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If you think the world is flooded with a mind-boggling volume of digital content, then you might be just a amazed to learn about the sheer wealth of information and business opportunities that will be uncovered at this year’s SEMICON Japan as the event goes full digital.To start, more than 160 companies will exhibit their semiconductor manufacturing gear and services on the virtual show floor of Japan’s premier event for the semiconductor manufacturing and design supply chain. Add to that over 80 presentations and panels that feature global industry executives, visionaries and experts offering insights into the latest microelectronics developments, trends and technologies, and it’s easy to see how SEMICON Japan 2020 Virtual is designed to help attendees grow their businesses and the industry drive the next wave of innovations that promise to address some of the world’s greatest challenges across healthcare, the environment, transportation and other industries.Best of all, it will all be available at your convenience from your office or home 24 hours a day, making it safe and easy for you and others from all over the world to attend. Following is what’s in store at SEMICON Japan 2020 Virtual to help lead you into the future.Leading Japanese Securities Analysts to Weigh in What’s Ahead for the Chip Equipment Sector in 2021 For the first time, SEMICON Japan will feature Bulls Bears as Japan’s’ five top securities analysts focus on the 2021 outlook for the global semiconductor equipment sector. The December 17th event will include discussions on the COVID-19 pandemic’s impact on the semiconductor industry, the continuing geopolitical tensions that are forcing the industry to reconfigure its supply chains, the fast-growing China market and cutting-edge applications that are powering industry growth. The perspectives from Japan’s investment community are sure to be compelling as the region supplies one-third of the global semiconductor industry’s chip manufacturing equipment.Moderated by Akira Minamikawa of OMDIA, the panel will include these experts:Three Visionaries to Explore the Digital TransformationPowered by semiconductors, the fourth industrial revolution is driving digitalization globally, remaking societies to bring more efficiencies and conveniences to our work and home lives and help more people prosper. But the flip side of those tremendous benefits is the risk that wealth will be concentrated in the hands of people in positions of power, companies and nations. Democratizing economic development remains a serious challenge worldwide.Addressing this pressing issue, the Opening Panel on December 11 will feature prominent visionaries from political, academic and industrial communities including the following:Sony’s Leading-Edge Electric Car and Nissan’s Driver Assistance System to Highlight Automotive InnovationsCars are becoming more like smartphones on wheels, rapidly filling with more and more semiconductor chips every year with electrification and electronic driver-assisted systems to key drivers of this growth. At the SMART Mobility 1 session on December 14, two pioneering companies – Sony and Nissan Motor – will focus on both areas of semiconductor innovation.Sony’s Vision-S concept car, exhibited at CES 2020, astonished many in the electronics ecosystem and the automotive industry. What is Sony’s vision behind the vehicle? Izumi Kawanishi, Senior Vice President, AI Robotics Business at Sony will share the latest on the initiative.Nissan, maker of the pioneering LEAF electric vehicle, is the first Japanese carmaker to equip a car – its new Skyline – with the ProPILOT 2.0 driver assistance system for hands-off highway driving. Nissan Executive Vice President Asako Hoshino will provide an update on the company’s driver assistance system strategy and plans.Quantum Computing Meets Chip Manufacturing for the First Time at SEMICON Japan In contrast with current computer systems that use bits (binary 0 or 1 state) for computing, quantum computers leverage quantum superposition (0 and 1 states exist at once) to quickly solve highly complex problems that might take traditional supercomputers hundreds or even thousands of years to tease out. American physicist Richard Feynman promoted quantum computer as early as 1982, but it wasn’t until nearly two decades later and long after his death that quantum bit circuits emerged for use in superconductive materials.With quantum circuits and devices requiring state-of-art semiconductor processing technology, The Era of Quantum session on December 15 at SEMICON Japan 2020 Virtual will discuss necessary advances in chip manufacturing technology to enable the next generation quantum computing. The session will be the first time SEMICON Japan connects the semiconductor manufacturing and quantum computing communities.The program will feature the following experts:Strategies for Sustainable Semiconductor Industry GrowthSemiconductors are giving rise to a hyper-connected world that is fueling demand for staggering volumes of chips, pressuring the electronics industry to uncover new ways to increase manufacturing efficiency while reducing power consumption in a bid to help combat climate change. The Grand Finale Panel composed of executives from Japan’s semiconductor supply chain and a supervising ministry will gather for the Grand Finale Panel on December 18 to discuss ways the industry can achieve sustainable growth through innovation with a focus on energy savings and an new process technologies such as extreme ultraviolet lithography (EUV), which promises to enable electronics devices that are more power powerful, cheaper and more energy-efficient.Panelists include the following:Register TodayThe SEMICON Japan 2020 Virtual All-In Pass provides online access to all 80 presentations and panels, which will be available on-demand for replay until January 15, 2021. What’s more, all eight keynote programs will feature English subtitles. For complete information of the exposition, programs and registration, visit the SEMICON Japan website.I look forward to seeing you virtually at the event!Jim Hamajima is president of SEMI Japan.
