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A fault-tolerant addressable spin qubit in a natural silicon quantum dot

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arxiv 1602.07833 v1 pith:6WQUCKHF submitted 2016-02-25 cond-mat.mes-hall

A fault-tolerant addressable spin qubit in a natural silicon quantum dot

classification cond-mat.mes-hall
keywords siliconquantumnaturalfault-tolerantqubitqubitsspinaddressable
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Fault-tolerant quantum operation is a key requirement for the development of quantum computing. This has been realized in various solid-state systems including isotopically purified silicon which provides a nuclear spin free environment for the qubits, but not in industry standard natural (unpurified) silicon. Here we demonstrate an addressable fault-tolerant qubit using a natural silicon double quantum dot with a micromagnet optimally designed for fast spin control. This optimized design allows us to achieve the optimum Rabi oscillation quality factor Q = 140 at a Rabi frequency of 10 MHz in the frequency range two orders of magnitude higher than that achieved in previous studies. This leads to a qubit fidelity of 99.6 %, which is the highest reported for natural silicon qubits and comparable to that obtained in isotopically purified silicon quantum-dot-based qubits. This result can inspire contributions from the industrial and quantum computing communities.

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