Access the most recent editions of Ink World Magazine, featuring timely industry insights and innovations.
Read the interactive online version of Ink World Magazine, complete with enhanced features and multimedia content.
Join our global readership—subscribe to receive Ink World Magazine in print or digital formats, and stay informed on key trends and breakthroughs.
Connect with decision-makers in the ink industry through strategic advertising opportunities in Ink World Magazine and online platforms.
Review submission standards and guidelines for contributing articles and content to Ink World Magazine.
Understand how we collect, use, and protect your data when you engage with Ink World Magazine.
Review the legal terms governing your use of Ink World Magazines website and services.
Stay current with breaking developments, business updates, and product launches across the global ink industry.
Explore in-depth articles covering key technologies, trends, and challenges facing ink manufacturers and suppliers.
Access exclusive interviews, behind-the-scenes stories, and original reporting not found anywhere else.
A one-on-one interview conducted by our editorial team with industry leaders in our market.
Gain insight from industry thought leaders as they share analysis on market shifts, regulatory changes, and technological advances.
Review market data, forecasts, and trends shaping the ink and printing sectors worldwide.
Visualize data and industry insights through engaging infographics that highlight key stats and trends.
Browse photo galleries showcasing events, product innovations, and company highlights.
Watch interviews, demonstrations, and event coverage from across the ink and printing value chain.
Short, impactful videos offering quick updates and insights on industry topics.
Stay updated on trends and technologies in pigment development.
Learn how additives influence ink performance and characteristics.
Discover advancements in resin technologies and their impact on ink properties.
Explore the latest printing and manufacturing equipment used across various ink applications.
Explore UV, EB, and other curing technologies that improve ink efficiency and sustainability.
Discover tools used in R&D and quality control processes.
Focused on inks used in labels, flexible packaging, and cartons.
Coverage on inks for newspapers, magazines, and books.
Insights into inkjet, toner, and other digital printing solutions.
Updates on offset sheetfed inks used in commercial printing.
News on UV and EB curing inks.
Explore screen printing ink technologies.
Niche and high-performance ink formulations for specific applications.
Electrically conductive inks for electronics and printed sensors.
Innovations in printable electronic components.
Developments in printed OLEDs, LEDs, and display technologies.
Printed solar cells and materials used in energy generation.
Explore electronics printed directly into molded surfaces.
Advances in smart tagging and communication technologies.
Global leaders across Europe, Asia, and beyond.
Major ink producers in the U.S., Canada, and Mexico.
Source suppliers and service providers across the ink value chain.
Locate authorized distributors of ink and raw materials.
Browse manufacturers and vendors offering inks, equipment, and materials.
A listing of ink manufacturers based in the United States.
Directory of ink producers across Europe.
Detailed insights into products, processes, and innovations from leading ink companies.
Find definitions for common terms used throughout the ink and printing industries.
Comprehensive digital guides on specific ink technologies and markets.
Research-driven reports offering analysis and solutions to industry challenges.
Marketing materials from suppliers showcasing products and services.
Company-sponsored articles offering expert insight, case studies, and product highlights.
Company announcements, product launches, and corporate updates.
Browse job openings in the ink and coatings industries and connect with potential employers.
Calendar of major trade shows and professional gatherings.
On-site event coverage and updates.
Virtual sessions led by industry experts.
What are you searching for?
Walter de Heer and his collaborators developed a new nanoelectronics platform based on graphene — a single sheet of carbon atoms.
