Tunable Raman Scattering of Fe(II) Coordination Networks With Magnetic Fields

ABSTRACT Controlling terahertz (THz) waves is important for next‐generation communications, sensing, and imaging technologies. However, it is still unclear precisely how THz signals can be manipulated by various materials. Herein, we report the design and synthesis of four coordination networks, {[Fe 2 (Xpz) 2 ][Hg(SCN) 4 ] 2 [Hg(SCN) 2 ]} n (Xpz = fluo140ropyrazine, 1‐F ; Xpz = chloropyrazine, 1‐Cl ; Xpz = bromopyrazine, 1‐Br ) and {[Fe(Ipz)][Hg(SCN) 4 ]} n (Ipz = iodopyrazine, 1‐I ) as tunable THz absorbers. 1‐Cl and 1‐Br form isostructural three‐dimensional frameworks closely related to 1‐F , differentiated in the Xpz ligand orientation. In contrast, 1‐I adopts a distinct two‐dimensional framework due to the more sterically demanding halogen. Clear differences are observed in the sub‐THz (< 1 THz) absorption features between the four materials, with the lowest features shifting to lower frequencies from 1‐F to 1‐Br . As these materials contain open‐shell high‐spin Fe(II) ions, we show that the application of a magnetic field can precisely modulate low‐frequency (LF) Raman bands by ca. 0.06 THz/T at 4 K in the THz range. We show using Raman magnetospectroscopy (RAMS) that this tunability arises from the zero‐field splitting (ZFS) of Fe(II).

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Publication Details

Journal
Angewandte Chemie International Edition
Published
2026-10-06
DOI
https://doi.org/10.1002/anie.1927294
Primary Topic
Organic and Molecular Conductors Research
Type
article
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article

Tunable Raman Scattering of Fe(II) Coordination Networks With Magnetic Fields

Lei Xiong, Mykhaylo Ozerov, Joseph M. Flitcroft, Jonathan Michael Skelton et al.
Angewandte Chemie International Edition
Organic and Molecular Conductors Research
article

Tunable Raman Scattering of Fe(II) Coordination Networks With Magnetic Fields

Lei Xiong, Mykhaylo Ozerov, Joseph M. Flitcroft, Jonathan Michael Skelton, Komalavalli Thirunavukkuarasu, Meagan S. Oakley, Koji Nakabayashi, Guanping Li, Shin‐ichi Ohkoshi, Dmitry Smirnov, Nicholas F. Chilton, Olaf Stefańczyk, William T. Morrillo
article en

Abstract

ABSTRACT Controlling terahertz (THz) waves is important for next‐generation communications, sensing, and imaging technologies. However, it is still unclear precisely how THz signals can be manipulated by various materials. Herein, we report the design and synthesis of four coordination networks, {[Fe 2 (Xpz) 2 ][Hg(SCN) 4 ] 2 [Hg(SCN) 2 ]} n (Xpz = fluo140ropyrazine, 1‐F ; Xpz = chloropyrazine, 1‐Cl ; Xpz = bromopyrazine, 1‐Br ) and {[Fe(Ipz)][Hg(SCN) 4 ]} n (Ipz = iodopyrazine, 1‐I ) as tunable THz absorbers. 1‐Cl and 1‐Br form isostructural three‐dimensional frameworks closely related to 1‐F , differentiated in the Xpz ligand orientation. In contrast, 1‐I adopts a distinct two‐dimensional framework due to the more sterically demanding halogen. Clear differences are observed in the sub‐THz (< 1 THz) absorption features between the four materials, with the lowest features shifting to lower frequencies from 1‐F to 1‐Br . As these materials contain open‐shell high‐spin Fe(II) ions, we show that the application of a magnetic field can precisely modulate low‐frequency (LF) Raman bands by ca. 0.06 THz/T at 4 K in the THz range. We show using Raman magnetospectroscopy (RAMS) that this tunability arises from the zero‐field splitting (ZFS) of Fe(II).

Angewandte Chemie International Edition
Australian National University (AU), University of Macau (MO), University of Manchester (GB), National High Magnetic Field Laboratory (US), The University of Tokyo (JP), Florida Agricultural and Mechanical University (US)
Openalex Percentile: Top 32%
Organic and Molecular Conductors Research
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