Person: Maurer, Peter Christian
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Publication Scalable Architecture for a Room Temperature Solid-State Quantum Information Processor
(Nature Publishing Group, 2012) Yao, Norman; Jiang, Liang; Gorshkov, Alexey; Maurer, Peter Christian; Giedke, Géza; Cirac, Ignacio; Lukin, MikhailThe realization of a scalable quantum information processor has emerged over the past decade as one of the central challenges at the interface of fundamental science and engineering. Here we propose and analyse an architecture for a scalable, solid-state quantum information processor capable of operating at room temperature. Our approach is based on recent experimental advances involving nitrogen-vacancy colour centres in diamond. In particular, we demonstrate that the multiple challenges associated with operation at ambient temperature, individual addressing at the nanoscale, strong qubit coupling, robustness against disorder and low decoherence rates can be simultaneously achieved under realistic, experimentally relevant conditions. The architecture uses a novel approach to quantum information transfer and includes a hierarchy of control at successive length scales. Moreover, it alleviates the stringent constraints currently limiting the realization of scalable quantum processors and will provide fundamental insights into the physics of non-equilibrium many-body quantum systems.
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 Nanometre-scale thermometry in a living cell
(Nature Publishing Group, 2013) Kucsko, Georg; Maurer, Peter Christian; Yao, Norman; Kubo, Michael; Noh, Hyungi; Lo, P. K.; Park, Hongkun; Lukin, MikhailSensitive probing of temperature variations on nanometre scales is an outstanding challenge in many areas of modern science and technology. In particular, a thermometer capable of subdegree temperature resolution over a large range of temperatures as well as integration within a living system could provide a powerful new tool in many areas of biological, physical and chemical research. Possibilities range from the temperature-induced control of gene expression and tumour metabolism to the cell-selective treatment of disease and the study of heat dissipation in integrated circuits. By combining local light-induced heat sources with sensitive nanoscale thermometry, it may also be possible to engineer biological processes at the subcellular level. Here we demonstrate a new approach to nanoscale thermometry that uses coherent manipulation of the electronic spin associated with nitrogen–vacancy colour centres in diamond. Our technique makes it possible to detect temperature variations as small as 1.8 mK (a sensitivity of (9 mK Hz^{−1/2}) in an ultrapure bulk diamond sample. Using nitrogen–vacancy centres in diamond nanocrystals (nanodiamonds), we directly measure the local thermal environment on length scales as short as 200 nanometres. Finally, by introducing both nanodiamonds and gold nanoparticles into a single human embryonic fibroblast, we demonstrate temperature-gradient control and mapping at the subcellular level, enabling unique potential applications in life sciences.