Department of Physics and Astronomy and INSTM Research Unit, University of Florence, Sesto Fiorentino, Italy.
Istituto per i Processi Chimico-Fisici, IPCF-CNR, Pisa, Italy.
Nat Mater. 2019 Apr;18(4):329-334. doi: 10.1038/s41563-019-0288-5. Epub 2019 Feb 18.
The possibility to operate on magnetic materials through the application of electric rather than magnetic fields-promising faster, more compact and energy efficient circuits-continues to spur the investigation of magnetoelectric effects. Symmetry considerations, in particular the lack of an inversion centre, characterize the magnetoelectric effect. In addition, spin-orbit coupling is generally considered necessary to make a spin system sensitive to a charge distribution. However, a magnetoelectric effect not relying on spin-orbit coupling is appealing for spin-based quantum technologies. Here, we report the detection of a magnetoelectric effect that we attribute to an electric field modulation of the magnetic exchange interaction without atomic displacement. The effect is visible in electron paramagnetic resonance absorption of molecular helices under electric field modulation and confirmed by specific symmetry properties and spectral simulation.
通过施加电场而非磁场来操作磁性材料的可能性——有望实现更快、更紧凑且更节能的电路——继续推动着对磁电效应的研究。对称性考虑因素,特别是缺乏反转中心,是磁电效应的特征。此外,自旋轨道耦合通常被认为是使自旋系统对电荷分布敏感所必需的。然而,不依赖于自旋轨道耦合的磁电效应对于基于自旋的量子技术是有吸引力的。在这里,我们报告了一种磁电效应的检测,我们将其归因于磁场交换相互作用的电场调制,而没有原子位移。该效应在电场调制下的分子螺旋的电子顺磁共振吸收中可见,并通过特定的对称性质和光谱模拟得到证实。