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Scientists have spent decades searching for a safe alternative to the flammable liquid electrolytes used in lithium-ion batteries.Now Stanford University researchers have identified nearly two-dozen solid electrolytes that could someday replace the volatile liquids used in smartphones, laptops and other electronic devices. The results, based on techniques adapted from artificial intelligence (AI) and machine learning, are published in the journal Energy & Environmental Science."Electrolytes shuttle lithium ions back and forth between the battery's positive and negative electrodes," said study lead author Austin Sendek, a doctoral candidate in applied physics and first author on the paper. "Liquid electrolytes are cheap and conduct ions really well, but they can catch fire if the battery overheats or is short-circuited by puncturing."Battery fires led to the recent recall of nearly 2 million Samsung Galaxy Note7 smartphones, the latest in a series of highly publicized lithium-ion battery failures."The main advantage of solid electrolytes is stability," Sendek said. "Solids are far less likely to blow up or vaporize than organic solvents. They're also much more rigid and would make the battery structurally stronger."Searching for solidsDespite years of laboratory trial and error, researchers have yet to find an inexpensive solid material that performs as well as liquid electrolytes at room temperature.Instead of randomly testing individual compounds, the team turned to AI and machine learning to build predictive models from experimental data. They trained a computer algorithm to learn how to identify good and bad compounds based on existing data, much like a facial-recognition algorithm learns to identify faces after seeing several examples."The number of known lithium-containing compounds is in the tens of thousands, the vast majority of which are untested," Sendek said. "Some of them may be excellent conductors. We developed a computational model that learns from the limited data we already have, and then allows us to screen potential candidates from a massive database of materials about a million times faster than current screening methods."To build the model, Sendek spent more than two years gathering all known scientific data about solid compounds containing lithium."Austin collected all of humanity's wisdom about these materials, and many of the measurements and experimental data going back decades," said Evan Reed, an assistant professor of materials science and engineering and a senior author on the paper. "He used that knowledge to create a model that can predict whether a material will be a good electrolyte. This approach enables screening of the full spectrum of candidate materials to identify the most promising materials for further study."Screening criteriaThe model used several criteria to screen promising materials, including stability, cost, abundance and their ability to conduct lithium ions and re-route electrons through the battery's circuit.Candidates were selected from The Materials Project, a database that allows scientists to explore the physical and chemical properties of thousands of materials."We screened more than 12,000 lithium-containing compounds and ended up with 21 promising solid electrolytes," Sendek said. "It only took a few minutes to do the screening. The vast majority of my time was actually spent gathering and curating all the data, and developing metrics to define the confidence of model predictions."The researchers eventually plan to test the 21 materials in the laboratory to determine which are best suited for real-world conditions."Our approach has the potential to address many kinds of materials problems and increase the effectiveness of research investments in these areas," Reed said. "As the amount of data in the world increases and as computers improve, our ability to innovate is going to increase exponentially. Whether it's batteries, fuel cells or anything else, it's a really exciting time to be in this field."Reference:1215F101215F2X31215F6
kynix On 2017-01-14
The piezo actuator with haptic feedback and integrated sensor functionality has been presented by TDK Corporation at this year’s electronica. The new actuator features unrivalled performance in terms of acceleration, force and response time, and offers an unprecedented quality of haptic feedback. The compact and powerful actuator enhances the sensory experience of HMIs significantly by engaging the full range of human tactile sensitivity.Driven by the miniaturisation of devices and applications and the requirements for more ease of use, multifunctional touchscreens and touch surfaces have become nearly ubiquitous. While these human-machine interfaces (HMI) do feature many advantages, there is one important drawback: the haptic feedback to user actions is very limited and not strong enough.As a result of this such HMIs are often less user-friendly and prone to errors. They can sometimes be s safety risk.The new actuator is based multilayer piezo plates with cost-effective copper inner electrodes. Thanks to the multilayer technology the actuators can be driven with relatively low operating voltages up to 120V.When activated, the piezo plates only expand minimally in the z axis, but due to the constant volume of the piezo effect contract simultaneously in both the x and y axes. The new component employs cymbals on both sides of the plate as levers to amplify the contraction by a factor of 15 in the z axis. The actuator is initially available in two types, a 5N type that achieves a displacement of up to 100µm and a 20N type that can achieve a displacement of more than 200µm. Despite their compact dimensions of 12.7x12.7x1.6mm and 26x26x2.4mm, respectively, the new actuators can generate forces of up to 5N and 20N.Compared with conventional electromagnetic solutions such as eccentric rotary motors (ERMs) and linear resonant actuators (LRAs), the piezo actuator with haptic feedback features the highest acceleration and force, the lowest insertion height and the fastest response time, all in a single component with integrated sensor functionality: Under a load of 0.1kg, the 5N type delivers an acceleration of 5.0g with a rise time of 2ms while the 20N type features 15.0g after just 1ms.Unlike conventional