Large-scale modular quantum-computer architecture with atomic memory and photonic interconnects
Abstract
The practical construction of scalable quantum-computer hardware capable of executing nontrivial quantum algorithms will require the juxtaposition of different types of quantum systems. We analyze a modular ion trap quantum-computer architecture with a hierarchy of interactions that can scale to very large numbers of qubits. Local entangling quantum gates between qubit memories within a single register are accomplished using natural interactions between the qubits, and entanglement between separate registers is completed via a probabilistic photonic interface between qubits in different registers, even over large distances. We show that this architecture can be made fault tolerant, and demonstrate its viability for fault-tolerant execution of modest size quantum circuits.
- Publication:
-
Physical Review A
- Pub Date:
- February 2014
- DOI:
- 10.1103/PhysRevA.89.022317
- Bibcode:
- 2014PhRvA..89b2317M
- Keywords:
-
- 03.67.Lx;
- 03.67.Pp;
- 32.80.Qk;
- 42.50.Ex;
- Quantum computation;
- Quantum error correction and other methods for protection against decoherence;
- Coherent control of atomic interactions with photons;
- Optical implementations of quantum information processing and transfer