B. Zeng

Measuring the parity of an $N$-qubit state

B. Zeng [1,2,3], D. L. Zhou, L. You [2,3]

Abstract

We present a scheme for a projective measurement of the parity operator $P_z=\prod_{i=1}^N σ_z^{(i)}$ of $N$-qubits. Our protocol uses a single ancillary qubit, or a probe qubit, and involves manipulations of the total spin of the $N$ qubits without requiring individual addressing. We illustrate our protocol in terms of an experimental implementation with atomic ions in a two-zone linear Paul trap, and further discuss its extensions to several more general cases.

Encoding a logical qubit into physical qubits

B. Zeng [1], D. L. Zhou [2], Z. Xu [1], C. P. Sun [2], L. You [2,3]

Abstract

We propose two protocols to encode a logical qubit into physical qubits relying on common types of qubit-qubit interactions in as simple forms as possible. We comment on its experimental implementation in several quantum computing architectures, e.g. with trapped atomic ion qubits, atomic qubits inside a high Q optical cavity, solid state Josephson junction qubits, and Bose-Einstein condensed atoms.