electromagnetic solutions the piezo actuator with haptic feedback can excite the entire stimulation range between 1-1000Hz. They have no significant frequency or amplitude limitations for customized haptic feedback to key human mechanoreceptors. In this way, the new actuator enables designers to custom develop high-definition haptic feedback profiles that users expect from cutting-edge HMIs. Applications for the piezo actuator with haptic feedback can be found, for example, in vehicles, smartphones and tablets, household appliances, ATMs and vending machines, game controllers, industrial equipment and medical devices. Main applicationsVehicles, smartphones and tablets, household appliances, ATMs and vending machines, game controllers, industrial equipment and medical devices.Main features and benefitsVery large forces of 5N and 20N, respectivelyLarge displacement of 100µm and 200µm, respectivelyExtremely low insertion height of 1.6mm and 2.4mm, respectively Reference:KY45-EKMB1203111KY45-AMN41122KY45-AMN14112
kynix On 2016-11-15
Fujitsu Semiconductor Europe today announced a new arrival to its FerVID family of chips for RFID tags. As with all members of the FerVID family, the MB89R112 series uses ferroelectric memory (FRAM) for fast write speeds, high-frequency rewritability, radiation tolerance and low-power operation. With industry-leading 9 KB memory, the series offers tailored solutions for factory automation and medical equipment as well as for embedded and industrial applications. Since 2004, Fujitsu has developed FRAM products as part of the FerVID family with two frequency bands, for use as chips in high-functionality RFID tags operating in the HF band (13.56 MHz) and UHF band (860 to 960 MHz). Today, its products serve a wide range of applications, including chips for data-carrier tags in the factory automation and maintenance sectors, chips capable of withstanding gamma radiation or electron beams for the medical and pharmaceutical sectors, and chips with serial interfaces for embedded applications.The new MB89R112 series includes 9 KB of FRAM, the greatest density available in an RFID chip operating in the HF band as defined in ISO/IEC 15693. Of this 9 KB, 8 KB is provided as user memory, enabling access by read/write operations to the entire 8 KB region as defined in ISO/IEC 15693. The series will be offered in two variants, with 24pF and 96pF input capacitance. Writing 8 KB of data takes approximately four seconds, a high-speed operation that is six times faster than speeds achieved by E2PROM products. The greater data volume available on RFID tags enables greater efficiency for applications such as product lifecycle traceability management – from manufacturing to logistics, use and disposal – or on-site data logging for equipment maintenance records.The market is demanding higher-capacity memory, plus RFID connectivity to sensors and microcontrollers, so as to facilitate the wireless modification of product operating parameters or the logging of environmental factors during distribution. These features would benefit production control in automotive and electronics manufacturing, as well as maintenance applications in aviation, road-building, construction and civil engineering.The MB89R112QN products enable these features by supplementing the HF RFID interface with an additional SPI serial interface for microcontroller connectivity. Since the 8 KB of user memory in FRAM can be accessed from the microcontroller via SPI, shared memory regions can be used both for data logging and as a parametric area for changing the microcontroller's operating parameters.Application examples include logging environmental readings for logistics, detecting equipment errors, modifying electronic displays, altering sensor threshold values, changing firmware settings, plus many other novel and innovative applications that were previously unworkable.
kynix On 2016-10-10
Research challengeElectrical harvesting is the conversion of freely available ambient energy such as vibrations into electrical power. This power can then be used to supply low-power, autonomous electronic semiconductor systems such as wireless sensor networks used in the energy, transport, aeronautical and military sectors.Energy harvesters can be used to replace batteries in wireless devices reducing the maintenance costs of replacing the millions of batteries that are thrown away each year and enabling these wireless sensors to be placed in inaccessible and hazardous locations.Research at Southampton is leading the way in developing devices that can turn these vibrations into useable energy in a cost-effective, user-friendly way.ContextIn the future energy harvesting is set to play a significant role in the powering of autonomous electronic systems and wireless sensor networks around the globe. Our solutionSouthampton’s research team has been working for more than 15 years on a solution to our growing energy needs. Since their research began they have produced the world’s first piezoelectric vibration energy harvester and high efficiency electromagnetic energy harvesters. Their work has placed them at the forefront of vibration energy harvesting research internationally.Today they continue to lead the research into realising the full potential of vibration energy harvesting.What was the impact?Southampton’s research has spearheaded the development of a multi-million pound industry and enabled large-scale deployment of wireless sensors in the rail network and other industry.In 2004 the Southampton team commercialised its research by launching the spin out company Perpetuum. The company is a global leader in vibration energy harvesting and has already attracted almost £10m in venture capital. It has developed the world’s first practical electromagnetic micro-generator that is capable of delivering enough power to transmit large amounts of data. This wireless sensor system is already monitoring the condition of bearings on hundreds of UK and European trains to improve rail safety and reduce maintenance costs. Its generators have also been used by Shell to help monitor the condition of its gas field equipment in Norway.Southampton’s research has also helped develop international standards, influenced the decisions of funding bodies and raised the profile of energy harvesting among industry and the wider public.
