SwePub
Sök i SwePub databas

  Utökad sökning

Träfflista för sökning "WFRF:(Erhart A) srt2:(2020-2024)"

Sökning: WFRF:(Erhart A) > (2020-2024)

  • Resultat 1-9 av 9
Sortera/gruppera träfflistan
   
NumreringReferensOmslagsbildHitta
1.
  • Botvinik-Nezer, Rotem, et al. (författare)
  • Variability in the analysis of a single neuroimaging dataset by many teams
  • 2020
  • Ingår i: Nature. - : Springer Science and Business Media LLC. - 0028-0836 .- 1476-4687. ; 582, s. 84-88
  • Tidskriftsartikel (refereegranskat)abstract
    • Data analysis workflows in many scientific domains have become increasingly complex and flexible. Here we assess the effect of this flexibility on the results of functional magnetic resonance imaging by asking 70 independent teams to analyse the same dataset, testing the same 9 ex-ante hypotheses(1). The flexibility of analytical approaches is exemplified by the fact that no two teams chose identical workflows to analyse the data. This flexibility resulted in sizeable variation in the results of hypothesis tests, even for teams whose statistical maps were highly correlated at intermediate stages of the analysis pipeline. Variation in reported results was related to several aspects of analysis methodology. Notably, a meta-analytical approach that aggregated information across teams yielded a significant consensus in activated regions. Furthermore, prediction markets of researchers in the field revealed an overestimation of the likelihood of significant findings, even by researchers with direct knowledge of the dataset(2-5). Our findings show that analytical flexibility can have substantial effects on scientific conclusions, and identify factors that may be related to variability in the analysis of functional magnetic resonance imaging. The results emphasize the importance of validating and sharing complex analysis workflows, and demonstrate the need for performing and reporting multiple analyses of the same data. Potential approaches that could be used to mitigate issues related to analytical variability are discussed. The results obtained by seventy different teams analysing the same functional magnetic resonance imaging dataset show substantial variation, highlighting the influence of analytical choices and the importance of sharing workflows publicly and performing multiple analyses.
  •  
2.
  • Brorsson, Joakim, 1988, et al. (författare)
  • Efficient Calculation of the Lattice Thermal Conductivity by Atomistic Simulations with Ab Initio Accuracy
  • 2022
  • Ingår i: Advanced Theory and Simulations. - : Wiley. - 2513-0390. ; 5:2
  • Tidskriftsartikel (refereegranskat)abstract
    • High-order force constant expansions can provide accurate representations of the potential energy surface relevant to vibrational motion. They can be efficiently parametrized using quantum mechanical calculations and subsequently sampled at a fraction of the cost of the underlying reference calculations. Here, force constant expansions are combined via the hiphive package with GPU-accelerated molecular dynamics simulations via the GPUMD package to obtain an accurate, transferable, and efficient approach for sampling the dynamical properties of materials. The performance of this methodology is demonstrated by applying it both to materials with very low thermal conductivity (Ba8Ga16Ge30, SnSe) and a material with a relatively high lattice thermal conductivity (monolayer-MoS2). These cases cover both situations with weak (monolayer-MoS2, SnSe) and strong (Ba8Ga16Ge30) pho renormalization. The simulations also enable to access complementary information such as the spectral thermal conductivity, which allows to discriminate the contribution by different phonon modes while accounting for scattering to all orders. The software packages described here are made available to the scientific community as free and open-source software in order to encourage the more widespread use of these techniques as well as their evolution through continuous and collaborative development.
  •  
3.
  • Hashemi, A., et al. (författare)
  • Photoluminescence line shapes for color centers in silicon carbide from density functional theory calculations
  • 2021
  • Ingår i: Physical Review B. - 2469-9969 .- 2469-9950. ; 103:12
  • Tidskriftsartikel (refereegranskat)abstract
