HEИндивидуална стипендия2022–2024

ezEmbedMagnet · Quantum Chemical Design of Molecular Magnets

„Хоризонт Европа“ — Действия „Мария Склодовска-Кюри“

Период
2022-11-01 → 2024-10-31
Финансиране от ЕС
175 920 €
Участници
2
Схема
HORIZON-TMA-MSCA-PF-EF

Линиите свързват координатора с партньорите.

Накратко на български

Молекулярните магнити, като кобалт върху повърхности от магнезиев оксид, се анализират чрез нов метод за квантови изчисления. Това помага за по-точното разбиране на магнитните свойства, необходими за развитието на квантовите технологии.

Този кратък обзор е генериран от изкуствен интелект

Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.

Резултати накратко

Quantum Chemical Design of Molecular Magnets

This project aims to design efficient molecular magnets for quantum technologies by introducing a new quantum chemical approach that combines the accuracy of equation-of-motion coupled-cluster singles and doubles (EOM-CCSD) with the efficiency of density functional theory (DFT). Our focus is on two types of systems: linear single-molecule magnets with a twofold-coordinated cobalt(II) magnetic center and cobalt atoms adsorbed on MgO(001) and (111) metallic surfaces. These systems exhibit high spin-reversal energy barriers (i.e. slow magnetic relaxation), which is key to designing efficient molecular magnets. However, a comprehensive understanding of the origins of such magnetic behavior is still lacking. One standard strategy to tackle molecular magnets is to use a multireference method and extract magnetic properties from phenomenological spin Hamiltonians. This approach often yields accurate results; however, outcomes are sensitive to the choice of active-orbital space, and achieving high accuracy requires including dynamic correlation through additional and costly computational steps. For surface-bound metal atoms, DFT+U (i.e. Hubbard correction to DFT) methods are commonly used. However, DFT+U is not parameter-free, and results depend on the functional choice. In contrast, EOM-CCSD offers significant advantages: it does not introduce empirical parameters nor requires active-space selection and accounts for both dynamic and non-dynamic correlation. However, the high computational cost of EOM-CCSD restricts its applications to small molecules. To address this, we present a new embedding approach that applies EOM-CCSD to the magnetic center while using DFT for the remainder, namely EOM-CCSD-in-DFT. Furthermore, embedded EOM-CCSD can be combined with post-processing tools available in the ezMagnet software to predict the spin-reversal barrier, magnetic anisotropy, magnetization, and susceptibility. Equipped with these new tools, our objectives are: (i) to establish new design rules for maximizing spin-reversal barriers in Co(II) complexes, (ii) to identify the preferred adsorption structures of Co atoms on various substrates, and (iii) to assess the influence of the substrate on the Co magnetic behavior. These findings will impact a range of scientific fields, including molecular magnetism, solid-state physics, and quantum chemistry. Furthermore, this project provides a predictive tool for the design of efficient molecular magnets, which will be beneficial to major industry players in developing next-generation molecular quantum devices. The outcomes of this project will also be used to develop additional methods, such as periodic embedding theories for strongly correlated materials, and to describe other complex chemical systems with easily localized active sites, with implications for catalysis and electronics.

Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз

Цел на проекта

A reliable ab initio description of molecular magnets is key to developing a new era of quantum devices that will be more efficient and easier to tune by structural modification of their building units. However, quantum mechanical treatment of such systems is challenging due to their multi-configurational wavefunctions, requiring a well balanced description of their constituent electronic configurations. Furthermore, these systems are often large magnetic molecules or atoms deposited on supports whose models include hundreds of atoms, hampering the application of accurate ab initio methods; yet small energy gaps (from tens to hundreds of wavenumbers) call for quantitative accuracy. The aim of this project is to design new molecular magnets, practical for real-world applications. To this end, I will employ a new and affordable computational strategy that combines accurate equation-of-motion coupled-cluster (EOM-CC) theory on the magnetic center with more approximate density functional theory (DFT) on the remainder, avoiding costly EOM-CC calculations on the full system. I will combine interdisciplinary approaches, EOM-CC-in-DFT for open-shell species and tools computing magnetic properties from ab initio calculations, to determine how microscopic interactions (spin-orbit and Zeeman) contribute to macroscopic magnetic properties and how these are optimized in two model systems: (i) a cobalt(II) single-molecule magnet and (ii) single cobalt atoms on the MgO(001) and Cu(111) surfaces. This project will enable, through collaboration between researchers with complementary expertise, a transfer of knowledge across multiple fields, such as solid-state physics, quantum chemistry, and molecular magnetism. Via research training including a secondment, I will explore new approaches; e.g. modelling metal surfaces, periodic wavefunction theories, and periodic embedding theories, which will be crucial to cultivating my place as an expert in this field.

Оригинален текст от CORDIS (на английски).

Участници

Връзки

Данни: CORDIS, © Европейски съюз