Zychowicz Mikolaj, Dzielak Hubert, Rzepiela Jan, Chorazy Szymon
Faculty of Chemistry, Jagiellonian University, Gronostajowa 2, 30-387 Krakow, Poland.
Jagiellonian University, Doctoral School of Exact and Natural Sciences, Lojasiewicza 11, 30-348 Krakow, Poland.
Inorg Chem. 2024 Oct 14;63(41):19213-19226. doi: 10.1021/acs.inorgchem.4c02793. Epub 2024 Sep 2.
We present a synergistic experimental-theoretical methodology for the investigation of lanthanide-based single-molecule magnets (SMMs), demonstrated using the example of novel heterometallic molecules incorporating Nd/Ce ions combined with three different, rarely explored, pentacyanidocobaltate(III) metalloligands, [Co(CN)(azido/nitrito-/iodido)]. The theoretical part of our approach broadens the exploration of calculations for lanthanide(III) complexes toward the convenient simulations of such physical characteristics as directional dependences of Helmholtz energy, magnetization, susceptibility, and their thermal and field evolution, as well as light absorption and emission bands. This work was conducted using newly designed SlothPy software (https://slothpy.org). It is introduced as an open-source Python library for simulating various physical properties from first-principles based on results of electronic structure calculations obtained within popular quantum chemistry packages. The computational results were confronted with spectroscopic and /-magnetic data, the latter analyzed using previously designed relACs software. The combination of experimental and computational methods gave insight into phonon-assisted magnetic relaxation mechanisms, disentangling them from the temperature-independent quantum tunneling of magnetization and emphasizing the role of local-mode processes. This study provides an understanding of the changes in lanthanide(III) magnetic anisotropy introduced with pentacyanidocobaltates(III) modifications, theoretically exploring also potential applications of reported compounds as anisotropy switches or optical thermometers.
我们提出了一种用于研究镧系单分子磁体(SMMs)的协同实验 - 理论方法,以包含钕/铈离子与三种不同的、很少被研究的五氰基钴(III)金属配体[Co(CN)(叠氮基/亚硝酸根/碘离子)]结合的新型异金属分子为例进行了展示。我们方法的理论部分拓宽了对镧系(III)配合物计算的探索,以便于模拟诸如亥姆霍兹能量、磁化强度、磁化率的方向依赖性及其热和场演化等物理特性,以及光吸收和发射带。这项工作是使用新设计的SlothPy软件(https://slothpy.org)进行的。它作为一个开源的Python库被引入,用于基于在流行的量子化学软件包中获得的电子结构计算结果,从第一性原理模拟各种物理性质。计算结果与光谱和磁数据进行了对比,后者使用先前设计的relACs软件进行分析。实验和计算方法的结合深入了解了声子辅助的磁弛豫机制,将它们与与温度无关的磁化量子隧穿区分开来,并强调了局域模过程的作用。这项研究提供了对五氰基钴(III)修饰所引入的镧系(III)磁各向异性变化的理解,还从理论上探索了所报道化合物作为各向异性开关或光学温度计的潜在应用。