Department of Mechanical Engineering, Carnegie Mellon University, Pittsburgh, PA 15213, USA.
Department of Mechanical and Aerospace Engineering, University of California San Diego, La Jolla, CA 92093, USA.
Sci Adv. 2019 Dec 13;5(12):eaax3777. doi: 10.1126/sciadv.aax3777. eCollection 2019 Dec.
In comparison with the advancement of switchable, nonlinear, and active components in electronics, solid-state thermal components for actively controlling heat flow have been extremely rare. We demonstrate a high-contrast and reversible polymer thermal regulator based on the structural phase transition in crystalline polyethylene nanofibers. This structural phase transition represents a dramatic change in morphology from a highly ordered all-trans conformation to a combined trans and gauche conformation with rotational disorder, leading to an abrupt change in phonon transport along the molecular chains. For five nanofiber samples measured here, we observe an average thermal switching ratio of ~8× and maximum switching ratio of ~10×, which occurs in a narrow temperature range of 10 K across the structural phase transition. To the best of our knowledge, the ~10× switching ratio exceeds any reported experimental values for solid-solid and solid-liquid phase transitions of materials. There is no thermal hysteresis observed upon heating/cooling cycles.
与电子学中可切换、非线性和有源组件的进步相比,主动控制热流的固态热组件极为罕见。我们展示了一种基于结晶聚乙烯纳米纤维中结构相转变的高对比度和可逆聚合物热调节剂。这种结构相转变代表了形态从高度有序的全反式构象到具有旋转无序的反式和 gauche 构象的组合的剧烈变化,导致声子沿着分子链的输运发生急剧变化。对于这里测量的五个纳米纤维样品,我们观察到平均热开关比约为 8×,最大开关比约为 10×,这发生在结构相转变的 10 K 窄温度范围内。据我们所知,这种约 10×的开关比超过了任何已报道的材料固-固和固-液相变的实验值。在加热/冷却循环过程中没有观察到热滞后。