Isobe Momoka, Nakayama Shota, Takagi Shunsuke, Araki Kakeru, Kanai Kaname
Department of Physics and Astronomy, Faculty of Science and Technology, Tokyo University of Science, 2641 Yamazaki, Noda, Chiba 278-8510, Japan.
ACS Omega. 2023 Jul 17;8(30):27264-27275. doi: 10.1021/acsomega.3c02638. eCollection 2023 Aug 1.
Octacyano-metal-phthalocyanine MPc(CN) is a promising n-type stable organic semiconductor material with eight cyano groups, including a strong electron-withdrawing group at its molecular terminals. However, a thorough investigation of MPc(CN) has not yet been conducted. Therefore, we synthesized FePc(CN) and investigated its crystal structure, chemical and electronic states, electrical properties, photocatalytic activity, and magnetic properties. In this paper, we discuss the various properties of MPc(CN) in comparison with those of FePc. X-ray diffraction measurements indicated that the crystal structure of FePc(CN) was strongly influenced by the cyano groups and differed from the α- and β-forms of FePc. The space group 4/ structure of FePc(CN) was similar to that of the x-form of LiPc. The ultraviolet-visible (UV-vis) absorption spectrum of FePc(CN) was observed at wavelengths longer than that of FePc. Density functional theory-based molecular orbital calculations indicated that the energy gap of FePc(CN) is smaller than that of FePc, which can lead to the observation of the Q-band in the UV-vis absorption spectrum of FePc(CN) at longer wavelengths than that of FePc. Because FePc(CN) has a wider optical absorption band in the visible region than FePc, its photocatalytic activity is approximately four times higher than that of FePc. The conductivity of FePc(CN) was also higher than that of FePc, which is due to the larger overlap of π-electron clouds of the molecules in the crystal structure of FePc(CN). Magnetic measurements revealed that FePc(CN) exists in an antiferromagnetic ground state. The magnetic properties of FePc(CN) are specific to its crystal structure, with direct exchange interactions between Fe ions and π-electron-mediated interactions. In particular, the Pauli paramagnetic behavior at high temperatures and the antiferromagnetic behavior at low temperatures (Weiss temperature θ = -4.3 ± 0.1 K) are characteristic of the π-d system.
八氰基金属酞菁MPc(CN)是一种很有前景的n型稳定有机半导体材料,带有八个氰基,在其分子末端包含一个强吸电子基团。然而,尚未对MPc(CN)进行全面研究。因此,我们合成了FePc(CN),并研究了其晶体结构、化学和电子态、电学性质、光催化活性和磁性。在本文中,我们将MPc(CN)的各种性质与FePc的性质进行了比较。X射线衍射测量表明,FePc(CN)的晶体结构受到氰基的强烈影响,与FePc的α型和β型不同。FePc(CN)的空间群4/结构与LiPc的x型相似。观察到FePc(CN)的紫外-可见(UV-vis)吸收光谱的波长比FePc的长。基于密度泛函理论的分子轨道计算表明,FePc(CN)的能隙比FePc的小,这导致在FePc(CN)的UV-vis吸收光谱中,Q带在比FePc更长的波长处被观察到。由于FePc(CN)在可见光区域的光吸收带比FePc宽,其光催化活性约为FePc的四倍。FePc(CN)的电导率也高于FePc,这是由于FePc(CN)晶体结构中分子的π电子云有更大的重叠。磁性测量表明,FePc(CN)处于反铁磁基态。FePc(CN)的磁性特定于其晶体结构,具有Fe离子之间的直接交换相互作用和π电子介导的相互作用。特别是,高温下的泡利顺磁行为和低温下的反铁磁行为(魏斯温度θ = -4.3 ± 0.1 K)是π-d系统的特征。