    • Silicon carbide with optically and magnetically active point defects offers unique opportunities for quantum technology applications. Since interaction with these defects commonly happens through optical excitation and deexcitation, a complete understanding of their light-matter interaction in general and optical signatures in particular is crucial. Here, we employ quantum mechanical density functional theory calculations to investigate the photoluminescence line shapes of selected, experimentally observed color centers (including single vacancies, double vacancies, and vacancy-impurity pairs) in 4H-SiC. The analysis of zero-phonon lines as well as Huang-Rhys and Debye-Waller factors is accompanied by a detailed study of the underlying lattice vibrations. We show that the defect line shapes are governed by strong coupling to bulk phonons at lower energies and localized vibrational modes at higher energies. Generally, good agreement with the available experimental data is obtained, and thus we expect our theoretical work to be beneficial for the identification of defect signatures in the photoluminescence spectra and thereby advance the research in quantum photonics and quantum information processing.
  •  
4.
  • Shang, Z., et al. (författare)
  • Local vibrational modes of Si vacancy spin qubits in SiC
  • 2020
  • Ingår i: Physical Review B. - 2469-9969 .- 2469-9950. ; 101:14
  • Tidskriftsartikel (refereegranskat)abstract
    • Silicon carbide is a very promising platform for quantum applications because of the extraordinary spin and optical properties of point defects in this technologically friendly material. These properties are strongly influenced by crystal vibrations, but the exact relationship between them and the behavior of spin qubits is not fully investigated. We uncover the local vibrational modes of the Si vacancy spin qubits in as-grown 4H-SiC. We apply microwave-assisted spectroscopy to isolate the contribution from one particular type of defects, the so-called V2 center, and observe the zero-phonon line together with seven equally separated phonon replicas. Furthermore, we present first-principles calculations of the photoluminescence line shape, which are in excellent agreement with our experimental data. To boost up the calculation accuracy and decrease the computation time, we extract the force constants using machine-learning algorithms. This allows us to identify the dominant modes in the lattice vibrations coupled to an excited electron during optical emission in the Si vacancy. A resonance phonon energy of 36 meV and a Debye-Waller factor of about 6% are obtained. We establish experimentally that the activation energy of the optically induced spin polarization is given by the local vibrational energy. Our findings give insight into the coupling of electronic states to vibrational modes in SiC spin qubits, which is essential to predict their spin, optical, mechanical, and thermal properties. The approach described can be applied to a large variety of spin defects with spectrally overlapped contributions in SiC as well as in other three-and two-dimensional materials.
  •  
5.
  • Kim, Shi En, et al. (författare)
  • Extremely anisotropic van der Waals thermal conductors
  • 2021
  • Ingår i: Nature. - : Springer Science and Business Media LLC. - 0028-0836 .- 1476-4687. ; 597:7878, s. 660-665
  • Tidskriftsartikel (refereegranskat)abstract
    • The densification of integrated circuits requires thermal management strategies and high thermal conductivity materials1–3. Recent innovations include the development of materials with thermal conduction anisotropy, which can remove hotspots along the fast-axis direction and provide thermal insulation along the slow axis4,5. However, most artificially engineered thermal conductors have anisotropy ratios much smaller than those seen in naturally anisotropic materials. Here we report extremely anisotropic thermal conductors based on large-area van der Waals thin films with random interlayer rotations, which produce a room-temperature thermal anisotropy ratio close to 900 in MoS2, one of the highest ever reported. This is enabled by the interlayer rotations that impede the through-plane thermal transport, while the long-range intralayer crystallinity maintains high in-plane thermal