Trofimov Sergei, Lips Klaus, Naydenov Boris
Berlin Joint EPR Laboratory and Department Spins in Energy Conversion and Quantum Information Science (ASPIN), Helmholtz-Zentrum Berlin für Materialien und Energie, Hahn-Meitner-Platz 1, 14109, Berlin, Germany.
Department of Physics, Freie Universität Berlin, Arnimallee 14, 14195, Berlin, Germany.
Nat Commun. 2025 Apr 14;16(1):3518. doi: 10.1038/s41467-025-58635-3.
Defect centres in crystals like diamond or silicon find a wide application in quantum technology, where the detection and control of their quantum states is crucial for their implementation as quantum sensors and qubits. The quantum information is usually encoded in the spin state of these defect centres, but they also often possess a charge which is typically not utilized. We report here the detection of elementary charges bound to single nitrogen-vacancy (NV) centres several nanometres below the diamond surface using Kelvin Probe Force Microscopy (KPFM) under laser illumination. Moreover, the measured signal depends on the NV's electron spin state, thus allowing to perform a non-optical single spin readout, a technique we refer to as "Surface Voltage Detected Magnetic Resonance" (SVDMR). Our method opens a way of coherent spin dynamics detection for quantum sensing applications and could be potentially applied to other solid state systems. We believe that this voltage-based readout would help to simplify the design of devices for quantum technology.
诸如钻石或硅等晶体中的缺陷中心在量子技术中有着广泛应用,在量子技术领域,对其量子态的检测与控制对于将它们用作量子传感器和量子比特至关重要。量子信息通常编码在这些缺陷中心的自旋态中,但它们往往还带有电荷,而这一电荷通常未被利用。我们在此报告,在激光照射下,利用开尔文探针力显微镜(KPFM)检测到了金刚石表面以下几纳米处单个氮空位(NV)中心所束缚的基本电荷。此外,测量信号取决于NV的电子自旋态,从而能够进行非光学单自旋读出,我们将这种技术称为“表面电压检测磁共振”(SVDMR)。我们的方法为量子传感应用开辟了一种相干自旋动力学检测方式,并且可能潜在地应用于其他固态系统。我们认为,这种基于电压的读出方式将有助于简化量子技术设备的设计。