Published July 2013 | Version v1
Journal article

Ambient nanoscale sensing with single spins using quantum decoherence

  • 1. Centre for Quantum Computation and Communication Technology, School of Physics, University of Melbourne, Victoria 3010 (Australia)
  • 2. School of Physics, University of Melbourne, Victoria 3010 (Australia)
  • 3. Chemical and Quantum Physics, School of Applied Sciences, RMIT University, Melbourne 3001 (Australia)
  • 4. School of Chemistry, Bio21 Institute, University of Melbourne, Parkville, Victoria 3010 (Australia)
  • 5. Institut für Quantenoptik, Universität Ulm, D-89073 Ulm (Germany)
  • 6. 3. Physikalisches Institut, Research Center SCOPE, and MPI for Solid State Research, University of Stuttgart, Pfaffenwaldring 57, D-70569 Stuttgart (Germany)
  • 7. Centre for Coherent x-ray Science, School of Physics, University of Melbourne, Victoria 3010 (Australia)

Description

Magnetic resonance detection is one of the most important tools used in life-sciences today. However, as the technique detects the magnetization of large ensembles of spins it is fundamentally limited in spatial resolution to mesoscopic scales. Here we detect the natural fluctuations of nanoscale spin ensembles at ambient temperatures by measuring the decoherence rate of a single quantum spin in response to introduced extrinsic target spins. In our experiments 45 nm nanodiamonds with single nitrogen–vacancy (NV) spins were immersed in solution containing spin 5/2 Mn2+ ions and the NV decoherence rate measured though optically detected magnetic resonance. The presence of both freely moving and accreted Mn spins in solution were detected via significant changes in measured NV decoherence rates. Analysis of the data using a quantum cluster expansion treatment of the NV-target system found the measurements to be consistent with the detection of 2500 motionally diffusing Mn spins over an effective volume of (16 nm)3 in 4.2 s, representing a reduction in target ensemble size and acquisition time of several orders of magnitude over conventional, magnetic induction approaches to electron spin resonance detection. These measurements provide the basis for the detection of nanovolume spins in solution, such as in the internal compartments of living cells, and are directly applicable to scanning probe architectures. (paper)

Availability note (English)

Available from http://dx.doi.org/10.1088/1367-2630/15/7/073042

Additional details

Publishing Information

Journal Title
New Journal of Physics
Journal Volume
15
Journal Issue
7
Journal Page Range
[24 p.]
ISSN
1367-2630