October / November 2021
MARKET NEWS 11 www.power-mag.com Issue 4 2021 Power Electronics Europe X-FAB Becomes First Foundry to Offer High-Volume Micro-Transfer Printing X-FAB Silicon Foundries is now able to support volume heterogeneous integration via Micro-Transfer Printing (MTP), thanks to a licensing agreement that has just been secured with X-Celeprint. This means that a diverse range of semiconductor technologies may be combined together, each being optimized for particular functional requirements. These will include SOI, GaN, GaAs and InP, as well as MEMS. X-Celeprint’s proprietary massively-parallel pick-and-place MTP technology stacks and fans-out ultra-thin dies based on different process nodes, technologies, and wafer sizes. It results in the formation of virtually monolithic 3D stacked ICs, which have enhanced performance, greater power efficiency, and take up less space. Furthermore, all this can be achieved at an accelerated rate, thereby significantly shortening time-to- market. In order to become the first foundry to provide customers with MTP- based heterogeneous integration, X-FAB has made substantial investments over the last two years. It has also established new optimized workflows and cleanroom protocols. This will allow customers to work with the foundry on heterogeneous design projects - benefitting from a scalable business model that offers a clear migration to volume production. “By licensing X-Celeprint’s MTP technology, we are uniquely positioned in our ability to facilitate the incorporation of numerous different semiconductor technologies. Our customers will be able to utilize a technology that no other foundry is offering, and existing X-Celeprint customers may now tap into capacity levels that will easily meet their future demands,” Volker Herbig, VP of X-FAB’s MEMS business unit, explains. “As a result, we can assist customers looking to implement complete multifunctional subsystems at the wafer level, even when there are high degrees of complexity involved. Signal conditioning, power, RF, MEMS, and CMOS sensors, optoelectronic devices, optical filters, and countless other possibilities will all be covered.” www.xfab.com The rapid growth of the electric vehicle market has driven the development, manufacture, and sales of batteries, especially lithium-ion batteries. In the meantime, interests in solid-state batteries have attracted the attention of material providers, battery vendors, component suppliers, automotive OEMs, and investors. The popular discussions on solid-state batteries have brought development both in academia and industry. With an increasing number of players working in this field and some milestones being achieved, the solid- state battery market is expected to grow to $8 billion by 2031, according to IDTechEx’s new report “Solid-State and Polymer Batteries 2021-2031: Technology, Forecasts, Players”. In 2015, Volkswagen got a 5 % stake in QuantumScape, Dyson acquired Sakti3, Bosch acquired SEEO, and Johnson Battery Technologies sold its solid-state batteries to BP. Although in 2017, Bosch gave up SEEO and was selling the company, and Dyson abandoned the technologies of Sakti3, the interest in solid-state batteries never vanished. Ford, Samsung, and Hyundai invested in Solid Power. The latter also partnered with BMW. Renault, Mitsubishi, and Nissan invested in Ionic Materials. In 2020 there were the newly developed solid- state batteries based on argyrodite electrolyte by Samsung and a further $200 million investment by Volkswagen on QuantumScape. As well as the companies just mentioned, Honda, Fisker, Panasonic, CATL also got involved in this game. Flammable liquid electrolytes in most commercial li-ion batteries are considered a threat to safety as they can easily shrink under high temperatures, lead to short circuits and then catch fire. Replacing organic liquid electrolytes with solid-state counterparts, solid-state batteries enable safer, long-lasting batteries. Better safety means less safety monitoring electronics in the battery modules/packs. Therefore, even the initial generations of solid-state batteries may have similar, or even less energy density than conventional lithium-ion batteries, the energy available in the battery pack can be comparable or even higher than the latter. With the larger electrochemical window that the solid electrolytes can provide, high voltage cathode materials can be used. In addition, high-energy-density lithium metal anode can further push the energy density beyond 1,000 Wh/l. These features can further make the solid-state battery a game- changer. Lithium-ion battery manufacturing has been dominated by East Asia, with Japan, China, and South Korea playing a significant role. US and European countries are competing in the race, shifting the added values away from East Asia and building battery manufacturing close to the application market. New material selection and change of manufacturing procedures show an indication of a reshuffle of the battery supply chain. From both technology and business point of view, the development of solid-state batteries has become part of the next- generation battery strategy. It has become a global game with regional interests and governmental supports. Opportunities will be available with new materials, components, systems, manufacturing methods, and know-how. With most companies’ mass production plans, like Japan ~2025-2030, Europe ~2025-2026, mainland China & Taiwan ~2022-1023, the solid-state battery will likely take off after 2025, although small- scale production may happen even earlier. The car plug-in market will take the largest share (66 %) in 2031, followed by smartphone applications. www.IDTechEx.com/ Solid-State Battery Market Will Grow to $8 Billion by 2031
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