Zakrzewski Jakub J, Liberka Michal, Wang Junhao, Chorazy Szymon, Ohkoshi Shin-Ichi
Faculty of Chemistry, Jagiellonian University, Gronostajowa 2, 30-387 Krakow, Poland.
Doctoral School of Exact and Natural Sciences, Jagiellonian University, Lojasiewicza 11, 30-348 Krakow, Poland.
Chem Rev. 2024 May 8;124(9):5930-6050. doi: 10.1021/acs.chemrev.3c00840. Epub 2024 Apr 30.
Since the last century, we have witnessed the development of molecular magnetism which deals with magnetic materials based on molecular species, i.e., organic radicals and metal complexes. Among them, the broadest attention was devoted to molecule-based ferro-/ferrimagnets, spin transition materials, including those exploring electron transfer, molecular nanomagnets, such as single-molecule magnets (SMMs), molecular qubits, and stimuli-responsive magnetic materials. Their physical properties open the application horizons in sensors, data storage, spintronics, and quantum computation. It was found that various optical phenomena, such as thermochromism, photoswitching of magnetic and optical characteristics, luminescence, nonlinear optical and chiroptical effects, as well as optical responsivity to external stimuli, can be implemented into molecule-based magnetic materials. Moreover, the fruitful interactions of these optical effects with magnetism in molecule-based materials can provide new physical cross-effects and multifunctionality, enriching the applications in optical, electronic, and magnetic devices. This Review aims to show the scope of optical phenomena generated in molecule-based magnetic materials, including the recent advances in such areas as high-temperature photomagnetism, optical thermometry utilizing SMMs, optical addressability of molecular qubits, magneto-chiral dichroism, and opto-magneto-electric multifunctionality. These findings are discussed in the context of the types of optical phenomena accessible for various classes of molecule-based magnetic materials.
自上个世纪以来,我们见证了分子磁学的发展,该领域主要研究基于分子种类的磁性材料,即有机自由基和金属配合物。其中,基于分子的铁磁体/亚铁磁体、自旋转变材料(包括那些探索电子转移的材料)、分子纳米磁体(如单分子磁体)、分子量子比特以及刺激响应磁性材料受到了最广泛的关注。它们的物理性质为传感器、数据存储、自旋电子学和量子计算等领域开辟了应用前景。人们发现,各种光学现象,如热致变色、磁性和光学特性的光开关、发光、非线性光学和手性光学效应,以及对外部刺激的光学响应,都可以应用于基于分子的磁性材料中。此外,这些光学效应与基于分子的材料中的磁性之间富有成效的相互作用可以提供新的物理交叉效应和多功能性,丰富了在光学、电子和磁性器件中的应用。本综述旨在展示基于分子的磁性材料中产生的光学现象的范围,包括高温光磁学、利用单分子磁体的光学测温、分子量子比特的光学寻址、磁圆二色性以及光磁电多功能性等领域的最新进展。这些发现将在各类基于分子的磁性材料可实现的光学现象类型的背景下进行讨论。