See how aluminum oxide insulators and quasi-particle traps enable milliKelvin cooling in NIS ju
Integrated microwave shields and Nb2O5 dielectric layers cut crosstalk and flux noise in superconducting circuits, improving qubit coherence.
Voltage-driven piezoelectric strain switches a superconductor into an insulating state without heating, reducing latching, power use, and delay.
Orthogonal superconductor electrodes and a dielectric tunnel barrier reduce process variation and aging effects to stabilize Josephson junction critical current.
Piezoelectric strain drives a superconductor directly into an insulating state, enabling faster switching with lower power and less latching.
A clustered atom-replaced artificial pin structure improves magnetic field characteristics while resolving composition control challenges in mass production.
Segmented pickup coil design reduces magnetic flux trapping during geomagnetic cooling, maintaining detection sensitivity without external shielding.
Solid-state generator replaces mechanical armatures with YBCO vortex channels, eliminating CO2 emissions while boosting conversion efficiency.
A CMOS-compatible patterning method for superconducting nanowire single-photon detectors using an etch stop layer and distinct deposition zones.
A photon detector uses a nano pattern to convert light into surface plasmon-polaritons for absorption by a superconducting nanowire.
Angled deposition aligns magnetic nanowires within superconductors to resolve random positioning bottlenecks and improve coherence times.
A three-terminal superconducting device detects channel current via controlled intersection hot spots.
A high temperature superconductor system joins metal substrates via butt welding while maintaining a thin superconducting bridge for electrical continuity.
Extending Josephson junctions vertically maintains critical current and noise margins despite shrinking technology nodes.
Rolling cylindrical NiW alloy ingots with controlled cross-sectional reduction to produce coated conductor tapes.
Liquid chlorinated hydrocarbons replace solid additives to prevent aggregation, improving critical current density in magnetic fields.
Patching defective high temperature superconducting wires with an overlapping segment eliminates rigidity issues from external splicing.
Linking superconducting tape sections with overlapping metallic layers minimizes ohmic resistance at connection points for long-distance power transmission.
Ferromagnetic insulators sandwich a superconducting layer to switch states by adjusting relative magnetization, eliminating external field requirements.
Stacked 2D material layers protect the Josephson junction from physical damage during manufacturing, maintaining graphene superconductivity.
Compacting amorphous boron powder with exposed MgB2 filaments before molten magnesium infiltration resolves porosity issues to boost current-carrying capacity.
Depositing chromium onto cuprate-perovskite ceramics raises operating temperature limits, reducing cooling costs for superconducting applications.
Shaping the film before ion irradiation avoids processing difficulties while lowering surface resistance for better detection sensitivity.
Pre-deposited insulating strips segment multifilament HTS conductors, reducing AC losses without damaging filaments during etching.
Segmenting the nanowire into short pixel bridges reduces kinetic inductance and current crowding, improving reset time and number resolution.
Integrating a multi-layer dielectric film filter on superconducting nanowire single photon detectors to selectively transmit signal wavelengths.
Travelling magnetic flux waves incrementally trap field in superconductors, reducing mechanical stress during high field generation.
Segmented superconductive wires position high-tolerance materials in high-field regions to increase torque density while reducing machine size.
An electrical attenuator couples to a superconducting nanowire single photon detector output.
A hybrid superconducting medium combines two distinct superconductor layers to induce a proximity effect through electron diffusion.
Direct superconductor-to-superconductor joint removes intermediate non-superconducting sections to eliminate ohmic and cryogenic losses in long cable systems.
Forming periodic patterned structures in material layers to alter electronic structure and induce superconductivity.
A high-temperature superconductor diode emits terahertz radiation via electron-quasiparticle recombination across a p-n boundary.
Staggered nanowire bends reduce current crowding at sharp corners, increasing critical bias current and detection efficiency.
A transmission line uses segmented ground layers to block heat flow while maintaining signal integrity.
Deflecting a cantilevered conductor alters shunt capacitance, resolving Josephson junction critical current variations for scalable quantum computing.
A superconducting signal processing circuit segments transmission paths to generate time and address information signals from multiple single photon detectors.
Thermal gradient annealing under uniaxial pressure drives oxygen diffusion to create discrete regions within high-temperature superconducting films.
Periodic AC power drives Josephson junctions in edge-triggered latches, eliminating static power dissipation while maintaining reliable data capture.
Photonically controlled Josephson junctions magnetize Faraday rotator cells to enable high-speed optical computing without resistive heat generation.
A monofilament design uses compositionally matched niobium tubes to compact powder cores during drawing, ensuring uniform material properties throughout the wire structure.
A Josephson junction array terahertz laser converts electrical signals to coherent radiation for superconducting circuit interfaces.
A superconductor memory structure uses magnetic levitation to position a movable element between field elements.
A superconducting junction uses a thermally conducting non-superconducting layer to enable rapid temperature switching between states.
A neural member uses a dynamically reconfigurable Josephson junction to tune synaptic weights via magnetic state transitions.
A CeO2 or MgO buffer layer prevents island formation and substrate reactions, maintaining high electrical conductivity.
A glassy carbon mask absorbs laser energy to prevent unwanted annealing of unexposed regions.
Ferroelectric composite superconductors confine coupled charge carriers to achieve near-zero resistance.