Ullah Aman, Baldoví José J, Gaita-Ariño Alejandro, Coronado Eugenio
Instituto de Ciencia Molecular, Universitat de València, Catedrático José Beltrán Martínez, 2, Paterna 46980, Spain.
Dalton Trans. 2021 Aug 28;50(32):11071-11076. doi: 10.1039/d1dt01832a. Epub 2021 Jul 29.
Spin-lattice relaxation is a key open problem to understand the spin dynamics of single-molecule magnets and molecular spin qubits. While modelling the coupling between spin states and local vibrations allows to determine the more relevant molecular vibrations for spin relaxation, this is not sufficient to explain how energy is dissipated towards the thermal bath. Herein, we employ a simple and efficient model to examine the coupling of local vibrational modes with long-wavelength longitudinal and transverse phonons in the clock-like spin qubit [Ho(WO)]. We find that in crystals of this polyoxometalate the vibrational mode previously found to be vibronically active at low temperature does not couple significantly to lattice phonons. This means that further intramolecular energy transfer via anharmonic vibrations is necessary for spin relaxation in this system. Finally, we discuss implications for the spin-phonon coupling of [Ho(WO)] deposited on a MgO (001) substrate, offering a simple methodology that can be extrapolated to estimate the effects on spin relaxation of different surfaces, including 2D materials.
自旋 - 晶格弛豫是理解单分子磁体和分子自旋量子比特自旋动力学的一个关键开放性问题。虽然对自旋态与局部振动之间的耦合进行建模能够确定对自旋弛豫更为相关的分子振动,但这不足以解释能量是如何耗散到热库中的。在此,我们采用一个简单而有效的模型来研究类时钟自旋量子比特[Ho(WO)]中局部振动模式与长波长纵向和横向声子的耦合。我们发现,在这种多金属氧酸盐的晶体中,先前发现在低温下具有电子 - 振动活性的振动模式与晶格声子的耦合并不显著。这意味着在该系统中,通过非谐振动进行进一步的分子内能量转移对于自旋弛豫是必要的。最后,我们讨论了沉积在MgO(001)衬底上的[Ho(WO)]的自旋 - 声子耦合的影响,提供了一种简单的方法,该方法可外推用于估计不同表面(包括二维材料)对自旋弛豫的影响。