kynix On 2016-08-16
A server architecture is complex and involves many different hardware and software components. All components in a server collaborate to deliver the required computational services to applications and users. One crucial component that makes the rest of the components operational is the "connector".A connector serves as a bridge that enables connections and signaling between components within the server. Therefore, this article talks deeply about connectors in server architecture, covering their role and highlighting the different types of connectors used in servers.How Connectors Help to Achieve Connections and Signaling Between Components Within the ServerThe connections and signaling in the server are highly dependent on connectors. Below are some common ways through which connectors ensure connections and signaling between components:Physical Connections:Connectors provide the means to physically connect components to the motherboard and each other. Connectors like PCIe slots, power connectors, USB ports, and SATA connectors provide physical connection to CPUs, storage drives, and other components.Power Distribution:Server components need power to function, and ATX-style connectors provide the medium for that. They route the required electricity from the power supply to each component in the server, such as the motherboard, CPU, connected devices, etc.Data Transfer:Data transfer is an essential activity in the server where different components exchange data with each other continuously. Ethernet ports and other connectors help to ensure fast data transfer between components within servers or between servers and other external devices.Carry Signals and Control Information:Connectors not only connect components, but they also carry signals and control information. Front-panel connectors provide pins for status LEDs, power buttons, and other purposes for letting users know about the server state.Server Components Expansion:The server often needs additional components, like network adapters, graphic cards, etc. Connectors like PCIe slots allow servers to connect additional components and address the requirements effectively.In short, connectors are the crucial components of servers that provide the connection and signaling route for the rest of the components. They ensure that the server delivers the functionality as required and easily adapts to different workloads.Different Types of Connectors Used in ServersNow that we know the necessity and use of connectors in servers, let's discuss the different types of connectors commonly used in servers. Although the list of connectors can vary from server to server, below are the common ones you will see on most servers:1. LGA SocketsThe Land Grid Array (LGA) socket is a connector that connects the CPU with the server. This socket includes the pins, while the CPU has the corresponding flat pads. So, the LGA socket's pins connect with the CPU pads. Since the pins are on the socket, it helps to protect the CPU pins from getting damaged.Today, LGA sockets are the latest of all sockets. Many Intel sockets are LGA-based, such as LGA 1150, LGA 120, etc.2. PGA SocketsThe Pin Grid Array (PGA) socket is another connector to connect the CPU to the server. PGA sockets are opposite to LGA sockets, as the pins are on the CPU while the socket has holes to make the connection.Intel 80386 and 80486 processors use PGA sockets. Since PGA sockets make the CPU pins more vulnerable to damage, they are less commonly used in today's server designs.3. Power ConnectorsPower connectors are used to provide the power to the motherboard and other components. There are two common types of power connectors used in servers, i.e., ATX power connector and EPS power connector.ATX power connector is a 20-24 pin connector that supplies power from the power supply unit to the server's motherboard at various voltage levels. In contrast, an EPS power connector is an 8 pin (4+4 pin) connector that provides additional power to high-performance CPUs for consistent power delivery.4. PCIePeripheral Component Interconnect Express (PCIe) is a serial expansion bus standard and one of the most important components of a server. Its job is to connect the server to one or multiple peripheral devices, such as network adapters, GPUs, etc.A typical server contains multiple PCIe slot sizes (such as PCIe x1, x8, and x16) to connect different card types. It is commonly used to connect high-speed server components5. Memory SlotsMemory slots are used to install Dual In-Line Memory Modules (DIMMs). DIMMs modules hold the memory chips on the motherboard. So, memory slots provide the slots DIMMs need.Mostly, a server has multiple DIMM slots, which empowers users to install a large RAM depending on the workload.6. M.2 SlotsM.2 slots are the alternative to mSATA mini PCI Express that provides a compact, high-speed storage solution for SSDs. These slots are used to connect SSDs as primary storage in servers.M.2 slots are becoming more popular in today's servers as the use of SSDs and the desire for high-performance storage in compact size is rising. 