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Solving challenges in semiconductor manufacturing requires an ongoing collaborative effort by customers, device makers, equipment and materials suppliers, and academia. ASMC 2021 will continue efforts to help the industry overcome these hurdles. To that end, we are now soliciting abstracts from industry experts across all areas of semiconductor manufacturing for presentations at the event, May 3-6, 2021 at the Saratoga Hilton/Saratoga Springs City Center in Saratoga Springs, New York.The conference provides an unparalleled platform for semiconductor professionals to network and learn the latest information in the practical application of advanced manufacturing strategies and methodologies. ASMC 2021 will be co-chaired by Ishtiaq Ahsan, Ph.D. of IBM Research and Alexa Greer of KLA.We’re looking for presentations in topic areas including the following: Advanced Metrology Advanced Equipment Processes and Materials Contamination Free Manufacturing Big Data Management and Mining Defect Inspection and Reduction Equipment Optimization Factory Automation Industrial Engineering Smart Manufacturing Yield Methodologies Click here to submit an abstract for a technical presentation. Provide an extended abstract of no more than two pages (max. of 1000 words, MS Word or PDF) with supporting data, charts, figures embedded in the last page. See author kit for details. Summarize the topic and theme in as much detail as allowed by the word count limitation. Include title, author(s), company affiliation(s), contact information, topic and five key words describing the work. The final technical manuscript must show a complete set of data to support initial abstract. Here are key deadlines and dates for industry experts to keep in mind: Abstracts Due: October 30, 2020 Author Notification: December 15, 2020 Manuscripts Due: February 9, 2021 Final Manuscripts Due: April 6, 2021 Presentations Due: April 20, 2021 Conference Dates: May 3-6, 2021 ASMC 2021 could be held as a virtual event depending on progress in containing COVID-19. Whether the event is on-site or virtual, all abstracts accepted for presentation will be published by IEEE. Speakers should be prepared to present live or online.Speakers also may be invited to publish their papers in a special section of ASMC 2021, which will be featured in IEEE Transactions on Semiconductor Manufacturing. All technical presentations will be considered for the ASMC Best Paper Award sponsored by Entegris. Students presenting an oral paper or poster will be considered for the ASMC Best Student Paper Award sponsored by GLOBALFOUNDRIES.For a complete overview of topics and other information, please visit the ASMC 2021 Call for Papers web page.Margaret Kindling is senior manager of Programs for SEMI Americas.
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At SEMICON West 2020, the Honorable Al Gore, former U.S. Vice President and recipient of the Nobel Peace Prize for environmental activism, commented on the world being in the midst of a “sustainability revolution.” Just what did he mean by that, and why bring that message to us? The answer is that he believes the digital transformation wields the magnitude of the agricultural and industrial revolutions, but with the exponential speed that the semiconductor industry created and enabled. Ok, that would put him in the right place… SEMICON West.Among a rich lineup of speakers to mark the 50th anniversary of the event – and 50 years of the semiconductor industry facilitating the innovation of the Information Age -- Gore joined other icons in their fields who graced the virtual stage for our featured keynotes. Each analyzed how microchip advances are critical to solving some of the world’s greatest challenges.As host of the conference, I had the privilege of introducing Gore; Gary Dickerson, President and CEO of Applied Materials; and, Dr. John Kelly III, Executive Vice President and Director of IBM Research, along with other renowned speakers. Their insights seemed especially timely for how our global supply chain can help to build a more sustainable future. Following are a few of the highlights from their discussions. Al Gore – The Planet Faces Existential CrisisIn his keynote conversation with Greenbiz editorial director Heather Clancy kicking off SEMICON West 2020, Gore emphasized that digital technology advances – and in particular microchip innovation – provide the greatest opportunities to overcome the world’s most epic challenges. Chip breakthroughs will be the cutting edge of what he called the rapidly growing sustainability revolution to improve energy efficiency, reduce our reliance on fossil fuels, and optimize the performance of renewable energy generated by solar, wind, and electric battery sources.