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Battery’s Secret

Battery’s Secret

Two Innovations Key to New Battery

The small PowerPlane battery holds huge potential as a building block for bigger batteries for power tools, renewable-energy storage and electric and hybrid vehicles. Analysts predict the battery market will grow by billions of dollars in the next five years.
Courtesy of Planar Energy Devices.

The NREL-developed buried-anode lithium ion battery,thinkpad t41 battery hinges on two key innovations. The first was a materials science breakthrough by U.S. Department of Energy scientist John Bates’s Oak Ridge National Laboratory team in 1991. They developed the first thin film solid electrolyte using a glass called lithium phosphate oxynitride, or LiPON. A solid-state lithium-ion battery was now possible, which promised increased safety (lithium ion batteries with liquid electrolytes have been known to cook themselves in a process called thermal runaway, which yields flaming gases) while enabling production using processes familiar to the microelectronics industry. Solid-state lithium ion batteries also can tolerate extreme temperatures and can be recharged thousands of times, subsequent testing has shown.

The other innovation, a process-engineering breakthrough, involved three NREL scientists in a group specializing in electrochromic technologies that dynamically control transmitted light in high-performance windows. Although the connection with batteries may seem tenuous, “thin-film electrochromics are nothing more than poor batteries that change color,” as Ed Tracy, an NREL senior scientist, explained it.

In late 1999, Tracy and colleagues Se-Hee Lee and Ping Liu had recently wrapped up a battery project when they came up with the idea that eventually became the buried-anode thin-film battery.

Oak Ridge had made a solid-state battery comprised of three thin layers. On the top was the anode, in the middle was the electrolyte, and below that was the cathode. The anode, rich in lithium, had to be shielded from the outside world or it would corrode quickly from moisture in the air.

Process Cut by a Third

This drawing shows where the anode is “buried” in the layers of the thin-film microbattery.

At NREL, Lee, Liu and Tracy decided to try applying the LiPON electrolyte first, then layering the cathode over it. There was no anode at all. But the cathode contained a lithium compound. When a charge was applied, the lithium in the cathode migrated through the glass electrolyte and formed a metal layer on the other side — that is, the battery “manufactured” its own lithium anode. Not only that, the anode was buried under the glass electrolyte such that the atmosphere couldn’t touch it.

They came in on a Saturday and made a battery. The following week, they tested it, then broke the news to their group leader, NREL Senior Scientist Roland Pitts, who liked it despite its lack of application in high-end office windows. In addition to avoiding corrosion, the approach would make solid-state battery manufacturing easier.

“The thinkpad t42 battery itself is three layers, but we form it by making just two layers,” Pitts said. “So we get rid of a third of the process and that’s pretty cool.”

But without an industrial partner — and being somewhat far afield from their day-to-day electrochromics work — the new battery was shelved for five years. The patent on the technology issued in 2004. Soon thereafter, the buried-anode lithium ion battery attracted the interest of Battelle Ventures, which brought in serial entrepreneur M. Scott Faris to help with assessment of the business potential. In 2007, Faris launched Planar Energy Devices as a NREL spin-off to commercialize the technology. Pitts recently returned to NREL from a two-year sabbatical to serve as the company’s chief science officer, and NREL continues to work with Planar on technology development.

Big Plans for Tiny Battery

Despite the microbattery’s promise in such applications as wireless remote sensors, Planar is thinking big — to markets for power tools, renewable-energy storage and electric and hybrid vehicle batteries(thinkpad t41 battery,thinkpad t42 battery), which analysts predict will grow by billions of dollars in the next five years. Planar expects to have large-scale buried-anode batteries on the market in two years, says Andrea Wesser, the Planar product manager for the new battery technology.

Further process innovations will be crucial to entering such markets, she said. One of the key changes will be replacing LiPON with a new solid-state electrolyte — one that needn’t be applied in a vacuum chamber. Vacuum chambers sharply increase production costs while limiting battery size, she said.

“Once you remove it from the vacuum chamber, you can introduce solid-state batteries into all applications,” she said.

To that end, NREL is working on ways to deposit the buried-anode battery’s cathode material outside a vacuum. Planar is doing the same with the electrolyte, Pitts said.

“The ultimate aim is to be able to use the same process technologies to inexpensively make a wide range of batteries for a wide range of vertical markets,” Pitts said.

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Lenovo battery temperature

Temperature characteristics: When the rechargeable battery in the electrolyte and the electrode body rate of migration of film and temperature are closely related, if the temperature fluctuations significantly influence the technical performance of rechargeable batteries.

Storage temperature: Under normal circumstances, the thinkpad t60 battery due to internal fluid, and low temperature will destroy the long-term storage of chemicals inside the battery, it is proposed conditional case, the temperature Storage is not lower than -20 ℃, while the high temperature also the battery can not achieve its rated capacity, the storage temperature generally not exceeding 40 ℃. Normal storage temperature of the rechargeable battery of -20 ℃ ~ 65 ℃ when the temperature dropped below -20 ℃, the battery will be consolidated into the electrolyte, the internal resistance of the battery becomes infinite, the battery will not be available. When the temperature exceeds 65 ℃, the electrolyte side reactions occur which produce large quantities of gas, electrode deterioration of the film adhesive resin can occur, causing the entire cell aging and declining, even short-term break.

Charging temperature: In general, accusing a temperature of 0 ℃ ~ 45 ℃. Discharge temperature: In general, the discharge temperature of -20 ℃ ~ 65 ℃, but in some cases, can use batteries at low temperature and high temperature thinkpad t60 battery. Battery before leaving the treatment plant after a general discharge, to prevent the transit due to vibration or other causes of short circuit, usually a new battery is not charged or containing only about 20% of electricity. A new battery or long-term unused because the battery may not fully activate the active substance before use usually takes two or three cycles through the small streams (0.1C) charge and waste treatment, in order to reach the rated capacity. A long time not to use the state of the battery must be stored and can be pre-filled 50% to 100% of electricity after storage, has proposed to charge the battery once every three months to restore the capacity of saturation.

Battery Caution: 1.Do not incinerates or disassembles the lenovo battery, in which chemicals are corrosive, will damage the skin and eyes. 2. Do not pull on the drum tracks or connectors; solder joints, and joints to prevent injuries. 3. Different types of batteries can not be mixed. 4. Different types of welding of the battery, welding, etc., you must use the connection piece. 5. First before use with a small current is fully charged. 6. Parallel does not charge, or they will produce irregular charging currents. 7. can not be used in reverse, short-circuit the battery or do. 8. Fully discharge the battery; it should be to extend the charging time to reach power saturation. Please 9. batteries stored in a cool, dry, ventilated, temperature does not exceed 45 ℃ environment. 10. in the battery is fully charged or half-full situation; do not store a large number of batteries at high intensity. 11. Do not contact the acid gas to prevent the fire near the source.good batteries:

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