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Electron transport in gold colloidal nanoparticle-based strain gauges

机译:基于金胶体纳米粒子的应变仪中的电子传输

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摘要

A systematic approach for understanding the electron transport mechanisms in resistive strain gauges based on assemblies of gold colloidal nanoparticles (NPs) protected by organic ligands is described. The strain gauges were fabricated from parallel micrometer wide wires made of 14 nm gold (Au) colloidal NPs on polyethylene terephthalate substrates, elaborated by convective self-assembly. Electron transport in such devices occurs by inter-particle electron tunneling through the tunnel barrier imposed by the organic ligands protecting the NPs. This tunnel barrier was varied by changing the nature of organic ligands coating the nanoparticles: citrate (CIT), phosphines (BSPP, TDSP) and thiols (MPA, MUDA). Electro-mechanical tests indicate that only the gold NPs protected by phosphine and thiol ligands yield high gauge sensitivity. Temperature-dependent resistance measurements are explained using the 'regular island array model' that extracts transport parameters, i.e., the tunneling decay constant β and the Coulomb charging energy E_C. This reveals that the Au@CIT nanoparticle assemblies exhibit a behavior characteristic of a strong-coupling regime, whereas those of Au@BSPP, Au@TDSP, Au@MPA and Au@MUDA nanoparticles manifest a weak-coupling regime. A comparison of the parameters extracted from the two methods indicates that the most sensitive gauges in the weak-coupling regime feature the highest β. Moreover, the E_C values of these 14 nm NPs cannot be neglected in determining the β values.
机译:描述了一种基于有机配体保护的胶体金纳米颗粒(NPs)的组装体,用于理解电阻应变仪中电子传输机理的系统方法。应变仪是用对流自组装技术在聚对苯二甲酸乙二醇酯基板上由14 nm金(Au)胶体NP制成的平行千分尺宽导线制成的。在此类设备中的电子传输是通过粒子间电子隧穿通过保护NP的有机配体施加的隧穿势垒而发生的。通过改变覆盖纳米颗粒的有机配体的性质来改变这种隧道势垒:柠檬酸盐(CIT),膦(BSPP,TDSP)和硫醇(MPA,MUDA)。机电测试表明,只有受膦和硫醇配体保护的金纳米颗粒才具有较高的标准灵敏度。使用“规则岛阵列模型”解释了与温度相关的电阻测量,该模型提取了传输参数,即隧道衰变常数β和库仑充电能E_C。这表明Au @ CIT纳米粒子组件表现出强耦合机制的行为特征,而Au @ BSPP,Au @ TDSP,Au @ MPA和Au @ MUDA纳米粒子则表现出弱耦合机制。从这两种方法中提取的参数的比较表明,弱耦合方案中最敏感的量规具有最高的β。而且,在确定β值时,不能忽略这14nm NP的E_C值。

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