论文标题
田间诱导的磁化阻滞在金属磁体中的磁化阻滞的振荡
Field-induced oscillation of magnetization blocking in holmium metallacrown magnet
论文作者
论文摘要
单分子磁铁(SMM)是量子信息学的有希望的元素。在存在强磁各向异性的情况下,它们表现出磁化阻塞 - 单个分子水平的磁记忆效应。最近的研究表明,SMM性能缩放具有磁化阻滞屏障的高度。通过采用分子工程,可以进行显着修改,与其他外部因素(例如磁场)无关。利用电子和核自旋的超精细耦合进一步增强了它们的功能,但是,对这种SMMS中松弛机制的理解不足限制了核旋转分子量子的开发。在这里,我们报告了磁化阻滞屏障在新的Mellallown磁铁中的磁化阻挡屏障的开放发现,这是由涉及超精细相互作用的弛豫机制的转换驱动的。单晶磁性滞后测量与第一原理计算相结合,揭示了通过在交换 - 富甲状态的抗跨点或通过在交叉点处的Orbach样过程的磁化点上不连贯的量子隧穿支配的磁弛豫的激活温度依赖性。我们证明,可以通过增加外部场来连续打开和关闭这些放松机制,这为使用超精美相互作用来操纵SMM的磁化动力学铺平了一种方法。
Single-molecule magnets (SMMs) are promising elements for quantum informatics. In the presence of strong magnetic anisotropy, they exhibit magnetization blocking - a magnetic memory effect at the level of a single molecule. Recent studies have shown that the SMM performance scales with the height of magnetization blocking barrier. By employing molecular engineering this can be significantly modified, remaining independent from other external factors such as magnetic field. Taking advantage of hyperfine coupling of electronic and nuclear spins further enhances their functionality, however, a poor understanding of relaxation mechanisms in such SMMs limits the exploitation of nuclear-spin molecular qubits. Here we report the opening discovery of field-dependent oscillation of the magnetization blocking barrier in a new holmium metallacrown magnet driven by the switch of relaxation mechanisms involving hyperfine interaction. Single-crystal magnetic hysteresis measurements combined with first-principles calculations reveal an activated temperature dependence of magnetic relaxation dominated either by incoherent quantum tunneling of magnetization at anti-crossing points of exchange-hyperfine states or by Orbach-like processes at crossing points. We demonstrate that these relaxation mechanisms can be consecutively switched on and off by increasing the external field, which paves a way for manipulating the magnetization dynamics of SMMs using hyperfine interaction.