L I P

Laboratório de Instrumentação e Física Experimental de Partículas

L I P

L I P [PARTICLES AND TECHNOLOGY]

Co-financiado por:

FCT 
República Portuguesa 

Nome
Excitações em materiais quânticos 2D/INL

Código
PTDC/FIS-MAC/2045/2021

Entidade Beneficiária

LIP - Laboratório de Instrumentação e Física Experimental de Partículas


Sumário do Projecto

Materials whose electronic properties are governed by emergent quantum electronic phenomena, such as topological insulators, Mott insulators, unconventional superconductors and2D magnets fall into the broad label of Quantum Materials. In this project we will study collective excitations, such as magnons, paramagnons, excitons, plasmons in two dimensional(2D) quantum materials of two types: 2D crystals with either magnetic order, such as CrI3, oxychlorides, and Fe2GeTe3, or superconducting order, such as NbSe2, and Van derWaals heterostructures combining them both with each other other and with other 2D crystals such as graphene and transition metal dichalcogenides.The study of collective excitations is of paramount importance for two reasons. First, collective excitations govern the response of these materials to experimental probes, and arethus essential to turn experimental data into physical insight about the materials. Second, collective excitations behave as quasiparticles that can be used to store and carryinformation, both classical and quantum, providing a platform for advanced technologies, and can also be the glue for superconducting pairing.In this project we address, from the theory standpoint, several open questions in the field of 2D crystals that feature either magnetic or superconducting order, as well their Van derWaals heterostructures. In all cases, hybridization between different classes the collective modes plays a crucial role and requires to go beyond the state of the art methods. Weconsider two types of hybridization. In 2D crystals with strong spin-orbit coupling or strong magneto-dichroism, the spin response function is coupled to the charge and opticalresponse functions. The second type of hybridization studied here occurs in Van der Waals heterostructures that bring different 2D crystals. In both cases, the standardapproximation of treating the spin, charge and optical response functions as decoupled objects fails.The main scientific questions that we shall address in this project are:1) To understand the role of spin-orbit coupling, and the concomitant spin splitting, in the spin fluctuations of the nearly ferromagnetic phase of two dimensional 2H-NbSe2, and therelevance of the spin-fluctuations as pairing mechanism for superconductivity in this material.2) To quantify the magnitude of the optically induced magnetization and second harmonic generation in ferromagnetic 2D crystals (such as CrI3) and alloys (such as WSe2:V), aswell as antiferromagnetic crystals such as FeOCl.3) To model hybrid collective modes, such as plasmon-magnon, Higgs mode-plasmon, and magnon-magnon, that arise either in single 2D crystals, because of strong spin-orbitcoupling, or in Van der Waals heterojunctions, including twisted bilayers, because of interlayer interactions, and to explore new magnetic resonance methods made possible by them.Our methods combine the use of density functional theory (DFT) calculations with model Hamiltonians both for electrons and spins. In both cases, the calculation of responsefunctions is essential, and counts with the track record of the proponents computing excitons, plasmons and magnons, including the development of our own methods for this matter[COS20a,COS20b, MOU20].In this project we shall develop two new computational tools. On one side, we shall complete a generalized Random Phase Approximation (g-RPA) that permits to compute the spinand charge response function of systems with strong spin orbit coupling. On the other hand we shall develop a numerical method to compute non-linear response functions, basedon DFT, addressing the band disentangling problem by means of machine learning techniques.This project has an enormous potential to be disruptive in several fronts:We will try to solve the long-standing mystery of the origin of superconductivity in 2H- NbSe2, and its connection with the charge density wave and spin fluctuations.Our g-RPA formalism will permit us to understand the response of coupled spin-charge dynamics of 2D crystals with large spin-orbit coupling, going beyond a six-decade-oldparadigm that treats them separately. This will unveil the existence of novel hybrid collective modes, such as magnon-plasmon polaritons in 2D conducting ferromagnets.Our understanding of hybrid collective modes will permit us to design new ways to excite and probe magnetic resonance in 2D materials, opening thereby a new window to explorethem. In addition, the new hybrid modes may have topological gaps at energies accessible to conventional probes.The proponent team brings together experts in 2D materials and in the computation of excitons, magnons and plasmons, with a wide-ranging toolbox of calculation methods thatcombines models, DFT, machine learning and an outstanding track publication, citation record, and several relevant recent papers in high profile journals.    


Suporte sob

Reforçar a investigação, o desenvolvimento tecnológico e a inovação

Região de Intervenção

...

 

Financiamento

Custo total elegível
€ 18,750.00

Apoio financeiro da UE
Financiamento p/ LIP
€ 0.00
€ 18,750.00

Apoio financeiro público Nacional
€ 18.750¤ (LIP) de 249.133,40¤ (OT)

 

Datas

Aprovação
2021-10-15

Início
2022-01-01

Fim
2024-12-31

 

Reconhecimentos

Entidades Beneficiárias:

Laboratório Ibérico Internacional de Nanotecnologias INL LIN (INL) - Proponente

Laboratório de Instrumentação e Física Experimental de Partículas (LIP) - Participante

Universidade do Minho (UM) - Participante

 

Versão Extensa: Este trabalho é financiado por fundos nacionais através da FCT - Fundação para a Ciência e a Tecnologia, I.P., no âmbito do projeto PTDC/FIS-MAC/2045/2021

Versão Resumida: OE,FCT-Portugal, PTDC/FIS-MAC/2045/2021



Publicações


Berry: A code for the differentiation of Bloch wavefunctions from DFT calculationsArticle in international journal (with direct contribution from team)published

Apresentações


Berry: Disentangling electronic bandsPoster presentation in national or international meeting

Equipa


Nuno Filipe da Silva Fernandes de Castro




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