conductivity. We measure ultralow thermal conductivities in the through-plane direction for MoS2 (57 ± 3 mW m−1 K−1) and WS2 (41 ± 3 mW m−1 K−1) films, and we quantitatively explain these values using molecular dynamics simulations that reveal one-dimensional glass-like thermal transport. Conversely, the in-plane thermal conductivity in these MoS2 films is close to the single-crystal value. Covering nanofabricated gold electrodes with our anisotropic films prevents overheating of the electrodes and blocks heat from reaching the device surface. Our work establishes interlayer rotation in crystalline layered materials as a new degree of freedom for engineering-directed heat transport in solid-state systems.
  •  
6.
  • Klein, Andreas, et al. (författare)
  • The Fermi energy as common parameter to describe charge compensation mechanisms: A path to Fermi level engineering of oxide electroceramics
  • 2023
  • Ingår i: Journal of Electroceramics. - 1573-8663 .- 1385-3449.
  • Tidskriftsartikel (refereegranskat)abstract
    • Chemical substitution, which can be iso- or heterovalent, is the primary strategy to tailor material properties. There are various ways how a material can react to substitution. Isovalent substitution changes the density of states while heterovalent substitution, i.e. doping, can induce electronic compensation, ionic compensation, valence changes of cations or anions, or result in the segregation or neutralization of the dopant. While all these can, in principle, occur simultaneously, it is often desirable to select a certain mechanism in order to determine material properties. Being able to predict and control the individual compensation mechanism should therefore be a key target of materials science. This contribution outlines the perspective that this could be achieved by taking the Fermi energy as a common descriptor for the different compensation mechanisms. This generalization becomes possible since the formation enthalpies of the defects involved in the various compensation mechanisms do all depend on the Fermi energy. In order to control material properties, it is then necessary to adjust the formation enthalpies and charge transition levels of the involved defects. Understanding how these depend on material composition will open up a new path for the design of materials by Fermi level engineering.
  •  
7.
  • Mortensen, Jens Jorgen, et al. (författare)
  • GPAW: An open Python package for electronic structure calculations
  • 2024
  • Ingår i: Journal of Chemical Physics. - 1089-7690 .- 0021-9606. ; 160:9
  • Tidskriftsartikel (refereegranskat)abstract
    • We review the GPAW open-source Python package for electronic structure calculations. GPAW is based on the projector-augmented wave method and can solve the self-consistent density functional theory (DFT) equations using three different wave-function representations, namely real-space grids, plane waves, and numerical atomic orbitals. The three representations are complementary and mutually independent and can be connected by transformations via the real-space grid. This multi-basis feature renders GPAW highly versatile and unique among similar codes. By virtue of its modular structure, the GPAW code constitutes an ideal platform for the implementation of new features and methodologies. Moreover, it is well integrated with the Atomic Simulation Environment (ASE), providing a flexible and dynamic user interface. In addition to ground-state DFT calculations, GPAW supports many-body GW band structures, optical excitations from the Bethe-Salpeter Equation, variational calculations of excited states in molecules and solids via direct optimization, and real-time propagation of the Kohn-Sham equations within time-dependent DFT. A range of more advanced methods to describe magnetic excitations and non-collinear magnetism in solids are also now available. In addition, GPAW can calculate non-linear optical tensors of solids, charged crystal point defects, and much more. Recently, support for graphics processing unit (GPU) acceleration has been achieved with minor modifications to the GPAW code thanks to the CuPy library. We end the review with an outlook, describing some future plans for GPAW.
  •  
8.
  • Thompson, J. J.P., et al. (författare)
  • Phonon-Bottleneck Enhanced Exciton Emission in 2D Perovskites