“We face an inflection point as we rely more on data and communications technology, particularly in areas like cloud computing and artificial intelligence,” Gore said. “Industry is aware of this and working on it, but this meeting (SEMICON West 2020) with your present leadership marks a real turning point. It’s something to be proud of, something to be celebrated. It’s what gives me hope.”Citing Moore’s Law and enormous strides made in chip efficiency and effectiveness, Gore said that within two years smart chips will make everything from solar panels and batteries to renewable energy plants and electric vehicles to be both cost- and performance-competitive with traditional energy sources. Afterwards, renewable energy will be more attractive. Gore urged the energy-intensive semiconductor industry to shift to more renewable power sources for manufacturing. To meet this challenge, Gore encouraged the industry to embrace strategies for “step changes”: First, collaborate and share best practices more transparently across the entire microelectronics value chain. Examples already abound where “cutting-edge apps, AI, and deep learning reduced data server energy use significantly without hardware changes,” he said. Second, reduce electricity required to manufacture smarter and smaller semiconductors. Gore encouraged “all of the equipment manufacturers to work together to reduce the amount of carbon dioxide emissions in manufacturing these advanced semiconductors.” Third, follow the lead of a growing number of companies that “continue decarbonizing the power supply on which data centers operate,” he said. Fourth, work with government through the Science Based Target Initiative, which sets decarbonization limits that keep global temperatures no more than two degrees Celsius above preindustrial levels. Finally, rely on “diversity of thought” and “collective thinking” when innovating for the digital future. Research and experience prove that different points of view lead to better decisions. The technology industry has made progress in workforce diversity, but more can be done, Gore said. This last point plays to our collaborative strengths as SEMI members and an industry. “It is just unbearable to imagine a future generation living with the kinds of consequences scientists tell us would ensue if we don’t heed their warnings and solve this crisis,” Gore said, drawing parallels to the COVID-19 pandemic. “We have to accept the situation and make sure we do everything we can. I am inspired by this industry’s leadership, innovation, and spirit to rise to the challenge and make a difference.”Gary Dickerson – Making Possible A Better FutureTo ensure another 50 years of accelerating growth and innovation, today’s semiconductor leaders must share a deep commitment to a more sustainable and just supply chain industrywide.“The first thing we need to do is decouple our growth from environmental impacts,” Dickerson said in his keynote. “Our responsibility as leaders is to leave the world a better place.”Dickerson said that while he firmly believes the explosion of processing and storage data has “the potential to change the world,” the downside is that it also has the potential to rapidly expand our industry’s carbon footprint. Without dramatic change, electrical usage will continue to rise as machines generate and consume more data, compute performance progresses, and workloads from the edge to the cloud grow.“It will be impossible to create neural networks (using AI) with the rate of today’s power consumption,” Dickerson said, noting that more improvements must be made in the performance and efficiency of semiconductor devices, architectures, structures, materials, and advanced packaging.Dickerson urged the electronics ecosystem to “permanently think and act differently” by breaking down communication barriers among systems integrators, equipment suppliers, design and manufacturing service providers, and other industry players. Sharing learnings and best practices will be vital to this change, he said. Dickerson unveiled SuCCESS2030 (Supply Chain Certification for Environmental and Social Sustainability) – Applied Materials’ 10-year roadmap for creating a more sustainable supply chain – during his talk. Under the SuCCESS2030 initiative, Applied Materials will hold its suppliers to the company’s own high standards for committing to renewable energy and workforce diversity by setting targets such as: Reducing supply chain carbon emissions 15 percent in four years by relying more on intermodal shipping than air freight Transitioning the supply chain to recycled content packaging, with a target of 80 percent by the end of 2023 Eliminating phosphate-based, pre-treatment of metal surfaces by 2024 Working with trade associations like SEMI to develop diversity and inclusion strategies to increase underrepresented minorities in the workplace Dickerson said that deeper and more open partnerships between Applied Materials and its customers and suppliers have led to a number of promising outcomes. Examples include hardware and software upgrades, product and service optimizations, and improvements in chip architectures that increased throughput density for higher system performance while decreasing power and chemical consumption, costs, and space requirements. What’s more, Applied Materials recently introduced its Selective Tungsten Process Technology, which uses new materials, atomic-level designs, and ultra-clean rooms to improve the performance of interconnected transistors while lowering power consumption.Dickerson said