TY - JOUR
T1 - Electronic Structure of Zinc-5,10,15,20-tetraethynylporphyrin
T2 - Evolution from the Molecule to a One-Dimensional Chain, a Two-Dimensional Covalent Organic Framework, and a Nanotube
AU - Ni, Xiaojuan
AU - Brédas, Jean Luc
N1 - Funding Information:
The work was supported by the Army Research Office under the Multidisciplinary University Research Initiative (MURI) Award No. W911NF-15-1-0447 and under Award No. W911NF-17-1-03390, and by the College of Science of the University of Arizona. The high-performance computing resources were provided by the Research Data Center (RDC) at the University of Arizona, which we gratefully acknowledge.
Publisher Copyright:
© 2022 American Chemical Society.
PY - 2022/2/8
Y1 - 2022/2/8
N2 - Zinc-5,10,15,20-tetraethynylporphyrin (Zn-TEP) has been used as a building block to prepare one-dimensional (1D) chains, two-dimensional (2D) covalent organic frameworks, as well as nanotubes that represent molecular analogues of carbon nanotubes. It is of interest then to evaluate the electronic-structure evolution of Zn-TEP from the zero-dimensional (0D) molecule to the 1D chain, the 2D COF, and the nanotubes. Here, based on density functional theory calculations, we discuss the effects of dimensionality on the electronic structure of Zn-TEP by describing the fundamental relationship between the frontier molecular orbitals of Zn-TEP and the electronic bands in periodic lattices. Wavevector-independent flat bands appear in all the periodic systems due to the absence of wave function contribution on the meso carbons in the Zn-TEP frontier molecular orbitals. A zone-folding approach coming from a tight-binding model effectively captures the connection between the 2D COF and the nanotube when applying periodic boundary conditions along the circumferential direction around the nanotubes. Importantly, the Zn-TEP nanotube has a totally flat lowest conduction band, which provides an organic material platform to explore a variety of many-body phenomena.
AB - Zinc-5,10,15,20-tetraethynylporphyrin (Zn-TEP) has been used as a building block to prepare one-dimensional (1D) chains, two-dimensional (2D) covalent organic frameworks, as well as nanotubes that represent molecular analogues of carbon nanotubes. It is of interest then to evaluate the electronic-structure evolution of Zn-TEP from the zero-dimensional (0D) molecule to the 1D chain, the 2D COF, and the nanotubes. Here, based on density functional theory calculations, we discuss the effects of dimensionality on the electronic structure of Zn-TEP by describing the fundamental relationship between the frontier molecular orbitals of Zn-TEP and the electronic bands in periodic lattices. Wavevector-independent flat bands appear in all the periodic systems due to the absence of wave function contribution on the meso carbons in the Zn-TEP frontier molecular orbitals. A zone-folding approach coming from a tight-binding model effectively captures the connection between the 2D COF and the nanotube when applying periodic boundary conditions along the circumferential direction around the nanotubes. Importantly, the Zn-TEP nanotube has a totally flat lowest conduction band, which provides an organic material platform to explore a variety of many-body phenomena.
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U2 - 10.1021/acs.chemmater.1c04013
DO - 10.1021/acs.chemmater.1c04013
M3 - Article
AN - SCOPUS:85124360874
SN - 0897-4756
VL - 34
SP - 1334
EP - 1341
JO - Chemistry of Materials
JF - Chemistry of Materials
IS - 3
ER -