The Rydberg blockade is the interaction mechanism neutral atom quantum computers use to build two-qubit gates. A Rydberg atom is an atom whose outermost electron has been excited to a much higher orbit, which makes the atom thousands of times larger than normal. When a laser drives one atom into a Rydberg state, that giant atom shifts the energy levels of its neighbors enough that a second laser pulse cannot excite a nearby atom at the same time, it is blocked. Two atoms close together therefore cannot both be Rydberg simultaneously, which creates a controlled interaction: whether the second atom responds depends on the state of the first. That conditional response is exactly what an entangling gate needs. The blockade strength falls off with distance, so gates only act between adjacent atoms in the tweezer array, but the atoms can be physically rearranged between steps, which is how neutral atom machines get flexible connectivity without fixed wiring.
Related Terms
Neutral Atom Qubit
HardwareA qubit encoded in the internal states of an individual neutral atom held in place by a focused laser beam (an optical tweezer), with Rydberg states used to entangle neighboring atoms.
Quantum Gate
GatesA unitary operation that transforms the state of one or more qubits.
QPU
HardwareA quantum processing unit (QPU) is physical hardware that stores qubits and runs quantum gates using superconducting circuits, trapped ions, photons, or neutral atoms.