the COVID-19 pandemic has awakened the world to the power of digital technologies that make it possible to communicate, collaborate, and share data across the globe while sheltering in place. “When I think of the world’s grand challenges, it’s clear the semiconductor industry has a critical role to play,” Dickerson said. “I strongly believe we’re in a position to shape the future and leave the world a better place.”John E. Kelly III – 50 Years That Changed The World … And We’re Just Getting Started During the past half century, semiconductors have given rise to essentially every major technology advance, Kelly said in his keynote. Microchip innovation has played a central role in rocketing humans to the moon, simulating nuclear weapons on a supercomputer, connecting people to nearly everything via mobile devices, and keeping people alive with pacemakers and other electronic medical devices.The strides in innovation have been staggering. In 1970, a semiconductor chip featured a few thousand components. Today, that number stands at 50 billion. Breakthroughs in everything from materials and chemicals to polishing, processes and interconnectivity have driven gains in power-efficiency and performance while reducing chip size.Moore’s Law is far from dead. Paraphrasing Winston Churchill, Kelly said, semiconductor innovation today is not at “the beginning of the end, but at the end of the beginning, and the best is yet to come – driven by extreme collaboration and extreme innovation to solve the world’s biggest challenges.”Kelly said he believes technology is the only answer to the onslaught of grand challenges confronting societies and people today, including air and water pollution, climate change, diminishing natural resources, storm-related disasters, food supply shortages, and the COVID-19 pandemic.Kelly lamented that the world’s response to COVID-19 illustrates that “not much has changed” since the Spanish Flu crisis a century ago. The same technology – masks – remains the primary defense. “I think if we had used digital technologies and computer modeling earlier on, we could have detected the spread of this flu” to minimize its impact, Kelly said.Today’s computer modeling and analytics capabilities aren’t quite ready yet to tackle such complex problems as pandemics, global warming, or water contamination. However, Kelly said, several game-changing technologies – all powered by semiconductors – are emerging as promising answers to our most daunting challenges.“It’s all about the data, and artificial intelligence is the way forward – it’s analytics on steroids, and many new devices will be required to drive AI at the scale of these problems,” Kelly said. “The second technology revolves around not just cloud computing but edge computing and cloud at the edge. Data will be generated in enormous amounts at the edge, which is where we will need to store and compute the data. The next is Quantum Computing. Frankly, we do not have enough computing power yet to look at some of the biggest challenges we have.”All these advances will present new challenges for the semiconductor industry, such as developing new materials, new chip architectures and new mapping structures for AI-embedded devices to reach their full potential.With many of these disruptive innovations too large for any company to solve singlehandedly, Kelly advised industry players to form more “radical partnerships.”“Extreme collaboration and extreme innovation will drive solutions to all these world challenges,” Kelly said. “The best is yet to come.”Radical partnerships… Sustainable revolutions… Extreme innovation… It’s been 50 years of SEMICON West, but it sounds like we’re just getting the real magic started. Like John Kelly said and the other keynoters emphasized, the best is yet to come.Dave Anderson is president of SEMI Americas.
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Humanity has survived almost unimaginable challenges over the past 5,000 years of documented human history. From war, famine and natural disasters to the first global pandemic in the last 100 years, more often than not, people have relied on one another to survive and thrive again. As the industry association representing the global microelectronics industry, SEMI has similarly made collaboration and community integral to the fabric of its organization. From helping members to succeed through the COVID-19 pandemic to facilitating member-driven industry standards around environmental health and safety, materials, and manufacturing capabilities, this approach shows members that standing together is better than standing alone.On the eve of the 50th annual SEMICON West (July 20-23, 2020) — the first virtual edition in SEMI’s history — I spoke with SEMI’s vice president of technology communities, Michael Ciesinski, about the role of SEMI in tackling big challenges through an active member community intent on solving problems through collaboration.SEMI: How long have you worked with SEMI and in what capacity?Ciesinski: In January 2016, I started my second tour at SEMI when FlexTech, the industry consortium I’d been leading, became SEMI’s first strategic partner. Nearly two years into that role, SEMI President CEO Ajit Manocha asked me to form Technology Communities to engage members with common interests. After FlexTech, we brought on the Fab Owners Alliance, then MEMS Sensors Industry Group (MSIG), and later the Electronic System Design Alliance (ESD Alliance).SEMI now has more than 20 communities in all, including