#QuantumElectronics
The Frontiers in Quantum Electronics workshop was part of our anniversary programme and celebrated the launch of the Quantum Tower - our new facility for quantum-hardware research

#nanogune #QuantumHardware #QuantumElectronics
March 1, 2026 at 6:02 PM
📢 The first articles of the thematic issue “#Superconducting artificial neural networks and quantum circuits” edited by Anatolie S. Sidorenko in the #BJNANO 💎🔓 are online:
👉 https://tinyurl.com/4t4s7rah
More to come soon! 
#spintronics #nanoelectronics #QuantumElectronics
December 5, 2025 at 9:02 AM
Researchers achieved active electrostatic control of terahertz plasmonic wavepackets with 4 ps temporal resolution in engineered 1D electron waveguides, demonstrating a key platform for ultrafast quantum information processing using flying electron qubits.

#THz #QuantumElectronics #FlyingQubits
Active Control of THz Plasmon Propagation in Quantum Nanoelectronic Waveguides
arxiv.org
September 24, 2026 at 8:29 AM
🚨The deadline for the Nanoscale #nanoelectronics collection is approaching. Submit your research on this exciting topic soon! Find out more👇

🔗 www.rsc.org/publishi...

#nanoscience #nanotechnology #memrister #lowdimensionalmaterial #quantumelectronics #molecularelectronics #organicelectronics
September 21, 2026 at 7:46 AM
Invitation to submit to the thematic issue “#Superconducting artificial neural networks and quantum circuits” edited by Anatolie S. Sidorenko and Igor Lukyanchuk in the #BJNANO 💎🔓. 

➡️ https://tinyurl.com/28cm8p8s

Submission deadline 📅 July 31, 2025
#spintronics #QuantumElectronics #nanoelectronics
May 9, 2025 at 8:01 AM
Scientists Create Long-Sought Quantum Material for Room-Temperature Electronics

🤖 IA: It's clickbait ⚠️
👥 Users: It's clickbait ⚠️

#quantummaterials #topologicalinsulators #quantumelectronics

View full AI summary:
Scientists Create Long-Sought Quantum Material for Room-Temperature Electronics
Researchers from the University of Jyväskylä and Aalto University in Finland have successfully created a two-dimensional topological crystalline insulator, marking the first experimental realization of a quantum material predicted over a decade ago. This breakthrough involves a two-layer tin telluride (SnTe) film grown on a niobium diselenide (NbSe2) substrate, enabling precise control over its unique electronic properties. The material exhibits conducting edge states within a large electronic band gap, which can be manipulated through strain applied by the substrate. These edge states, protected by crystal symmetry, allow electrons to travel along the material's edges, offering potential for future quantum electronics. The team used molecular beam epitaxy and low-temperature scanning tunneling microscopy to analyze the material's properties, confirming its topological origin through first-principles quantum calculations. The material's stability at room temperature makes it a promising platform for strain-tunable two-dimensional topological states, advancing spin-based electronics and nanoscale devices. Published in Nature Communications, this discovery could revolutionize quantum technologies by enabling practical applications in quantum computing and energy-efficient electronics.
en.killbait.com
July 11, 2026 at 11:30 PM
Researchers demonstrate engineered magnetic barriers in 8-Pmmn borophene enable precise directional control of electron flow with tunable conductance properties, opening pathways for novel quantum devices with tailored electron pathways.

#QuantumElectronics #Borophene #2DMaterials
Engineered Magnetic Barriers in 8-Pmmn Borophene for Anisotropic Electron Transport Control
quantumzeitgeist.com
July 3, 2026 at 2:44 PM
If scientists succeed, it could revolutionize electronics, leading to faster, more reliable computers and new technologies like quantum sensors and secure communication systems. The future of electrical engineering is truly exciting! #QuantumElectronics #FutureTech
October 28, 2025 at 2:19 PM
Why do silicon carbide transistors struggle in the coldest environments? They face performance challenges at cryogenic temperatures, posing hurdles for quantum electronics integration. What does this mean for the future of quantum tech? #QuantumElectronics #SiliconCarbide #CryogenicResearch LINK
August 1, 2025 at 2:52 PM