Inverse Magnetoresistance in Polymer Spin Valves.
Shuaishuai DingYuan TianYang LiWenbo MiHuanli DongXiaotao ZhangWenping HuDao-Ben ZhuPublished in: ACS applied materials & interfaces (2017)
In this work, both negative and positive magnetoresistance (MR) in solution-processed regioregular poly(3-hexylthiophene) (RR-P3HT) is observed in organic spin valves (OSVs) with vertical La2/3Sr1/3MnO3 (LSMO)/P3HT/AlOx/Co configuration. The ferromagnetic (FM) LSMO electrode with near-atomic flatness is fabricated by a DC facing-target magnetron sputtering method. This research is focused on the origin of the MR inversion. Two types of devices are investigated in details: One with Co penetration shows a negative MR of 0.2%, while the other well-defined device with a nonlinear behavior has a positive MR of 15.6%. The MR measurements in LSMO/AlOx/Co and LSMO/Co junctions are carried to exclude the interference of insulating layer and two FM electrodes themselves. By examining the Co thicknesses and their corresponding magnetic hysteresis loops, a spin-dependent hybrid-interface-state model by Co penetration is induced to explain the MR sign inversion. These results proven by density functional theory (DFT) calculations may shed light on the controllable interfacial properties in designing novel OSV devices.
Keyphrases
- density functional theory
- contrast enhanced
- molecular dynamics
- magnetic resonance
- magnetic resonance imaging
- room temperature
- single molecule
- computed tomography
- aortic valve
- ionic liquid
- heart failure
- gold nanoparticles
- dendritic cells
- mass spectrometry
- oxidative stress
- diabetic rats
- drug induced
- simultaneous determination
- aortic stenosis
- transcatheter aortic valve implantation