Smart MedTech, Smart Data AI, Smart Manufacturing, Electronic Materials, and Integrated Packaging, Assembly and Test.SEMI: What is your role with Technology Communities — and how do members stand to benefit?Ciesinski: The leadership of Technology Communities ensures that SEMI’s benefits and services align to our members’ interests so we can provide member benefits that matter most. This spans forming communities where people hold common interests (e.g., advanced packaging) to facilitating standards that will promote intelligence in manufacturing (e.g., data standards for AI and machine learning) as well as providing R D funding.I’m especially proud that over the past three years, SEMI has brought more than $40 million in R D funding to our members, with most grants in the $500,000-$1 million range. We’ve been especially successful in securing funding in flexible hybrid electronics (FHE) through U.S. Army Research Laboratories (ARL), a model we first developed through FlexTech.Two recent recipients of FHE funding, GE Research and ITN Energy Systems, show how the grants are spawning partnership opportunities among commercial enterprises, R D organizations and universities. In developing lightweight, non-invasive wearables, including a human-performance sweat-monitoring patch that remotely analyzes sweat to detect hydration levels and other vital signs, GE Research is using key components such as sensors and lightweight batteries in its designs.ITN Energy Systems designed a flexible all-solid-state lithium battery that’s printed on light, flexible substrates to power small and incredibly thin applications.Universities are also benefiting by plugging into the SEMI ecosystem. In fact, 40-50 percent of funded projects are seeding commercialization by universities. This is another validation that SEMI’s collaborative, community approach to microelectronics is working.SEMI: Position, Timing and Navigation (PNT) is another hot area where SEMI has secured ARL funding. What makes this funding different and why is it important?Ciesinski: The PNT grant makes ARL funding available to the MEMS Sensors Industry Group (MSIG) members through SEMI for the first time. If you’ve ever lost GPS signal while coming out of a tunnel, you know how frustrating that is. For us, that’s an inconvenience, but for a healthcare worker in a remote location who’s waiting for a delivery of medication by drone, it could be life-critical. While that’s just one example of why we need PNT to operate when GPS isn’t available, I can imagine dozens of other important dual-use cases, including autonomous driving.SEMI: How else do Technology Communities benefit under SEMI?Ciesinski: Technology Communities need access to diverse resources to spur continuous innovation. Electronic Materials Group participants, for example, need to stay informed on regulations coming out of Asia, the U.S. and Europe that may affect their businesses. Where else other than SEMI can like-minded stakeholders congregate with people up and down the supply chain to determine whether industry-wide action is needed on regulation?SEMI: What is the importance of SEMI’s global footprint?Ciesinski: I’ve worked with many associations and managed major industry consortia. The clear advantage of SEMI is our global footprint. And that’s vital because microelectronics is a global industry involving a multitude of stakeholders that play essential roles in the supply chain.Let’s say you want to discuss EU regulations on hazardous chemicals. Rather than decipher these complexities alone, you can pick up the phone to speak with someone on SEMI’s European team to learn what’s critical.What if you’d like more information on the 20-plus new fabs that are going up in China? You can explore that question with our SEMI China or SEMI Industry Research and Statistics teams.SEMI: How has SEMI evolved over the years?Ciesinski: SEMI has a long history of providing what the industry cares about. We started in trade shows and pivoted to industry standards. We began with small silicon wafers and wafer carriers, and now within the span of 50 years we’re working on data-format standards that will support the application of AI and machine learning (ML) in the semiconductor industry.While highly varied today, data-format standards will help component manufacturers refine processes to create more efficient solutions. This ARL-funded program, which pairs SEMI members with the grant recipient, Cornell University, may offer dramatic gains in the productivity of semiconductor manufacturing.SEMI: How does SEMI’s approach to COVID-19 reflect core values of collaboration and community?Ciesinski: Together with Ajit Manocha, CMO Terry Tsao and other team members at SEMI, we pulled together a task force to help SEMI members navigate the pandemic.We tapped two existing groups, Environment, Health and Safety (EHS) and Information Technology Leadership (ITL) from the start, documenting their strategic and tactical approaches to help all members through the COVID-19 resource section of our website. The EHS section provides tips on facilities and meetings, employee policies, business travel and communications, while the ITL section lists insights on computing hardware for staff, licensing, networks, security and employee policies.Our EHS leadership team, which includes Entegris, Axcelis, Versum, and Intel, immediately started sharing best practices for sanitizing facilities. As a result of team meetings, SEMI EHS shared best practices on keeping the workforce