Person: Maurer, Peter Christian
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Publication Room-Temperature Quantum Bit Memory Exceeding One Second
(American Association for the Advancement of Science (AAAS), 2012) Maurer, Peter Christian; Kucsko, Georg; Latta, C.; Jiang, L.; Yao, Norman; Bennett, S. D.; Pastawski, F.; Hunger, D.; Chisholm, Nicholas; Markham, M.; Twitchen, D. J.; Cirac, J. I.; Lukin, MikhailStable quantum bits, capable both of storing quantum information for macroscopic time scales and of integration inside small portable devices, are an essential building block for an array of potential applications. We demonstrate high-fidelity control of a solid-state qubit, which preserves its polarization for several minutes and features coherence lifetimes exceeding 1 second at room temperature. The qubit consists of a single (^{13}C) nuclear spin in the vicinity of a nitrogen-vacancy color center within an isotopically purified diamond crystal. The long qubit memory time was achieved via a technique involving dissipative decoupling of the single nuclear spin from its local environment. The versatility, robustness, and potential scalability of this system may allow for new applications in quantum information science.
Publication Far-Field Optical Imaging and Manipulation of Individual Spins with Nanoscale Resolution
(Nature Publishing Group, 2010) Maurer, Peter Christian; Maze, J. R.; Stanwix, P. L.; Jiang, L.; Gorshkov, Alexey; Zibrov, A. A.; Harke, B.; Hodges, J. S.; Zibrov, Alexander; Yacoby, Amir; Twitchen, D.; Hell, S. W.; Walsworth, Ronald; Lukin, MikhailA fundamental limit to existing optical techniques for measurementand manipulation of spin degrees of freedom is set by diffraction, which does not allow spins separated by less than about a quarter of a micrometre to be resolved using conventional far-field optics. Here, we report an efficient far-field optical technique that overcomes the limiting role of diffraction, allowing individual electronic spins to be detected, imaged and manipulated coherently with nanoscale resolution. The technique involves selective flipping of the orientation of individual spins, associated with nitrogen-vacancy centres in room-temperature diamond, using a focused beam of light with intensity vanishing at a controllable location, which enables simultaneous single-spin imaging and magnetometry at the nanoscale with considerably less power than conventional techniques. Furthermore, by inhibiting spin transitions away from the laser intensity null, selective coherent rotation of individual spins is realized. This technique can be extended to subnanometre dimensions, thus enabling applications in diverse areas ranging from quantum information science to bioimaging.