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中性Tb(II)(Cp)单分子磁体中的电调谐超精细光谱

Electrically tuned hyperfine spectrum in neutral Tb(II)(Cp) single-molecule magnet.

作者信息

Smith Robert L, Wysocki Aleksander L, Park Kyungwha

机构信息

Department of Chemistry, Virginia Tech, Blacksburg, Virginia 24061, USA.

Department of Physics, Virginia Tech, Blacksburg, Virginia 24061, USA.

出版信息

Phys Chem Chem Phys. 2020 Oct 7;22(38):21793-21800. doi: 10.1039/d0cp04056h.

Abstract

Molecular spin qubits with long spin coherence time as well as non-invasive operation methods on such qubits are in high demand. It was shown that both molecular electronic and nuclear spin levels can be used as qubits. In solid state systems with dopants, an electric field was shown to effectively change the spacing between the nuclear spin qubit levels when the electron spin density is high at the nucleus of the dopant. Inspired by such solid-state systems, we propose that divalent lanthanide (Ln) complexes with an unusual electronic configuration of Ln2+ have a strong interaction between the Ln nuclear spin and the electronic degrees of freedom, which renders electrical tuning of the interaction. As an example, we study electronic structure and hyperfine interaction of the 159Tb nucleus in a neutral Tb(ii)(CpiPr5)2 single-molecule magnet (SMM), which exhibits unusually long magnetization relaxation time, using the complete active space self-consistent field (CASSCF) method with spin-orbit interaction included within the restricted active space state interaction (RASSI). Our calculations show that the low-energy states arise from 4f8(6s,5dz2)1, 4f8(5dx2-y2)1, and 4f8(5dxy)1 configurations. We compute the hyperfine interaction parameters and the electronic-nuclear spectrum within our multiconfigurational approach. We find that the hyperfine interaction is about one order of magnitude greater than that for Tb(iii)Pc2 SMMs. This stems from the strong Fermi contact interaction between the Tb nuclear spin and the electron spin density at the nucleus that originates from the occupation of the (6s,5d) orbitals. We also uncover that the response of the Fermi contact term to electric field results in electrical tuning of the electronic-nuclear level separations. This hyperfine Stark effect may be useful for applications of molecular nuclear spins for quantum computing.

摘要

人们对具有长自旋相干时间的分子自旋量子比特以及对这类量子比特的非侵入性操作方法有着很高的需求。研究表明,分子的电子自旋能级和核自旋能级都可以用作量子比特。在含有掺杂剂的固态系统中,当掺杂剂原子核处的电子自旋密度较高时,电场被证明能有效改变核自旋量子比特能级之间的间距。受此类固态系统的启发,我们提出具有不寻常电子构型Ln2+的二价镧系(Ln)配合物在Ln核自旋与电子自由度之间存在强相互作用,这使得该相互作用能够通过电进行调节。例如,我们使用包含自旋 - 轨道相互作用的完全活性空间自洽场(CASSCF)方法,并在受限活性空间态相互作用(RASSI)框架内,研究了中性Tb(ii)(CpiPr5)2单分子磁体(SMM)中159Tb原子核的电子结构和超精细相互作用,该单分子磁体表现出异常长的磁化弛豫时间。我们的计算表明,低能态源于4f^8(6s,5dz^2)^1、4f^8(5dx^2 - y^2)^1和4f^8(5dxy)^1构型。我们在多构型方法中计算了超精细相互作用参数和电子 - 核谱。我们发现,超精细相互作用比Tb(iii)Pc2单分子磁体的超精细相互作用大约大一个数量级。这源于Tb核自旋与原子核处电子自旋密度之间的强费米接触相互作用,该电子自旋密度源于(6s,5d)轨道的占据。我们还发现费米接触项对电场的响应导致了电子 - 核能级间距的电调节。这种超精细斯塔克效应可能对分子核自旋在量子计算中的应用有用。

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