remote and guidelines for returning people to work safely. From securing PPE and safeguarding employees and visitors by performing thermal scanning to outlining communications around potential employee exposures, EHS has provided meaningful resources for the benefit of all members.SEMI also took immediate steps in the area of advocacy. Our advocacy team in Washington, D.C., together with regional SEMI presidents around the world, have ensured that semiconductor facilities were and still are considered essential businesses in the U.S., Europe and Asia. That’s because microelectronics are foundational to fighting the pandemic.Microfluidics are critical to the Reverse Transcription (RT) Polymerase Chain Reaction (PCR) tests most commonly used for COVID-19. Sensors are embedded in the pulse oximeters that allow patients and healthcare professionals to monitor a vital rubric: oxygen saturation level. If oxygen saturation level drops into the low 90 percentiles or below, it may be time to go to the hospital for treatment.Microcontroller units are essential components in a wide range of hospital equipment, including the ventilators that may make the difference between life and death in the most seriously ill patients.SEMI: How can the ingenuity realized through microelectronics continue to help us tackle other big problems? Ciesinski: We have MEMS and sensors to thank for distributed intelligence, giving us the ability to put sensors anywhere, locally based in the field or in the packaging house.Food production is a prime example. Leveraging miniaturized wirelessly connected sensors, we can trace food through the entire production lifecycle, from the seed in the ground to the food in the warehouse and, ultimately, to the product that lands on the table.From larger enterprise such as IBM Food Trust to small startups, we’re using MEMS and sensors to improve crop yields so we can feed a human population that’s growing each year.There’s a sustainability piece as well. We’re using MEMS and sensors to reduce the amount of fertilizer or other nutrients or chemicals in the soil. That’s good for the environment and for the agricultural workers who labor in the fields.MEMS and sensors can also condense the time it takes to perform a specific task, conserving human resources.SEMI: Where do you think SEMI will go in the next decade?Ciesinski: Ten years from now, I believe we will still have our global footprint in place. I expect it will expand, particularly in Asia.We may also expand into new areas such as Latin America and Central America, which would provide at least two major benefits: People working in microelectronics would, I hope, have access to better quality of life. And diversifying the supply chain would allow nations and regions to have more control over the products they need, from PPE to medications, which may help us to better manage through the next pandemic.I am also hopeful that SEMI will be on the leading edge of helping our members communicate in much different fashion from what we have today. We’re already expanding beyond the paradigm of in-person meetings for standards meetings and conferences. As we move forward, I think we’ll see a hybrid solution to doing business, combining in-person meetings with virtual conferences and digital content that’s available 24/7.Whatever changes we see in SEMI, I’m confident that we will continue to see a global footprint in an industry association that prioritizes connections among members.Engage in the SEMI experience at upcoming SEMICON WestRegister today to hear from keynote speakers such as environmental advocate and former U.S. Vice President Al Gore, futurist and author Steve Brown, and IBM Research senior vice president and director Dr. John E. Kelly III, and Lea Gabrielle, special envoy of the Global Engagement Center for the U.S. State Department, at SEMICON West , July 20-23, 2020. Content will be live streamed and available on-demand. Michael Ciesinski is vice president of Technology Communities for SEMI, the global microelectronics industry association, appointed in August 2018. At SEMI, he directs activity for more than 20 industry groups, oversees the association’s R D funding program, and develops new technology initiatives to serve SEMI’s 2,400 members. Prior to re-joining SEMI, Ciesinski was president/CEO of FlexTech Alliance, an industry consortium focused on new methods of creating electronics. From 1995-2008, Ciesinski served in a similar role at the U.S. Display Consortium (USDC), a private/public partnership chartered with building the infrastructure for electronic display and flexible electronics manufacturing. Both FlexTech and USDC annually sponsor multimillion dollar technology development programs and provide industry technical, financial and market services. Ciesinski is a graduate of the University of Albany, NY, and a former member of the Dean’s Advisory Committee at California Polytechnic State University.Maria Vetrano is a PR consultant at SEMI.
