as a single device that needs only one control circuit.

The new findings are reported in the journal Applied Physics Letters by MIT graduate student Jonathan Mailoa; associate professor of mechanical engineering Tonio Buonassisi; Colin Bailie and Michael McGehee at Stanford; and four others.

“Different layers absorb different portions of the sunlight,” Mailoa explains. In the earlier tandem solar cell, the two layers of photovoltaic material could be operated independently of each other and required their own wiring and control circuits, allowing each cell to be tuned independently for optimal performance.

By contrast, the new combined version should be much simpler to make and install, Mailoa says. “It has advantages in terms of simplicity, because it looks and operates just like a single silicon cell,” he says, with only a single electrical control circuit needed.

One tradeoff is that the current produced is limited by the capacity of the lesser of the two layers. Electrical current, Buonassisi explains, can be thought of as analogous to the volume of water passing through a pipe, which is limited by the diameter of the pipe: If you connect two lengths of pipe of different diameters, one after the other, “the amount of water is limited by the narrowest pipe,” he says. Combining two solar cell layers in series has the same limiting effect on current.

To address that limitation, the team aims to match the current output of the two layers as precisely as possible. In this proof-of-concept solar cell, this means the total power output is about the same as that of conventional solar cells; the team is now working to optimize that output.

Perovskites have been studied for potential electronic uses including solar cells, but this is the first time they have been successfully paired with silicon cells in this configuration, a feat that posed numerous technical challenges. Now the team is focusing on increasing the power efficiency — the percentage of sunlight’s energy that gets converted to electricity — that is possible from the combined cell.

In this initial version, the efficiency is 13.7 percent, but the researchers say they have identified low-cost ways of improving this to about 30 percent — a substantial improvement over today’s commercial silicon-based solar cells — and they say this technology could ultimately achieve a power efficiency of more than 35 percent.

They will also explore how to easily manufacture the new type of device, but Buonassisi says that should be relatively straightforward, since the materials lend themselves to being made through methods very similar to conventional silicon-cell manufacturing.

One hurdle is making the material durable enough to be commercially viable: The perovskite material degrades quickly in open air, so it either needs to be modified to improve its inherent durability or encapsulated to prevent exposure to air — without adding significantly to manufacturing costs and without degrading performance.

This exact formulation may not turn out to be the most advantageous for better solar cells, Buonassisi says, but is one of several pathways worth exploring. “Our job at this point is to provide options to the world,” he says. “The market will select among them.”

“I think this work is very significant,” says Martin Green, a professor at the University of New South Wales, in Australia, who was not connected with this research. “The work is important in establishing a proof-of-concept and will stimulate higher efficiencies with this approach. … It’s an excellent starting point for further work in this area.”

The research team also included Eric Johlin PhD ’14 and postdoc Austin Akey at MIT, and Eric Hoke and William Nguyen of Stanford. It was supported by the Bay Area Photovoltaic Consortium and the U.S. Department of Energy.

Bring your innovative ideas to The Thin-Film Solar Awards Competition

thin-film solar awards

The Thin-Film Solar Awards Competition © Hanergy

The Thin-Film Solar Awards Competition, which is open to anyone, is offering cash prizes, incubator sponsorship, and production support for those submitting great thin-film solar product ideas.

Are you one of those people who’s always coming up with great ideas, even if you never do anything with them? Do you have a notebook full of ideas for inventions or product designs that have never seen the light of day? Do you often find yourself thinking about how to improve everyday products so they work better for you, or for others?

Have you ever said, “if you could only put solar on it…,” and meant it?

If you can answer yes to any of the above (or maybe even if you’ve ever thought “I wish there was such a thing as a solar-powered ________.”), then you might want to submit an idea or two to the Hanergy Thin-Film Solar Product Global Innovation Competition.

According to Tree Hugger, Hanergy, said to be the world’s largest thin-film solar power company, is looking for some bright ideas for innovative applications of its thin-film products on everyday items, and is offering cash prizes, production support, sponsorship at an incubator, and more, to the winners of the competition.

