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Dive into the research topics where Alan Molinari is active.

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Featured researches published by Alan Molinari.


Journal of Synchrotron Radiation | 2014

The power of in situ pulsed laser deposition synchrotron characterization for the detection of domain formation during growth of Ba0.5Sr0.5TiO3 on MgO

Sondes Bauer; Sergey Lazarev; Alan Molinari; Andreas Breitenstein; Philipp M. Leufke; Robert Kruk; Horst Hahn; Tilo Baumbach

A highly sophisticated pulsed laser deposition (PLD) chamber has recently been installed at the NANO beamline at the synchrotron facility ANKA (Karlsruhe, Germany), which allows for comprehensive studies on the PLD growth process of dielectric, ferroelectric and ferromagnetic thin films in epitaxial oxide heterostructures or even multilayer systems by combining in situ reflective high-energy diffraction with the in situ synchrotron high-resolution X-ray diffraction and surface diffraction methods. The modularity of the in situ PLD chamber offers the opportunity to explore the microstructure of the grown thin films as a function of the substrate temperature, gas pressure, laser fluence and target-substrate separation distance. Ba0.5Sr0.5TiO3 grown on MgO represents the first system that is grown in this in situ PLD chamber and studied by in situ X-ray reflectivity, in situ two-dimensional reciprocal space mapping of symmetric X-ray diffraction and acquisition of time-resolved diffraction profiles during the ablation process. In situ PLD synchrotron investigation has revealed the occurrence of structural distortion as well as domain formation and misfit dislocation which all depend strongly on the film thickness. The microstructure transformation has been accurately detected with a time resolution of 1 s. The acquisition of two-dimensional reciprocal space maps during the PLD growth has the advantage of simultaneously monitoring the changes of the crystalline structure as well as the formation of defects. The stability of the morphology during the PLD growth is demonstrated to be remarkably affected by the film thickness. A critical thickness for the domain formation in Ba0.5Sr0.5TiO3 grown on MgO could be determined from the acquisition of time-resolved diffraction profiles during the PLD growth. A splitting of the diffraction peak into two distinguishable peaks has revealed a morphology change due to modification of the internal strain during growth.


Nature Communications | 2017

Hybrid supercapacitors for reversible control of magnetism

Alan Molinari; Philipp M. Leufke; Christian Reitz; Subho Dasgupta; Ralf Witte; Robert Kruk; Horst Hahn

Electric field tuning of magnetism is one of the most intensely pursued research topics of recent times aiming at the development of new-generation low-power spintronics and microelectronics. However, a reversible magnetoelectric effect with an on/off ratio suitable for easy and precise device operation is yet to be achieved. Here we propose a novel route to robustly tune magnetism via the charging/discharging processes of hybrid supercapacitors, which involve electrostatic (electric-double-layer capacitance) and electrochemical (pseudocapacitance) doping. We use both charging mechanisms—occurring at the La0.74Sr0.26MnO3/ionic liquid interface to control the balance between ferromagnetic and non-ferromagnetic phases of La1−xSrxMnO3 to an unprecedented extent. A magnetic modulation of up to ≈33% is reached above room temperature when applying an external potential of only about 2.0 V. Our case study intends to draw attention to new, reversible physico-chemical phenomena in the rather unexplored area of magnetoelectric supercapacitors.


Advanced Materials | 2018

Voltage‐Controlled On/Off Switching of Ferromagnetism in Manganite Supercapacitors

Alan Molinari; Horst Hahn; Robert Kruk

The ever-growing technological demand for more advanced microelectronic and spintronic devices keeps catalyzing the idea of controlling magnetism with an electric field. Although voltage-driven on/off switching of magnetization is already established in some magnetoelectric (ME) systems, often the coupling between magnetic and electric order parameters lacks an adequate reversibility, energy efficiency, working temperature, or switching speed. Here, the ME performance of a manganite supercapacitor composed of a ferromagnetic, spin-polarized ultrathin film of La0.74 Sr0.26 MnO3 (LSMO) electrically charged with an ionic liquid electrolyte is investigated. Fully reversible, rapid, on/off switching of ferromagnetism in LSMO is demonstrated in combination with a shift in Curie temperature of up to 26 K and a giant ME coupling coefficient of ≈226 Oe V-1 . The application of voltages of only ≈2 V results in ultralow energy consumptions of about 90 µJ cm-2 . This work provides a step forward toward low-power, high-endurance electrical switching of magnetism for the development of high-performance ME spintronics.


Materials | 2017

Proton Conduction in Grain-Boundary-Free Oxygen-Deficient BaFeO2.5+δ Thin Films

Alexander Benes; Alan Molinari; Ralf Witte; Robert Kruk; Joachim Brötz; Reda Chellali; Horst Hahn; Oliver Clemens

Reduction of the operating temperature to an intermediate temperature range between 350 °C and 600 °C is a necessity for Solid Oxide Fuel/Electrolysis Cells (SOFC/SOECs). In this respect the application of proton-conducting oxides has become a broad area of research. Materials that can conduct protons and electrons at the same time, to be used as electrode catalysts on the air electrode, are especially rare. In this article we report on the proton conduction in expitaxially grown BaFeO2.5+δ (BFO) thin films deposited by pulsed laser deposition on Nb:SrTiO3 substrates. By using Electrochemical Impedance Spectroscopy (EIS) measurements under different wet and dry atmospheres, the bulk proton conductivity of BFO (between 200 °C and 300 °C) could be estimated for the first time (3.6 × 10−6 S cm−1 at 300 °C). The influence of oxidizing measurement atmosphere and hydration revealed a strong dependence of the conductivity, most notably at temperatures above 300 °C, which is in good agreement with the hydration behavior of BaFeO2.5 reported previously.


