Stanford scientists have developed a parametrically programmable delay line that uses superconducting circuits to store and manipulate quantum information with dynamic control capabilities.
Stanford scientists have developed an advanced optical technology that can separate and recombine thousands of extremely close light frequencies with unprecedented precision.
Stanford researchers have developed an approach to enable larger superconducting quantum systems that can likely span several refrigerators, necessitating connecting qubits across refrigerators efficiently. Current connectors are limited in its scalability.
Researchers in the Dionne lab (D-Lab) at Stanford University have designed an on-chip, optical spin processor for classical and quantum information systems.
Quantum scientists in the LINQS, Schuster, and Simon Labs at Stanford have developed a method of multiplexing many low-light optical fields onto a single fast sensor.
Stanford researchers in the Simon Lab have proposed integrating nonlinear optics within optical resonators in general, and within their small waist resonators in particular.
This approach is feasible because: