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A. Riminucci

Publications and source records attributed to A. Riminucci.

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Enhancing Light Emission in Interface Engineered Spin-OLEDs Through Spin-Polarized Injection at High Voltages

The quest for a spin-polarized organic light emitting diode (spin-OLED) is a common goal in the emerging fields of molecular electronics and spintronics. In this device two ferromagnetic electrodes are used to enhance the electroluminescence intensity of the OLED through a magnetic control of the spin polarization of the injected carriers. The major difficulty is that the driving voltage of an OLED device exceeds of a few volts, while spin injection in organic materials is only efficient at low voltages. We report here the fabrication of a spin-OLED that uses a conjugated polymer as bipolar spin collector layer and ferromagnetic electrodes. Through a careful engineering of the organic/inorganic interfaces we have succeeded in obtaining a light-emitting device showing spin-valve effects at high voltages (up to 14 V). This has allowed us to detect a magneto-electroluminescence enhancement on the order of a 2.4 % at 9 V for the antiparallel configuration of the magnetic electrodes. This observation provides evidence for the long-standing fundamental issue of injecting spins from magnetic electrodes into the frontier levels of a molecular semiconductor. Our finding opens the way for the design of multifunctional devices coupling the light and the spin degrees of freedom.

cond-mat.mes-hall

Negative Spin Valve effects in manganite/organic based devices

We report detailed investigations of hybrid organic-inorganic vertical spin valves. Spin polarized injection in tris(8-hydroxyquinoline) aluminum (Alq3) organic semiconductor (OS) was performed using La0.7Sr0.3MnO3 manganite as the bottom electrode and Co as the top electrode. While manganite was directly connected to the organic semiconductor layer, a thin tunnel barrier was placed between the OS and the Co electrode. A clear negative spin valve effect - low resistance for antiparallel electrodes configuration - was observed below 210 K in various devices using two different tunnel barriers: LiF and Al2O3. The magnetoresistance effect was found to be strongly asymmetric with respect to the bias voltage. Photoelectron Spectroscopy (PES) investigation of the interface between manganite and Alq3 revealed a strong interface dipole, which leads to a better matching of the metal Fermi level with Alq3 LUMO (1.1 eV) rather than with HOMO level (1.7 eV). This unequivocally indicates that the current in these devices is dominated by the electron channel, and not by holes as previously suggested. The knowledge of the energy diagram at the bottom interface allowed us to work out a semi- quantitative model explaining both negative spin valve effect and strong voltage asymmetry. This model involves a sharp energy selection of the moving charges by the very narrow LUMO level of the organic material leading to peculiar resonant effects.

cond-mat.mtrl-sci