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No, that wasn’t a fancy chandelier on the periphery of ES Design West’s exhibit area, the co-located event at SEMICON West. It was IBM’s Q quantum computer, a striking bit of industrial design that looks like a chandelier from a stately ballroom.While it resembled an ornate lighting fixture, IBM Q does much more than illuminate a room. The Q contains 20-quantum bits (20 qubits), equivalent to 2**20 or two to the 20th power classic bits. Impressively, IBM is currently readying (or may already have) a 50-qubit computer.During ES Design West, IBM demonstrated the Q Experience quantum cloud services platform and Qiskit, an open source quantum software framework. IBM’s booth staff showed how Q can solve problems beyond the practical reach of even today’s conventional supercomputers. Examples include the Traveling Salesman Problem (TSP) of finding the shortest route to enable the salesman to visit every city once and return to the starting point. Other examples are chemistry, drug and medicine discovery, weather and climate modeling, and security and advanced cryptography.The demos did even more, highlighting just how far semiconductor design and manufacturing advances have come to make quantum computing architecture possible.We have Dr. Jeffrey Welser, vice president of IBM Research–Almaden, to thank for bringing Q to SEMICON West and ES Design. During his keynote, The Future of Computing: Bits + Neurons + Qbits, he noted that Quantum computing holds the potential to solve problems even the most powerful classical computers cannot and challenges our community to drive innovation from materials to devices to systems. Both he and the booth staffers made the point out that Q will not replace conventional computing but augment it to solve complex problems beyond computational limits and/or the storage capacity of conventional computers.Challenges of Quantum Computing are not insignificant, however, and start with coherence time or the time interval over which the qbit is in a quantum state. The 20-qbit Q shown at ES Design West has a coherence time of 90 microseconds. Noise and variance are other challenges. The IBM booth staff said that a typical program must be run at least 1,000 times. Results are filtered with the extremes removed to get the most consistent result.Fault tolerance is high on the list of challenges as well because a solution for fault tolerance in quantum computing has yet to be discovered. Users like us take fault tolerance for granted in modern classical computers, addressed in hardware and firmware. Programmers don’t need to be concerned about it because the computer takes care of it through error correction.Finally, Q and most other quantum computers require near 0 Kelvin temperatures to operate. The refrigeration systems are large, expensive and not easily portable. Research is ongoing to find materials, such as carbon nanospheres, that will allow quantum computing at room temperature.Most experts agree that we are years away from practical deployment of large quantum computer systems. IBM’s open system for users around the world to access a Q computer to run programs is helping drive the way forward.Robert (Bob) Smith is Executive Director of the ESD Alliance, a SEMI Strategic Association Partner. He is responsible for the management and operations of the ESD Alliance, an international association of companies providing goods and services throughout the semiconductor design ecosystem.
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With chipmakers looking toward 5nm manufacturing, it’s clear that traditional scaling is not dead but continuing in combination with other technologies. The industry sees scaling enabled by 3D architectures such as die stacking and the stacking of very small geometry wafers. Interconnect scaling also comes into play. This year’s Scaling Technologies TechXPOT at SEMICON West (Scaling Every Which Way! – Thursday, July 12, 2:00PM-4:00PM) will provide an update on the evolution of scaling and describe how the various players (foundry, IDM, fabless, and application developers) are jockeying for innovation leadership. As a prelude to the event, SEMI asked speakers to provide insights on important scaling trends. For a full list of speakers and program agenda, visit http://www.semiconwest.org/programs-catalog/scaling-every-which-way.Challenges for gate-all-around (GAA) and FinFET devicesDiederik Verkest, imec Distinguished Member of Technical Staff, Semiconductor Technology and Systems“During the processing of GAA devices, there are ‘non-line-of-sight’ hidden features that are difficult to control and characterize and may also lead to new defect mechanisms that would impact yield, and possibly product reliability.”Common performance boosters for gate-all-around (GAA) FETs and FinFETs include lower access resistance, lower parasitic capacitance, and stress. “However, one specific performance booster that only applies to GAA is the reduction of the spacing between the vertical wires or sheets,” says Diederik Verkest, imec distinguished member of technical staff, Semiconductor Technology and Systems. “This reduces parasitic capacitance without affecting drive current and hence benefits both performance and power.” He further notes that imec demonstrated the first stacked gate-all-around (GAA) devices in scaled nodes. “In fact, we are the only ones that published working circuits – ring oscillators in a scaled node using industry-standard processes – in our case replacement metal gate (RMG), and embedded in situ doped source/drain (S/D) epitaxy.”“There are two elements of the stacked GAA architecture that need to be addressed,” says Verkest. “The first is that this architecture uses epitaxially-grown layers of Si and SiGe to define the device channel. The use of grown materials for the channel and the lattice mismatch between the two materials represent a departure from the traditional fabrication of CMOS devices, so the industry needs to develop and gain confidence in novel metrology that allows for good control of the layers and also proves their low defectivity.” The second aspect is the three-dimensional nature of the GAA devices. “During the processing of these devices, we have ‘non-line-of-sight’ hidden features that are difficult to control and characterize and may also lead to new defect mechanisms that would impact yield, and possibly product reliability.”Huiming Bu, Director, Advanced Logic/Memory Research - Integration and Device, IBM Research, Semiconductor Group"A new device architecture beyond FinFET is required to provide a full technology node scaling benefit (i.e., density, power and performance) at 5nm and 3nm.”Huiming Bu, director, Advanced Logic/Memory Research - Integration and Device, IBM Research, Semiconductor Group, says that naming of technology nodes has been used extensively for marketing strategies in “foundry land,” but the designations have lost much of their meaning as technology scaling differentiators. “That said, when it comes to technology innovation and value proposition, IBM, in conjunction with Samsung and GLOBALFOUNDRIES, has developed the GAA NanoSheet transistor for 5nm to provide a full technology node scaling benefit in density, power and performance,” says Bu (Figure 1). The key parameters for intrinsic device optimization when scaling to the 3nm node, explains Bu, are the NanoSheet width for better electrostatic characteristics, and the number of sheets for increased current density. Also necessary are strain engineering for carrier transport enhancement, and interconnect innovations for parasitic RC reduction. “Beyond that, the industry needs to look into something different, something more disruptive.”Figure 1. TEM cross section of stacked NanoSheet transistors. SOURCE: IBM Research Materials challengesMaterials challenges are also a concern as the industry moves to 5nm and below. “We see increasing complexity in the material systems that are being used,” explains Verkest. One example he cites in scaled FinFET or GAA technologies is the use of two to three layers of different materials – typically metals such as TiN – to which small amounts of other elements are added to set device characteristics such as the threshold voltage. “At the same time, the requirements for the thickness of these materials, driven by gate dimensions for example, or the distance between the wires, are increasingly challenging.” Other examples of materials challenges are the use of two to three different types of insulators in the middle-of-the-line, each with different etch contrasts. “We use novel materials such as carbon containing oxides or oxynitrides that have lower dielectric constants in order to boost the performance of circuits,” he says, noting that the materials list “is quite long.”Several critical dimensions in transistors at advanced technology nodes have already reached a few monolayers of atoms, fueling expectations for innovation at the material level for transistor scaling, Bu notes. “The other argument is that there is a growing gap between computing demand and the slowdown of technology advancement driven by conventional scaling,” says Bu. One trend that addresses this gap is integrating more computing functions that make the technology solution more modular, which naturally leads to the incorporation of more materials for more applications. Bu cautions, however, that introducing new materials in semiconductor technology has never been easy. “It takes many years of R D to reach this implementation point, if it ever happens. So, do we need new materials when the industry moves to 5nm and 3nm? Yes, though I expect new material implementation to be a lot faster in interconnect and packaging at these nodes rather than intrinsic to the transistor.” Challenges in developing atomic-level processesThere will be challenges in developing atomic-level processes used in scaling, such as atomic layer depositions (ALD) and atomic layer etches, notes Verkest. “These classes of processes are both required to handle the scaled dimensions at the 5nm and 3nm nodes, and also the 3D nature of the scaled technologies – and here we are talking about logic and memories,” Verkest says. “With respect to depositions, we would need to develop thermal ALD processes (not plasma-based) that enable accurate and conformal depositions in non-line-of-sight structures.” Adhesion and wetting, smoothness, and throughput would also need to be addressed. “Longer term, these processes need to facilitate selectivity and self-alignment to address gap-fill challenges in highly scaled structures,” he says. Other concerns he notes with respect to atomic layer etches are selectivity to various materials, and fidelity requirements that increase the requirements for metrology accuracy. “Throughput is also a concern.”Bu believes that a new device architecture beyond FinFET is required to provide a full technology node scaling benefit (i.e., density, power and performance) at 5nm and 3nm. “Beyond 3nm, we may need to continue the transistor scaling in the vertical direction and start to stack them together,” Bu says. He also cites the need for parasitic R/C reduction in the interconnect to take advantage of the intrinsic transistor benefit at the circuit and chip levels. “We see a lot of opportunity in atomic-level processes, especially in atomic layer etch and selective material deposition, to address these challenges in the transistor and the interconnect.” Debra Vogler, SEMI
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