Graduate School of Engineering, The University of Tokyo, Tokyo, 113-8656, Japan.
National Institutes for Quantum and Radiological Science and Technology (QST), Chiba, 263-8555, Japan.
Sci Rep. 2020 Feb 12;10(1):2483. doi: 10.1038/s41598-020-59064-6.
We developed a novel magnetometer that employs negatively charged nitrogen-vacancy (NV) centers in diamond, to detect the magnetic field generated by magnetic nanoparticles (MNPs) for biomedical applications. The compact probe system is integrated into a fiber-optics platform allowing for a compact design. To detect signals from the MNPs effectively, we demonstrated, for the first time, the application of an alternating current (AC) magnetic field generated by the excitation coil of several hundred microteslas for the magnetization of MNPs in diamond quantum sensing. In the lock-in detection system, the minimum detectable AC magnetic field (at a frequency of 1.025 kHz) was approximately 57.6 nT for one second measurement time. We were able to detect the micromolar concentration of MNPs at distances of a few millimeters. These results indicate that the magnetometer with the NV centers can detect the tiny amounts of MNPs, thereby offering potential for future biomedical applications.
我们开发了一种新型的磁力计,该磁力计采用金刚石中的带负电荷的氮空位(NV)中心来检测用于生物医学应用的磁性纳米颗粒(MNP)产生的磁场。紧凑的探头系统集成到光纤平台中,允许进行紧凑的设计。为了有效地检测来自 MNP 的信号,我们首次展示了应用数百微特斯拉的交流(AC)磁场来对金刚石量子传感中的 MNP 进行磁化。在锁定检测系统中,对于一秒钟的测量时间,最小可检测的 AC 磁场(频率为 1.025 kHz)约为 57.6 nT。我们能够检测到几毫米距离处的微摩尔浓度的 MNP。这些结果表明,具有 NV 中心的磁力计可以检测到微小量的 MNP,从而为未来的生物医学应用提供了潜力。