The concepts for submissions can be from across a wide spectrum of thin-film solar applications, from construction to mobile electronics to homes to vehicles and beyond, and don’t have to include a prototype or technical brief, which makes the competition open to just about anyone. In fact, if you need or want help with submitting your proposal, you can connect with the team first and they’ll help you to find the right resources or the right network to find the people who can help you.

The awards will include a $160,000 USD Grand Prize, as well as a number of other cash prizes, starting at $16,000 USD. Along with the money, the big winner will get a trip to a solar R&D lab, an opportunity for employment and profit-sharing, and production support from Hanergy. Plus, the thin-film solar ideas of today could turn out to revolutionize how we use, make, and think about mobile energy, so winners could be a part of a world-changing movement.

“All the business models built around steam-engines and baseload power are being disrupted by standard silicon solar modules. Imagine what will happen when we can provide electricity at the point of use with small applications of solar power appropriate to the load. It will put portable power into the hands of the people. The creative designers who enter this competition will have a chance to make history with their powerful new ideas.” – Danny Kennedy, founder of SfunCube solar incubator

Solar-powered space camera detects skin cancer on Earth

solar-powered space camera

High-tech camera detects skin cancer earlier

Space-based cameras originally designed to combat famine in Africa by monitoring vegetation are being adapted to help detect diseases such as skin cancer.

According to Red Orbit, the Proba-V vegetation-scanning satellite’s high-speed camera and digital infrared sensors can be used with a standard medical scanner, allowing doctors to look deeper into human skin tissue and detect skin diseases earlier than ever before.

It is one of several non-space applications for the technology currently under consideration, the agency explained. Other possible uses include improving solar cell production and spotting items that are defective while they’re still on the assembly line.

The Proba-V camera, which was developed for the ESA by a Belgian firm known as Xenics, is able to see light that we cannot by looking at in the shortwave infrared range. It also has a unique wide field of view that can create a new image of out planet’s flora every 48 hours.

“To humans, two green trees could look similar. But with this camera, we might detect that one is growing well and the other is unhealthy,” ESA’s Michael Francois explained.

Using its sensor, the Proba-V can monitor the Amazon rainforest or help African farmers predict crop yields.

“Based on the experience of preceding years, you can determine whether crop growth is on schedule or behind, and you can get early information on whether there will be sufficient food,” noted Koen van der Zanden from Xenics.

“The high-speed resolution of our ‘line-scan’ cameras makes them ideal for detecting hidden defects on fast-moving production lines, such as bottle manufacturing or sorting different types of plastics for recycling – all of which look similar to the human eye,” Koen added. “The items are moving fast, just like Earth spins below the satellite, so by scanning one complete line at a time we can quickly cover the whole area.”

The Proba-V camera is capable of generating a 2250 kilometer wide picture of the land with each sweep of its 3072-pixel line sensor, the ESA said. Unlike conventional rectangular detectors such as those used in off-the-shelf digital cameras, however, the satellite’s sensor captures information one line at a time and does so with incredible speed.

As the target moves past, Proba-V creates a complete image, which increases the efficiency of imaging rapid objects on production lines. That ability, combined with its capability to “see the unseeable,” makes commercialization of the technology attractive and feasible.

Skin diseases and solar panels

Xenics is currently adapting their invention for use by doctors, with the idea that their technology will be able to improve a doctor’s ability to diagnose skin diseases. While scanners have been able to provide detailed cross-section images of living tissue for more than two decades, their space camera’s sensitivity at some wavelengths allow it to look deeper in search of diseases.

“It may still be a few years away but once our sensors start helping doctors to diagnose skin diseases and catch them at earlier stages, then we can all feel doubly proud of this spin-off from space,” Koen explained.

In addition, this capability allows the device to quickly spot defects on solar panels. When those panels are illuminated, the camera can gauge their efficiency quickly by spotting any dulling of the weak glow the cells emit when they absorb light, the ESA explained.

“The transfer of this specially developed camera technology for ESA’s Proba-V has positioned a European company in a leading position globally for linear shortwave infrared sensor technology,” added Sam Waes from the ESA’s Belgian technology broker, Verhaert. “It is an excellent demonstration of how investments in our space programs help European industry benefit from space technology spin-offs.”