David Klar
University of Duisburg-Essen
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Featured researches published by David Klar.
Physical Review Letters | 2015
Markus E. Gruner; W. Keune; B. Roldan Cuenya; C. Weis; Joachim Landers; S. I. Makarov; David Klar; M. Y. Hu; E. E. Alp; Jiyong Zhao; Maria Krautz; O. Gutfleisch; H. Wende
By combination of two independent approaches, nuclear resonant inelastic x-ray scattering and first-principles calculations in the framework of density functional theory, we demonstrate significant changes in the element-resolved vibrational density of states across the first-order transition from the ferromagnetic low temperature to the paramagnetic high temperature phase of LaFe(13-x)Si(x). These changes originate from the itinerant electron metamagnetism associated with Fe and lead to a pronounced magneto-elastic softening despite the large volume decrease at the transition. The increase in lattice entropy associated with the Fe subsystem is significant and contributes cooperatively with the magnetic and electronic entropy changes to the excellent magneto- and barocaloric properties.
Beilstein Journal of Nanotechnology | 2013
David Klar; Svetlana Klyatskaya; Andrea Candini; B. Krumme; K. Kummer; P. Ohresser; Valdis Corradini; Valentina De Renzi; R. Biagi; Loïc Joly; J.P. Kappler; Umberto del Pennino; Marco Affronte; H. Wende; Mario Ruben
Summary The magnetic and electronic properties of single-molecule magnets are studied by X-ray absorption spectroscopy and X-ray magnetic circular dichroism. We study the magnetic coupling of ultrathin Co and Ni films that are epitaxially grown onto a Cu(100) substrate, to an in situ deposited submonolayer of TbPc2 molecules. Because of the element specificity of the X-ray absorption spectroscopy we are able to individually determine the field dependence of the magnetization of the Tb ions and the Ni or Co film. On both substrates the TbPc2 molecules couple antiferromagnetically to the ferromagnetic films, which is possibly due to a superexchange interaction via the phthalocyanine ligand that contacts the magnetic surface.
Scientific Reports | 2016
Andrea Candini; David Klar; Simone Marocchi; Valdis Corradini; R. Biagi; V. De Renzi; U. del Pennino; Filippo Troiani; V. Bellini; Svetlana Klyatskaya; Mario Ruben; K. Kummer; N. B. Brookes; H. Huang; Alessandro Soncini; H. Wende; Marco Affronte
Learning the art of exploiting the interplay between different units at the atomic scale is a fundamental step in the realization of functional nano-architectures and interfaces. In this context, understanding and controlling the magnetic coupling between molecular centers and their environment is still a challenging task. Here we present a combined experimental-theoretical work on the prototypical case of the bis(phthalocyaninato)-lanthanide(III) (LnPc2) molecular nanomagnets magnetically coupled to a Ni substrate. By means of X-ray magnetic circular dichroism we show how the coupling strength can be tuned by changing the Ln ion. The microscopic parameters of the system are determined by ab-initio calculations and then used in a spin Hamiltonian approach to interpret the experimental data. By this combined approach we identify the features of the spin communication channel: the spin path is first realized by the mediation of the external (5d) electrons of the Ln ion, keeping the characteristic features of the inner 4 f orbitals unaffected, then through the organic ligand, acting as a bridge to the external world.
ACS Nano | 2016
Simone Marocchi; Andrea Candini; David Klar; Willem Van den Heuvel; Haibei Huang; Filippo Troiani; Valdis Corradini; R. Biagi; Valentina De Renzi; Svetlana Klyatskaya; K. Kummer; Nicholas B. Brookes; Mario Ruben; H. Wende; Umberto del Pennino; Alessandro Soncini; Marco Affronte; V. Bellini
We investigate the electronic and magnetic properties of TbPc2 single ion magnets adsorbed on a graphene/Ni(111) substrate, by density functional theory (DFT), ab initio complete active space self-consistent field calculations, and X-ray magnetic circular dichroism (XMCD) experiments. Despite the presence of the graphene decoupling layer, a sizable antiferromagnetic coupling between Tb and Ni is observed in the XMCD experiments. The molecule-surface interaction is rationalized by the DFT analysis and is found to follow a relay-like communication pathway, where the radical spin on the organic Pc ligands mediates the interaction between Tb ion and Ni substrate spins. A model Hamiltonian which explicitly takes into account the presence of the spin radical is then developed, and the different magnetic interactions at play are assessed by first-principle calculations and by comparing the calculated magnetization curves with XMCD data. The relay-like mechanism is at the heart of the process through which the spin information contained in the Tb ion is sensed and exploited in carbon-based molecular spintronics devices.
Chemical Communications | 2013
Bernhard Schäfer; Cyril Rajnák; Ivan Šalitroš; Olaf Fuhr; David Klar; Carolin Schmitz-Antoniak; E. Weschke; H. Wende; Mario Ruben
Dalton Transactions | 2014
David Klar; Andrea Candini; Loïc Joly; Svetlana Klyatskaya; B. Krumme; P. Ohresser; J.P. Kappler; Mario Ruben; H. Wende
Journal of Physical Chemistry C | 2014
Andrea Candini; V. Bellini; David Klar; Valdis Corradini; R. Biagi; Valentina De Renzi; K. Kummer; Nicholas B. Brookes; Umberto del Pennino; H. Wende; Marco Affronte
Physical Review B | 2013
David Klar; Barbara Brena; Heike C. Herper; Sumanta Bhandary; C. Weis; B. Krumme; Carolin Schmitz-Antoniak; Biplab Sanyal; Olle Eriksson; H. Wende
Physical Review B | 2014
David Klar; Sumanta Bhandary; Andrea Candini; Loïc Joly; P. Ohresser; Svetlana Klyatskaya; Marika Schleberger; Mario Ruben; Marco Affronte; Olle Eriksson; Biplab Sanyal; H. Wende
Journal of Materials Chemistry C | 2015
Yanhua Lan; Svetlana Klyatskaya; Mario Ruben; Olaf Fuhr; Wolfgang Wernsdorfer; Andrea Candini; Valdis Corradini; Alberto Lodi Rizzini; Umberto del Pennino; Filippo Troiani; Loı̈c Joly; David Klar; H. Wende; Marco Affronte