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Moessbauer Characterization of Iron Oxide Nanoclusters Grown within Aluminosilicate Matrices

机译:硅铝酸盐基质中生长的氧化铁纳米团簇的Moessbauer表征

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Mossbauer spectroscopy uses the resonant absorption of nuclear radiation by ~(57)Fe to probe the electronic and internal magnetic structure of iron based magnetic materials. The technique has a characteristic measuring time of 10 ns enabling investigation of spin relaxation phenomena in nanoscale particles; and determination of their magnetic properties in the absence of externally applied magnetic fields. We report on Moessbauer studies of γ-Fe_2O_3 nanoparticles synthesized within hexagonally packed mesoporous MCM-41 aluminosilicate matrices with cylindrical pores of 2.5 nm diameter. Data analysis allowed differentiation of particle-matrix interfacial versus particle-core interior iron sites. Interfacial iron atoms experience large electric field gradients resulting in quadrupole splitting values of ΔE_q (surface) = (1.25 +- 0.05) mm/s, while core atoms exhibit smaller values of ΔE_q (core) = (0.73+- 0.05) mm/s at room temperature. Similarly, differences were observed in the values of the internal hyperfine fields at low temperatures indicating reduced strength in the exchange interactions at the particle surface, with interfacial atoms experiencing internal fields H_(hf) (surface) = (458 +-1) kOe reduced relative to the core H_(hf) (core) = (488 +- 1) kOe at 4.2 K. Particle/matrix interactions at the surface appear to perturb the electronic interactions deeper into the core than the magnetic exchange interactions.
机译:Mossbauer光谱法利用〜(57)Fe对核辐射的共振吸收来探测铁基磁性材料的电子和内部磁性结构。该技术的特征测量时间为10 ns,可以研究纳米级粒子中的自旋弛豫现象。和在没有外部施加磁场的情况下确定其磁性。我们在Moessbauer研究中报道了在具有2.5 nm圆柱孔的六方堆积介孔MCM-41铝硅酸盐基质中合成的γ-Fe_2O_3纳米颗粒。数据分析可以区分颗粒-基质界面和颗粒-内核内部铁部位。界面铁原子经历较大的电场梯度,导致四极分裂值ΔE_q(表面)=(1.25 +-0.05)mm / s,而核心原子表现出较小的ΔE_q(core)=(0.73 +-0.05)mm / s在室温下。同样,在低温下观察到内部超精细场的值存在差异,表明在颗粒表面交换相互作用的强度降低,界面原子经历内部场H_(hf)(表面)=(458 + -1)kOe减小相对于4.2 K时的磁芯H_(hf)(磁芯)=(488 +1)kOe。表面上的粒子/基体相互作用似乎比磁交换相互作用更深地扰动了内核中的电子相互作用。

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