Journal of the Royal Society Interface | 2015

Isotropic microscale mechanical properties of coral skeletons

Luca Pasquini; Alan Molinari; Paola Fantazzini; Yannicke Dauphen; Jean-Pierre Cuif; Oren Levy; Zvy Dubinsky; Erik Caroselli; Fiorella Prada; Stefano Goffredo; Matteo Di Giosia; Michela Reggi; Giuseppe Falini

Scleractinian corals are a major source of biogenic calcium carbonate, yet the relationship between their skeletal microstructure and mechanical properties has been scarcely studied. In this work, the skeletons of two coral species: solitary Balanophyllia europaea and colonial Stylophora pistillata, were investigated by nanoindentation. The hardness HIT and Youngs modulus EIT were determined from the analysis of several load–depth data on two perpendicular sections of the skeletons: longitudinal (parallel to the main growth axis) and transverse. Within the experimental and statistical uncertainty, the average values of the mechanical parameters are independent on the sections orientation. The hydration state of the skeletons did not affect the mechanical properties. The measured values, EIT in the 76–77 GPa range, and HIT in the 4.9–5.1 GPa range, are close to the ones expected for polycrystalline pure aragonite. Notably, a small difference in HIT is observed between the species. Different from corals, single-crystal aragonite and the nacreous layer of the seashell Atrina rigida exhibit clearly orientation-dependent mechanical properties. The homogeneous and isotropic mechanical behaviour of the coral skeletons at the microscale is correlated with the microstructure, observed by electron microscopy and atomic force microscopy, and with the X-ray diffraction patterns of the longitudinal and transverse sections.


Materials | 2018

Anion Doping of Ferromagnetic Thin Films of La0.74Sr0.26MnO3−δ via Topochemical Fluorination

Parvathy Anitha Sukkurji; Alan Molinari; Christian Reitz; Ralf Witte; Christian Kübel; Venkata Sai Kiran Chakravadhanula; Robert Kruk; Oliver Clemens

Chemical doping via insertion of ions into the lattice of a host material is a key strategy to flexibly manipulate functionalities of materials. In this work, we present a novel case study on the topotactic insertion of fluoride ions into oxygen-deficient ferromagnetic thin films of La0.74Sr0.26MnO3−δ (LSMO) epitaxially grown onto single-crystal SrTiO3 (STO) substrates. The effect of fluorination on the film structure, composition, and magnetic properties is compared with the case of oxygen-deficient and fully-oxidized LSMO films. Although incorporation of F− anions does not significantly alter the volume of the LSMO unit cell, a strong impact on the magnetic characteristics, including a remarkable suppression of Curie temperature and saturation magnetization accompanied by an increase in magnetic coercivity, was found. The change in magnetic properties can be ascribed to the disruption of the ferromagnetic exchange interactions along Mn-anion-Mn chains driven by F− doping into the LSMO lattice. Our results indicate that F− doping is a powerful means to effectively modify the magnetic functional properties of perovskite manganites.


International Journal of Hydrogen Energy | 2016

Interface and strain effects on the H-sorption thermodynamics of size-selected Mg nanodots

Alan Molinari; Federico D'Amico; Marco Calizzi; Yan Zheng; Christiaan Boelsma; Lennard Mooij; Yong Lei; Horst Hahn; Bernard Dam; Luca Pasquini


Journal of Physics D | 2017

Structure and conductivity of epitaxial thin films of barium ferrite and its hydrated form BaFeO2.5-x+δ(OH)2x

Parvathy Anitha Sukkurji; Alan Molinari; Alexander Benes; Christoph Loho; Venkata Sai Kiran Chakravadhanula; Suresh Kumar Garlapati; Robert Kruk; Oliver Clemens


Microscopy and Microanalysis | 2018

Electron Beam Effects on Silicon Oxide Films – Structure and Electrical Properties

Krishna Kanth Neelisetty; S. Gutsch; Falk von Seggern; Alan Molinari; Alexander Vahl; Xiaoke Mu; Torsten Scherer; Chakravadhanula Vs Kiran; Christian Kübel


DPG-Frühjahrstagung der Sektion Kondensierte Materie gemeinsam mit der EPS, Fachverband Magnetismus, Berlin, 11.-16.März 2018 | 2018

On-off switching of magnetism in ultrathin films of La₁₋ₓSrₓMnO₃ gated with an ionic liquid

Alan Molinari; Robert Kruk; Horst Hahn

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Robert Kruk

Karlsruhe Institute of Technology

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Horst Hahn

Karlsruhe Institute of Technology

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Ralf Witte

Karlsruhe Institute of Technology

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Oliver Clemens

Technische Universität Darmstadt

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Alexander Benes

Technische Universität Darmstadt

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Christian Kübel

Karlsruhe Institute of Technology

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Philipp M. Leufke

Karlsruhe Institute of Technology

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