  • 2024
  • Ingår i: Advanced Energy Materials. - 1614-6840 .- 1614-6832. ; 14:20
  • Tidskriftsartikel (refereegranskat)abstract
    • Layered halide perovskites exhibit remarkable optoelectronic properties and technological promise, driven by strongly bound excitons. The interplay of spin-orbit and exchange coupling creates a rich excitonic landscape, determining their optical signatures and exciton dynamics. Despite the dark excitonic ground state, surprisingly efficient emission from higher-energy bright states has puzzled the scientific community, sparking debates on relaxation mechanisms. Combining low-temperature magneto-optical measurements with sophisticated many-particle theory, the origin of the bright exciton emission in perovskites is elucidated by tracking the thermalization of dark and bright excitons under a magnetic field. The unexpectedly high emission is clearly attributed to a pronounced phonon-bottleneck effect, considerably slowing down the relaxation toward the energetically lowest dark states. It is demonstrated that this bottleneck can be tuned by manipulating the bright-dark energy splitting and optical phonon energies, offering valuable insights and strategies for controlling exciton emission in layered perovskite materials that is crucial for optoelectronics applications.
  •  
9.
  • Wang, Zhihang, 1989, et al. (författare)
  • Storing energy with molecular photoisomers
  • 2021
  • Ingår i: Joule. - : Elsevier BV. - 2542-4351. ; 5:12, s. 3116-3136
  • Forskningsöversikt (refereegranskat)abstract
    • Some molecular photoisomers can be isomerized to a metastable high-energy state by exposure to light. These molecules can then be thermally or catalytically converted back to their initial state, releasing heat in the process. Such a reversible photochemical process has been considered for developing molecular solar thermal (MOST) systems. In this review, we introduce the concept, criteria, and state-of-the-art of MOST systems, with an emphasis on the three most promising molecular systems: norbornadiene/quadricyclane, E/Z-azobenzene, and dihydroazulene/vinylheptafulvene. After discussing the fundamental working principles, we focus on molecular design strategies for improving solar energy storage performance, remaining challenges, and potential focus areas. Finally, we summarize the current molecular incorporation into functional devices and conclude with a perspective on challenges and future directions.
  •  
Skapa referenser, mejla, bekava och länka
  • Resultat 1-9 av 9
Typ av publikation
tidskriftsartikel (8)
forskningsöversikt (1)
Typ av innehåll
refereegranskat (9)
Författare/redaktör
Erhart, Paul, 1978 (8)
Zhou, S. (1)
Nilsonne, Gustav (1)
Botvinik-Nezer, Rote ... (1)
Dreber Almenberg, An ... (1)
Holzmeister, Felix (1)
visa fler...
Huber, Juergen (1)
Johannesson, Magnus (1)
Kirchler, Michael (1)
Poldrack, Russell A. (1)
Schonberg, Tom (1)
Brorsson, Joakim, 19 ... (1)
Tinghög, Gustav, 197 ... (1)
Malic, Ermin, 1980 (1)
Glerean, Enrico (1)
Moth-Poulsen, Kasper ... (1)
Walter, Michael (1)
Chen, Xi (1)
Susi, Toma (1)
Zhang, Lei (1)
Jónsson, Hannes (1)
Shang, Z. (1)
Klein, Andreas (1)
Heunis, Stephan (1)
Cunningham, William ... (1)
Lamm, Claus (1)
Li, Tao (1)
Fojt, Jakub, 1996 (1)
Schäfer, Christian, ... (1)
Baranowski, M (1)
Hamilton, Paul J., 1 ... (1)
Durnez, Joke (1)
Weidenkaff, Anke (1)
Zhang, Xu (1)
Rohrer, Jochen, 1978 (1)
Brummel, Olaf (1)
Libuda, Jörg (1)
Wang, Zhihang, 1989 (1)
Levi, Gianluca (1)
Camerer, Colin F. (1)
Iwanir, Roni (1)
Mumford, Jeanette A. (1)
Adcock, R. Alison (1)
Avesani, Paolo (1)
Baczkowski, Blazej M ... (1)
Bajracharya, Aahana (1)
Bakst, Leah (1)
Ball, Sheryl (1)
Barilari, Marco (1)
Bault, Nadege (1)
visa färre...
Lärosäte
Chalmers tekniska högskola (8)
Stockholms universitet (1)
Linköpings universitet (1)
Handelshögskolan i Stockholm (1)
Karolinska Institutet (1)
Språk
Engelska (9)
Forskningsämne (UKÄ/SCB)
Naturvetenskap (9)
Teknik (3)
Medicin och hälsovetenskap (1)
Samhällsvetenskap (1)

År

Kungliga biblioteket hanterar dina personuppgifter i enlighet med EU:s dataskyddsförordning (2018), GDPR. Läs mer om hur det funkar här.
Så här hanterar KB dina uppgifter vid användning av denna tjänst.

 
pil uppåt Stäng

Kopiera och spara länken för att återkomma till aktuell vy