Quick Navigation
Topics
Quantum Networks
Quantum Chemistry
In silico approach towards nanostructuring of dysprosium bis(amide)-alkene based single-ion magnet onto 1D, 2D, and 3D Network.
PubMed
Authors: Kumari K, Singh SK
Year
2026
Paper ID
72589
Status
Peer-reviewed
Abstract Read
~2 min
Abstract Words
256
Citations
N/A
Abstract
Single-ion magnets (SIMs) are promising candidates for molecular spintronics and quantum technologies; however, their integration into functional nanostructures remains a significant challenge. In this work, we present a comprehensive theoretical investigation of a high-performance dysprosium bis(amide)-alkene complex, \[Dy{N(SiPr)[SiPrC(CH) = CHCH\]}{N(SiPr)(SiPrEt)}] (1), embedded in three distinct environments: a one-dimensional (1D) carbon nanotube (CNT(20,0)), a two-dimensional (2D) Au(111) surface, and the three-dimensional (3D) porous framework MOF-177. By combining periodic density functional theory (pDFT) and CASSCF-SO calculations, we elucidate the influence of dimensionality on SIM behavior across these assemblies. pDFT calculations predict binding energies of -236.5, -109.1, and -68.7 kcal mol for 1@CNT, 1@Au(111), and 1@MOF-177, respectively, while structural analysis reveals that the molecular geometry remains largely preserved upon incorporation. CASSCF-SO results performed on DFT optimized geometry show stabilization of the |±15/2〉 ground state with near-ideal Ising-type anisotropy ( ≈ 19.98-19.99) in all cases. The computed barrier heights () are 1564.3, 1525.5, and 1904.9 cm for 1@CNT, 1@MOF-177, and 1@Au(111), respectively, which is close to the value of 1820.4 cm observed for 1. Notably, deposition of 1 on Au(111) leads to the opening of the ∠N-Dy-N bond angle, increasing the magnetic anisotropy barrier, and suppressing the quantum tunneling of magnetization by approximately two orders of magnitude compared to 1. Importantly, both DFT and multireference calculations confirm that molecular properties and SIM behavior are retained across all three environments, highlighting a viable strategy for organizing magnetic molecules at the nanoscale. Overall, this study demonstrates that surface-induced ligand-field engineering can outperform confinement-based approaches, identifying Au(111) as a particularly promising platform for stabilizing such high-performance SIMs.
Why This Paper Matters
- This paper contributes to the Quantum Networks research area in the Quantum Articles archive.
- It adds a 2026 reference point for readers tracking recent quantum research.
- Single-ion magnets (SIMs) are promising candidates for molecular spintronics and quantum technologies; however, their integration into functional nanostructures remains a...
Paper Tools
Become a member to use research tools
Sign in to open papers, visit source links, share, cite, compare, copy DOI links, request category corrections, and build your reading list.
Publisher Share
Cite This Paper
Copy URL
Compare
Copy DOI Add to Reading List
Category Correction Request
Category Correction Request
Help us improve classification quality by proposing a better category. Every request is reviewed by an admin.
Sign in to submit a category correction request for this paper.
Log In to SubmitReferences & Citation Signals
Community Reactions
Quick sentiment from readers on this paper.
Score:
0
Likes: 0
Dislikes: 0
Sign in to react to this paper.
Discussion & Reviews (Moderated)
Average Rating: 0.0 / 5 (0 ratings)
No written reviews yet.