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May 27, 2026SmartMat1 citationsOpen Access

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

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YGYa-Wei GengJHJin‐Hui HuXWXiaoqin Wang

Key Points

  • This study investigates how bulky ligands affect relaxation processes in Dy(III)-based single-molecule magnets (SMMs).
  • Synthesis of three octahedral Dy(III) complexes using tris(5-m-terphenyl)methanol as a bulky ligand.
  • Investigation of the effects of local environments and weak interactions on Orbach, Raman, and QTM relaxation processes.
  • Analysis of effective energy barriers and relaxation rates for the synthesized SMMs.
  • Complex 3 achieves an ultra-high effective energy barrier of 1649 K, highlighting the role of a strong axial crystal field.
  • Raman relaxation is suppressed due to enhanced phonon energy from strong-field axial ligands.
  • Increased geometric symmetry slows QTM rates, explaining the paradox of complex 3 having a higher U eff yet faster QTM.

Abstract

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 ( O h )‐type Dy(III)‐based SMMs DyLCl 2 (THF) 3 ∙2THF ( 1 , THF = tetrahydrofuran), DyLCl 2 (THF) 2 2 ∙2Benz ( 2 , Benz = benzene), and DyL 2 Cl(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 ( U eff ) of 1649 K, which demonstrates the importance of a strong axial crystal field for high U eff . 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 U eff 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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Cite This Study

Geng et al. (2026) studied this question.

synapsesocial.com/papers/6a168b280c924ddd1bd5a1a2https://doi.org/10.1002/smm2.70087
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