...
首页> 外文期刊>ACS Omega >Effect of Structure on the Spin Switching and Magnetic Bistability of Solid-State Aryl Dicyanomethyl Monoradicals and Diradicals
【24h】

Effect of Structure on the Spin Switching and Magnetic Bistability of Solid-State Aryl Dicyanomethyl Monoradicals and Diradicals

机译:结构对固态芳基二氰基甲基自由基和双自由基的自旋转换和双稳态的影响

获取原文
           

摘要

Stable organic radicals with switchable spin states have applications in medicine, biology, and material science. An emerging class of such spin-switchable radicals is based on dicyanomethyl radicals, which are typically thermally and air-stable species that form weakly bonded (closed-shell singlet) dimers at a lower temperature that rupture into electron paramagnetic resonance-active diradicals at a higher temperature. However, thus far, the study of these dicyanomethyl radicals has focused on their solution-phase behavior. An understanding of how chemical structure affects the solid-state spin switching behavior for these radicals is unknown. Here, we examine the solid-state spin crossover behavior of 6 monoradicals and 10 tethered diradicals and demonstrate that these species also undergo spin switching in the solid state. We find that the susceptibility for solid-state spin switching for the intermolecular dimers is weakly correlated to the solution-phase Gibbs free energies of dimerization, but no apparent correlations are seen between the solution-state free energies for the intramolecular dimerization and the solid-state behavior. Furthermore, intramolecular diradical dimers have greatly enhanced temperature-responsive behavior compared to their intermolecular counterparts. Crystalline and amorphous powders of the same radicals feature similar spin switching behavior, but the crystalline materials have slower bond-rupture kinetics at higher temperatures, suggesting that solid-state packing effects are an important kinetic consideration. An interesting feature of these systems is that, upon cooling down to room temperature after heating, some radicals remain trapped in the solids, indicating magnetic bistability, while others partially or fully return to the diamagnetic dimers. This work provides insights into how chemical structure affects spin crossover in the solid state for this new class of air-stable radicals, the knowledge of importance for the construction of dynamically responsive solid-state materials, and organic spin crossover polymers.
机译:具有可转换自旋态的稳定有机自由基在医学,生物学和材料科学中都有应用。这种可自旋切换的自由基的新兴类别是基于二氰甲基,这些自由基通常是热和空气稳定的物种,它们在较低的温度下会形成弱键合(闭壳单线态)二聚体,并在室温下破裂成电子顺磁共振活性双自由基。更高的温度。然而,到目前为止,这些二氰基甲基自由基的研究集中在它们的溶液相行为上。尚不清楚化学结构如何影响这些自由基的固态自旋转换行为。在这里,我们检查了6个单基自由基和10个束缚双基自由基的固态自旋交叉行为,并证明了这些物质在固态时也经历自旋转换。我们发现分子间二聚体的固态自旋转换的敏感性与溶液相吉布斯二聚化自由能弱相关,但分子内二聚化的固溶态自由能与固态二聚体之间没有明显的相关性。状态行为。此外,分子内双自由基二聚体与其分子间对应物相比具有极大的温度响应行为。具有相同基团的结晶粉末和无定形粉末具有相似的自旋转换行为,但结晶材料在较高的温度下具有较慢的键断裂动力学,这表明固态堆积效应是重要的动力学考虑因素。这些系统的一个有趣的特征是,加热后冷却至室温后,一些自由基仍然留在固体中,表明其具有磁性双稳态,而另一些则部分或全部返回到反磁性二聚体。这项工作提供了关于化学结构如何影响这种新型的空气稳定基团在固态中的自旋交联的见解,对于构造动态响应式固态材料以及有机自旋交联聚合物的重要性的知识。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号