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      Improvement of fluorescence intensity of nitrogen vacancy centers in self-formed diamond microstructures

      , , , , , , ,
      Applied Physics Letters
      AIP Publishing

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          Most cited references21

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          Scanning Confocal Optical Microscopy and Magnetic Resonance on Single Defect Centers

          A. Gruber (1997)
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            Is Open Access

            The nitrogen-vacancy colour centre in diamond

            The nitrogen-vacancy (NV) colour centre in diamond is an important physical system for emergent quantum technologies, including quantum metrology, information processing and communications, as well as for various nanotechnologies, such as biological and sub-diffraction limit imaging, and for tests of entanglement in quantum mechanics. Given this array of existing and potential applications and the almost 50 years of NV research, one would expect that the physics of the centre is well understood, however, the study of the NV centre has proved challenging, with many early assertions now believed false and many remaining issues yet to be resolved. This review represents the first time that the key empirical and ab initio results have been extracted from the extensive NV literature and assembled into one consistent picture of the current understanding of the centre. As a result, the key unresolved issues concerning the NV centre are identified and the possible avenues for their resolution are examined.
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              High-sensitivity diamond magnetometer with nanoscale resolution

              We present a novel approach to the detection of weak magnetic fields that takes advantage of recently developed techniques for the coherent control of solid-state electron spin quantum bits. Specifically, we investigate a magnetic sensor based on Nitrogen-Vacancy centers in room-temperature diamond. We discuss two important applications of this technique: a nanoscale magnetometer that could potentially detect precession of single nuclear spins and an optical magnetic field imager combining spatial resolution ranging from micrometers to millimeters with a sensitivity approaching few femtotesla/Hz\(^{1/2}\).
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                Author and article information

                Journal
                Applied Physics Letters
                Appl. Phys. Lett.
                AIP Publishing
                0003-6951
                1077-3118
                October 19 2015
                October 19 2015
                : 107
                : 16
                : 163102
                Article
                10.1063/1.4933103
                245df42f-4df4-4ee5-895e-719147693a7a
                © 2015
                History

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