论文标题
从二维WS $ _2 $中的碳杂质中旋转1/2状态的振动响应
Vibronic response of a spin-1/2 state from a carbon impurity in two-dimensional WS$_2$
论文作者
论文摘要
我们通过合成的二维过渡金属二甲化酶(TMDS)在原子控制的磁性碳自由基离子(CRIS)(TMDS)中创建自旋1/2状态。通过扫描探针尖端,可以通过氢Deposivation激活位于化学掺杂引入的chalcogen位点上的氢化碳杂质。在阴离子状态下,碳杂质表现出磁性力矩为1 $μ_\ text {b} $,由不成对的电子填充c $^{\ buleast-} _ \ text {s} $的旋转偏振的间隙轨道。基础石墨烯基板通过基础的FERMI水平控制可以充电并脱离缺陷,从而激活或淬灭缺陷磁矩。通过非弹性隧道光谱和密度功能理论计算,我们表明,CRI缺陷循环到少数振动模式,包括局部,呼吸型模式。有趣的是,电子耦合强度严重取决于旋转状态,而单层和双层WS $ _2 $的旋转状态不同。 TMD中的这些碳自由基离子包括一类新的表面结合的单原子旋转量,可以选择性地引入,在空间上精确,具有良好的振动光谱,并且受电荷状态控制。
We demonstrate the creation of a spin-1/2 state via the atomically controlled generation of magnetic carbon radical ions (CRIs) in synthetic two-dimensional transition metal dichalcogenides (TMDs). Hydrogenated carbon impurities located at chalcogen sites introduced by chemical doping can be activated with atomic precision by hydrogen depassivation using a scanning probe tip. In its anionic state, the carbon impurity exhibits a magnetic moment of 1 $μ_\text{B}$ resulting from an unpaired electron populating a spin-polarized in-gap orbital of C$^{\bullet -}_\text{S}$. Fermi level control by the underlying graphene substrate can charge and decharge the defect, thereby activating or quenching the defect magnetic moment. By inelastic tunneling spectroscopy and density functional theory calculations we show that the CRI defect states couple to a small number of vibrational modes, including a local, breathing-type mode. Interestingly, the electron-phonon coupling strength critically depends on the spin state and differs for monolayer and bilayer WS$_2$. These carbon radical ions in TMDs comprise a new class of surface-bound, single-atom spin-qubits that can be selectively introduced, are spatially precise, feature a well-understood vibronic spectrum, and are charge state controlled.