2242, 2262, 22110, and others are common M.2 sizes, where each size reflects the SSD length in millimeters.7. Audio Interfaces Audio interfaces are less common connectors in servers but are used where there is the need to process or output audio. They are used mostly in media servers and provide input and output audio capabilities.Audio interfaces often come in the form of 3.5mm audio ports or digital audio connectors (S/PDIF) for providing input and output capabilities.8. USB PortsUSB ports are seen in almost all servers today due to their compatibility and versatility. USB ports are used to connect a wide range of devices, such as USB drives, keyboards, etc.They can be used to transfer data to and from servers and connect mice, printers, or other external devices.9. Ethernet PortsEthernet port is another usable connector in a server that provides network connectivity. Servers often have multiple ethernet ports to ensure smooth connectivity and fast data communication.Besides the above nine common connectors in servers, you can find many other connectors as well, such as VGA/HDMI ports, SAS connectors, SATA connectors, and similar others. In short, there exists a wide range of server connectors that ensure servers operate as required.ConclusionA server architecture is highly dependent on connectors. The connectors play a vital role in the server's operations, reliability, and expandability. Simply put, connectors are all-in-one components that help power the rest of components, transfer data within/outside the server, expand server capabilities, carry signals, and do much more. Moreover, technological advancements are further making connectors more advanced and efficient to fully more advanced server architecture needs. To sum up, servers are not operational without connectors, making connectors the lifeblood of server architecture.
Kynix On 2023-09-11
Researchers at Tokyo Institute of Technology have devised a low-cost approach to developing all-solid-state batteries, improving prospects for scaling up the technology for widespread use in electric vehicles, communications and other industrial applications. Ever since batteries were invented over 200 years ago, there has been a drive to improve quality and performance at reduced costs.Compared to common lithium-ion batteries that contain lithium ion conducting liquids, all-solid-state batteries of the future promise a suite of advantages: improved safety and reliability, higher energy storage and longer life cycles. The discovery of ‘superionic’ conductors — solid crystals that enable fast movement of ions — is spurring the development of such dream batteries, but promising designs have so far relied on the use of rare metals such as germanium, making them too expensive for large-scale applications. Ryoji Kanno and colleagues at Tokyo Institute of Technology (Tokyo Tech) have now discovered a new material with a low-cost, scalable approach that involves substituting germanium for two more readily available elements: tin and silicon. The new material achieved an ionic conductivity that exceeds that of liquid electrolytes. Reporting their findings in Chemistry of Materials, the team states: "This germanium-free lithium conductor could be a promising candidate as an electrolyte in all-solid-state batteries." Due to its high chemical stability and ease of fabrication, Kanno says that the new material widens the possibilities of fine-tuning solid electrolytes to meet diverse industry and consumer needs. In 2011, Kanno and his team, working in collaboration with Toyota Motor Corporation and Japan's High Energy Accelerator Research Organisation (KEK), published a landmark paper in Nature Materials that introduced a solid electrolyte with the structure Li10GeP2S12 (LGPS). This material became an important forerunner in the race to develop viable all-solid-state batteries. It exhibited an ionic conductivity of 1.2x10-2S cm-1 at room temperature, a level comparable with — and even exceeding some — liquid electrolytes used in existing batteries. The team went on to design other solid electrolytes based on the same LGPS crystal structure, with promising results. In their latest study, the researchers kept the same framework structure of LGPS, and finely adjusted the ratio and positioning of the tin, silicon and other constituent atoms. The resulting material LSSPS (composition: Li10.35[Sn0.27Si1.08]P1.65S12 (Li3.45[Sn0.09Si0.36]P0.55S4)) achieved an ionic conductivity of 1.1x10-2S cm-1 at room temperature, almost reaching that of the original LGPS structure. Although further work will be required to optimise performance for different usage purposes, the new material raises hopes for low-cost production without sacrificing performance. Kanno envisions that in addition to meeting current battery needs across all sectors, all-solid-state batteries will expand the possibilities of responding to new user needs arising from the IoT and the shift towards smart systems, as well as powering robots, drones and space and aircraft technologies among others in future. Ref.KY605-NH12VPKY605-NH15VP
kynix On 2017-07-20
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