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The key role of vibrational entropy in the phase transitions of dithiazolyl-based bistable magnetic materials

机译:振动熵在二噻唑基双稳态磁性材料的相变中的关键作用

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The neutral radical 1,3,5-trithia-2,4,6-triazapentalenyl (TTTA) is a prototype of molecule-based bistable materials. TTTA crystals undergo a first-order phase transition between their low-temperature diamagnetic and high-temperature paramagnetic phases, with a large hysteresis loop that encompasses room temperature. Here, based on ab initio molecular dynamics simulations and new X-ray measurements, we uncover that the regular stacking motif of the high-temperature polymorph is the result of a fast intra-stack pair-exchange dynamics, whereby TTTA radicals continually exchange the adjacent TTTA neighbour (upper or lower) with which they form an eclipsed dimer. Such unique dynamics, observed in the paramagnetic phase within the whole hysteresis loop, is the origin of a significant vibrational entropic gain in the low-temperature to high-temperature transition and thereby it plays a key role in driving the phase transition. This finding provides a new key concept that needs to be explored for the rational design of novel molecule-based bistable magnetic materials.
机译:中性基团1,3,5-trithia-2,4,6-三氮杂戊烯基(TTTA)是基于分子的双稳态材料的原型。 TTTA晶体在其低温抗磁性相和高温顺磁性相之间经历一阶相变,并具有一个涵盖室温的大磁滞回线。在这里,基于从头算分子动力学模拟和新的X射线测量,我们发现高温多晶型物的规则堆叠基序是快速堆叠内对交换动力学的结果,由此TTTA自由基不断交换相邻的TTTA邻居(上部或下部),与它们形成暗影二聚体。在整个磁滞回线的顺磁相中观察到的这种独特动力学是低温到高温转变过程中显着的振动熵增益的起源,因此在驱动相变过程中起着关键作用。这一发现为合理设计新型基于分子的双稳态磁性材料需要探索一个新的关键概念。

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