Centre for Quantum Computer Technology, School of Physics, University of Melbourne, Melbourne, Victoria 3010, Australia.
Nanotechnology. 2009 Dec 9;20(49):495401. doi: 10.1088/0957-4484/20/49/495401. Epub 2009 Nov 11.
The use of qubits as sensitive nanoscale magnetometers has been studied theoretically and recently demonstrated experimentally. In this paper we propose a new concept, in which a scanning two-state quantum system is used to probe a sample through the subtle effects of decoherence. Mapping both the Hamiltonian and decoherence properties of a qubit simultaneously provides a unique image of the magnetic (or electric) field properties at the nanoscale. The resulting images are sensitive to the temporal as well as spatial variation in the fields created by the sample. As examples we theoretically study two applications; one from condensed matter physics, the other biophysics. The individual components required to realize the simplest version of this device (characterization and measurement of qubits, nanoscale positioning) have already been demonstrated experimentally.
量子比特作为灵敏的纳米级磁强计的应用已经在理论上得到了研究,并在最近的实验中得到了验证。在本文中,我们提出了一个新概念,即通过退相干的微妙影响,使用扫描双量子系统来探测样品。同时绘制量子比特的哈密顿量和退相干特性,为纳米尺度的磁场(或电场)特性提供了独特的图像。所得到的图像对由样品产生的磁场的时间和空间变化敏感。作为示例,我们从凝聚态物理和生物物理两个方面理论上研究了两个应用。实现该设备最简单版本所需的各个组件(量子比特的特性和测量、纳米级定位)已经在实验中得到了验证。