Sadhukhan Pritam, Wu Shu-Qi, Long Jeremy Ian, Nakanishi Takumi, Kanegawa Shinji, Gao Kaige, Yamamoto Kaoru, Okajima Hajime, Sakamoto Akira, Baker Michael L, Kroll Thomas, Sokaras Dimosthenis, Okazawa Atsushi, Kojima Norimichi, Shiota Yoshihito, Yoshizawa Kazunari, Sato Osamu
Institute for Materials Chemistry and Engineering & IRCCS, Kyushu University, 744 Motooka, Nishi-ku, Fukuoka, Japan.
College of Physical Science and Technology, Yangzhou University, Yangzhou, Jiangsu, People's Republic of China.
Nat Commun. 2021 Aug 10;12(1):4836. doi: 10.1038/s41467-021-25041-4.
Pyroelectricity plays a crucial role in modern sensors and energy conversion devices. However, obtaining materials with large and nearly constant pyroelectric coefficients over a wide temperature range for practical uses remains a formidable challenge. Attempting to discover a solution to this obstacle, we combined molecular design of labile electronic structure with the crystal engineering of the molecular orientation in lattice. This combination results in electronic pyroelectricity of purely molecular origin. Here, we report a polar crystal of an [FeCo] dinuclear complex exhibiting a peculiar pyroelectric behavior (a substantial sharp pyroelectric current peak and an unusual continuous pyroelectric current at higher temperatures) which is caused by a combination of Fe spin crossover (SCO) and electron transfer between the high-spin Fe ion and redox-active ligand, namely valence tautomerism (VT). As a result, temperature dependence of the pyroelectric behavior reported here is opposite from conventional ferroelectrics and originates from a transition between three distinct electronic structures. The obtained pyroelectric coefficient is comparable to that of polyvinylidene difluoride at room temperature.
热释电效应在现代传感器和能量转换装置中起着至关重要的作用。然而,要获得在宽温度范围内具有大且近乎恒定热释电系数的材料以用于实际应用,仍然是一项艰巨的挑战。为了尝试找到解决这一障碍的方法,我们将不稳定电子结构的分子设计与晶格中分子取向的晶体工程相结合。这种结合产生了纯分子起源的电子热释电效应。在此,我们报道了一种[FeCo]双核配合物的极性晶体,它表现出一种奇特的热释电行为(在较高温度下有一个显著的尖锐热释电电流峰和异常的连续热释电电流),这是由铁自旋交叉(SCO)以及高自旋铁离子与氧化还原活性配体之间的电子转移,即价互变异构(VT)共同导致的。因此,这里报道的热释电行为的温度依赖性与传统铁电体相反,并且源于三种不同电子结构之间的转变。所获得的热释电系数在室温下与聚偏二氟乙烯相当。