From Engadget: Galaxy S III sales breach 10 million, satisfy Samsung executives

Galaxy S III sales breach 10 million, satisfy Samsung executives

Wondering if Samsung’s new flagship has hit its sales goal yet? Breathe out — it did. According to Yonhap, Shin Jong-kyun, head of Samsung’s information technology and mobile communication division, told reporters the firm has moved more than 10 million Samsung Galaxy S IIIs since its unveiling. Jong-kyun wasn’t able to give specific numbers, but we know from history that the handset is outpacing its predecessor, which took five months to make eight digits in sales. As for the goal, Sammy previously pegged the 10 millionth unit for early July, noting that it was fighting component shortages along the way — all in all, mid-month isn’t too far off. Thinking of helping the firm bolster its numbers further? We’ve got a whole series of reviews you may want to take a look at.

 

 

from Engadget

From Engadget: UCLA creates transparent solar cell, dreams of current generating windows

UCLA creates transparent solar cell, dreams of current generating windows

Transparent photovoltaics have yet to grace the face of your smartphone, but don’t give up hope — UCLA researchers are working on a new see-through solar cell that’s showing potential. Using a new type of polymer solar cell, the team has been able to build a device that converts infrared light into electrical current. Current prototypes boast 4 percent energy conversion efficiency at 66 percent transparency — not crystal clear, but certainly clean enough to peer through. According to a study in ACS Nano, the technology could be used in “building-integrated photovoltaics or integrated photovoltaic chargers for portable electronics.” Translation? It could one day be used to build solar windows or better sun collecting smartphones. Don’t get too excited though, the technology still has a ways to go before any of these dreams come to fruition. Still, feel free to head past the break for the team’s official press release, or skip to the source to take in the full academic study.

Continue reading UCLA creates transparent solar cell, dreams of current generating windows

 

from Engadget

From Popular Science – New Technology, Science News, The Future Now: For the First Time, X-Ray Video Looks Inside Live Working Batteries

Watching Batteries at Work Senior staff scientist Mike Toney and postdoc Johanna Nelson inspect the transmission X-ray microscope at SLAC’s Stanford Synchrotron Radiation Lightsource, a powerful device that takes nano-scale images of chemical reactions in batteries while they are running. Matt Beardsley/SLAC

Powerful X-ray images are showing for the first time what happens inside a working battery as it discharges power, and it could lead to improvements for a new type of battery that promises better storage capacity at a lower cost.

Electric cars and other technologies use lithium-ion batteries, which are useful in part because of their high energy density. Cheaper lithium-sulfur batteries could have even higher densities, but they stop working after only a few charge-discharge cycles. Researchers at the SLAC National Accelerator Laboratory are watching them work to determine how they could be improved.

SLAC postdoc Johanna Nelson used X-ray diffraction and transmission X-ray microscopy to capture nanoscale images of the battery’s components, a lithium anode and a sulfur-carbon cathode surrounded by an electrolyte. They captured images of sulfur particles before, during and after battery discharge, and found some unexpected results.

Previous research on these types of batteries showed the sulfur and lithium form certain compounds when they react, trapping the sulfur permanently in new compounds. Formation of these compounds, called polysulfides, can kill a battery in just 10 charge-discharge cycles – not nearly good enough for almost any tech, let alone something like an electric car. But this new research shows it may not be as bad as expected. Very few of these polysulfides actually went into the electrolyte, far less than other research had shown. This means it might not be too difficult to trap them at the cathode, preventing any from leaking into the electrolyte and harming the battery.

“If [scientists] really want to know what’s going on inside the battery, they can’t just use standard analysis. They need a technology that tells the whole story,” Nelson tells Stanford News.

The research appears in the Journal of the American Chemical Society.

 

 

from Popular Science – New Technology, Science News, The Future Now