Cooling algorithms based on the 3-bit majority
Cooling and Low Energy State Preparation for 3-local Hamiltonians are FQMA-complete
Cooling and squeezing the fluctuations of a nanomechanical beam by indirect quantum feedback control
Cooling atom-cavity systems into entangled states
Cooling atomic motion with quantum interference
Cooling atoms into entangled states
Cooling by heating
Cooling in a Bistable Optical Cavity
Cooling many particles at once
Cooling many particles to very low temperatures
Cooling of a mirror by radiation pressure
Cooling of a mirror in cavity optomechanics with a chirped pulse
Cooling of a particle by coupling to its own reflection
Cooling of a single atom in an optical trap inside a resonator
Cooling of a small sample of Bose atoms with accidental degeneracy
Cooling of Nanomechanical Resonator Based on Periodical Coupling to Cooper Pair Box
Cooling the Collective Motion of Trapped Ions to Initialize a Quantum Register
Cooling to the Ground State of Axial Motion for One Atom Strongly Coupled to an Optical Cavity
Cooling trapped atoms in optical resonators
Cooper Pair Boxes Weakly Coupled to External Environments