Sarkar Arup, Rajaraman Gopalan
Department of Chemistry, Indian Institute of Technology Bombay Powai Mumbai- 400076 India
Chem Sci. 2020 Aug 21;11(38):10324-10330. doi: 10.1039/d0sc03982a.
Single-molecule magnets have potential uses in several nanotechnology applications, including high-density information storage devices, the realisation of which lies in enhancing the barrier height for magnetisation reversal ( ). However, Ln(iii) single-ion magnets (SIMs) that have been reported recently reveal that the maximum value of values that can be obtained by modulating the ligand fields has already been achieved. Here, we have explored, using a combination of DFT and CASSCF calculations, a unique way to enhance the magnetisation reversal barrier using an oriented external electric field in three well-known Ln(iii) single-ion magnets: [Dy(Py)(O Bu)] (), [Er{N(SiMe)}Cl] () and [Dy(Cp)Cl] (). Our study reveals that, for apt molecules, if the appropriate direction and values of the electric fields are chosen, the barrier height can be enhanced by twice that of the limit set by the ligand field. The application of an electric field along the equatorial direction was found to be suitable for oblate shaped Dy(iii) complexes and an electric field along the axial direction was found to enhance the barrier height for a prolate Er(iii) complex. For complexes and , the external electric field was able to magnify the barrier height to 2-3 times that of the original complexes. However, a moderate enhancement was noticed after application of the external electric field in the case of complex . This novel non-chemical fine-tuning approach to modulate magnetic anisotropy is expected to yield a new generation of SIMs.
单分子磁体在包括高密度信息存储设备在内的多种纳米技术应用中具有潜在用途,其实现依赖于提高磁化反转的势垒高度( )。然而,最近报道的镧系(III)单离子磁体(SIMs)表明,通过调节配体场所能获得的 值的最大值已经实现。在此,我们结合密度泛函理论(DFT)和完全活性空间自洽场(CASSCF)计算,探索了一种在三种著名的镧系(III)单离子磁体:[Dy(Py)(O Bu)]( )、[Er{N(SiMe)}Cl]( )和[Dy(Cp)Cl]( )中使用定向外部电场来提高磁化反转势垒的独特方法。我们的研究表明,对于合适的分子,如果选择合适的电场方向和值,则势垒高度可以提高到配体场设定极限值的两倍。发现沿赤道方向施加电场适用于扁球形的Dy(III)配合物,而沿轴向施加电场可提高长球形Er(III)配合物的势垒高度。对于配合物 和 ,外部电场能够将势垒高度放大到原始配合物的2 - 3倍。然而,在配合物 的情况下,施加外部电场后观察到适度的增强。这种调节磁各向异性的新型非化学微调方法有望产生新一代的单离子磁体。