Using a hybrid qubit–oscillator trapped-ion processor, physicists have simulated a Z2 lattice gauge theory and directly ...
Collisions between particles at high energies can sometimes produce new particles and shed light on interactions between the ...
A new method developed at LMU overcomes fundamental resolution limits and may provide insights into high-temperature superconductivity. Physicist Dr. Sebastian Paeckel has developed a method that can ...
To progress in the characterization of noise for quantum computers, gate set tomography (GST) has emerged as a self-consistent protocol that accurately estimates noisy gates, state preparations, and ...
A quantum simulator has given physicists a new look at one of the strangest ...
Students learning quantum mechanics are taught the Schrodinger equation and how to solve it to obtain a wave function. But a crucial step is skipped because it has puzzled scientists since the ...
Researchers created scalable quantum circuits capable of simulating fundamental nuclear physics on more than 100 qubits. These circuits efficiently prepare complex initial states that classical ...
Pairing superconducting qubits with microwave cavities could reduce the hardware requirements for quantum simulations of fundamental physics.
Researchers have experimentally observed energy patterns that physicists have predicted for about 40 years. By arranging ...
A team of physicists has derived rigorous universal bounds and exact scaling laws for the maximal decay rate of large open ...
A proposed experiment could shed light on the unknown interplay of quantum theory and general relativity. Quantum theory in curved spacetime can be theoretically understood beyond the limit at which ...