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Research Article | Open Access

Utilizing a Bulky Ligand to Regulate Orbach, Raman, and QTM Relaxation Processes in a Series of Oh‐Type Dy(Ⅲ)‐Based Single‐Molecule Magnets

Ya‐Wei Geng1Jin‐Hui Hu1Xiao‐Qin Wang1Yulu Liang2Tian Han1( )Peng Cheng2 ( )
School of Chemistry, Xi'an Jiaotong University, Xi'an, China
College of Chemistry, Nankai University, Tianjin, China
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Abstract

Single‐molecule magnets (SMMs) retain magnetic information at the molecular scale, enabling their application in future information storage and processing. Employing a low‐coordination environment has proven to be an effective strategy for enhancing magnetic anisotropy, thereby increasing their operable temperature. Herein, three octahedral (Oh)‐type Dy(Ⅲ)‐based SMMs [DyLCl2(THF)3]∙2THF (1, THF = tetrahydrofuran), [DyLCl2(THF)2]2∙2Benz (2, Benz = benzene), and [DyL2Cl(THF)3] (3) were successfully synthesized using a bulky ligand, tris(5‐m‐terphenyl)methanol (HL). This series of complexes, with similar structural characteristics, offers a platform to systematically investigate the regulatory effects of local environments and weak interactions on Orbach, Raman, and quantum tunneling of magnetization (QTM) relaxation processes. For Orbach process, 3 achieves an ultra‐high effective energy barrier (Ueff) of 1649 K, which demonstrates the importance of a strong axial crystal field for high Ueff. Raman relaxation is suggested to be suppressed by enhanced phonon energy, possibly arising from the synergy of rigid strong‐field axial ligands and weak inter‐/intra‐molecular interactions. Increasing the geometric symmetry and charge‐distribution uniformity helps to slow down the QTM rate, which also rationalizes the anomalous observation that 3 exhibits a higher Ueff yet faster QTM. This study offers insight into strategies for understanding the relaxation mechanisms and structural design principles of Dy(Ⅲ)‐based SMMs.

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Article number: e70087

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Cite this article:
Geng Y, Hu J, Wang X, et al. Utilizing a Bulky Ligand to Regulate Orbach, Raman, and QTM Relaxation Processes in a Series of Oh‐Type Dy(Ⅲ)‐Based Single‐Molecule Magnets. SmartMat, 2026, 7(3): e70087. https://doi.org/10.1002/smm2.70087

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Received: 14 February 2026
Revised: 17 March 2026
Accepted: 09 April 2026
Published: 28 June 2026
© 2026 The Author(s).

This is an open access article under the terms of the Creative Commons Attribution License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.