December 22, 2022
By: DAVID SAVASTANO
Editor, Ink World Magazine
A pressing quest in the field of nanoelectronics is the search for a material that could replace silicon. Graphene has seemed promising for decades. But its potential faltered along the way, due to damaging processing methods and the lack of a new electronics paradigm to embrace it. With silicon nearly maxed out in its ability to accommodate faster computing, the next big nanoelectronics platform is needed now more than ever. Walter de Heer, Regents’ Professor in the School of Physics at the Georgia Institute of Technology, has taken a critical step forward in making the case for a successor to silicon. Walter de Heer and his collaborators developed a new nanoelectronics platform based on graphene — a single sheet of carbon atoms. The technology is compatible with conventional microelectronics manufacturing, a necessity for any viable alternative to silicon. In the course of their research, published in Nature Communications, the team may have also discovered a new quasiparticle. Their discovery could lead to manufacturing smaller, faster, more efficient, and more sustainable computer chips, and has potential implications for quantum and high-performance computing. “Graphene’s power lies in its flat, two-dimensional structure that is held together by the strongest chemical bonds known,” de Heer said. “It was clear from the beginning that graphene can be miniaturized to a far greater extent than silicon — enabling much smaller devices, while operating at higher speeds and producing much less heat. This means that, in principle, more devices can be packed on a single chip of graphene than with silicon.” In 2001, de Heer proposed an alternative form of electronics based on epitaxial graphene, or epigraphene — a layer of graphene that was found to spontaneously form on top of silicon carbide crystal, a semiconductor used in high power electronics. At the time, the researchers found that electric currents flow without resistance along epigraphene’s edges, and that graphene devices could be seamlessly interconnected without metal wires. This combination allows for a form of electronics that relies on the unique light-like properties of graphene electrons. “Quantum interference has been observed in carbon nanotubes at low temperatures, and we expect to see similar effects in epigraphene ribbons and networks,” de Heer said. “This important feature of graphene is not possible with silicon.” Building the Platform To create the new nanoelectronics platform, the researchers created a modified form of epigraphene on a silicon carbide crystal substrate. In collaboration with researchers at the Tianjin International Center for Nanoparticles and Nanosystems at the University of Tianjin, China, they produced unique silicon carbide chips from electronics-grade silicon carbide crystals. The graphene itself was grown at de Heer’s laboratory at Georgia Tech using patented furnaces. The researchers used electron beam lithography, a method commonly used in microelectronics, to carve the graphene nanostructures and weld their edges to the silicon carbide chips. This process mechanically stabilizes and seals the graphene’s edges, which would otherwise react with oxygen and other gases that might interfere with the motion of the charges along the edge. Finally, to measure the electronic properties of their graphene platform, the team used a cryogenic apparatus that allows them to record its properties from a near-zero temperature to room temperature. Observing the Edge State The electric charges the team observed in the graphene edge state were similar to photons in an optical fiber that can travel over large distances without scattering. They found that the charges traveled for tens of thousands of nanometers along the edge before scattering. Graphene electrons in previous technologies could only travel about 10 nanometers before bumping into small imperfections and scattering in different directions. “What’s special about the electric charges in the edges is that they stay on the edge and keep on going at the same speed, even if the edges are not perfectly straight,” said Claire Berger, physics professor at Georgia Tech and director of research at the French National Center for Scientific Research in Grenoble, France. In metals, electric currents are carried by negatively charged electrons. But contrary to the researchers’ expectations, their measurements suggested that the edge currents were not carried by electrons or by holes (a term for positive quasiparticles indicating the absence of an electron). Rather, the currents were carried by a highly unusual quasiparticle that has no charge and no energy, and yet moves without resistance. The components of the hybrid quasiparticle were observed to travel on opposite sides of the graphene’s edges, despite being a single object. The unique properties indicate that the quasiparticle might be one that physicists have been hoping to exploit for decades — the elusive Majorana fermion predicted by Italian theoretical physicist Ettore Majorana in 1937. “Developing electronics using this new quasiparticle in seamlessly interconnected graphene networks is game changing,” de Heer said. It will likely be another five to 10 years before we have the first graphene-based electronics, according to de Heer. But thanks to the team’s new epitaxial graphene platform, technology is closer than ever to crowning graphene as a successor to silicon. Citation: Prudkovskiy, V.S., Hu, Y., Zhang, K. et al. An epitaxial graphene platform for zero-energy edge state nanoelectronics. Nat Commun 13, 7814 (2022).
Enter the destination URL
Or link to existing content
Enter your account email.
A verification code was sent to your email, Enter the 6-digit code sent to your mail.
Didn't get the code? Check your spam folder or resend code
Set a new password for signing in and accessing your data.
Your Password has been Updated !