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From silver nanoparticles to thin films: Evolution of microstructure and electrical conduction on glass substrates

机译:从银纳米颗粒到薄膜:玻璃基板上的微观结构和导电性的演变

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Silver nanoparticles embedded in a dielectric matrix are investigated for their potential as broadbandabsorbing optical sensor materials. This contribution focuses on the electrical properties of silver nanoparticles on glass substrates at variousmorphological stages. The electrical current through thin films, consisting of silver nanoparticles, was characterized as a function of film thickness. Three distinct conductivity zones were observed. Two relatively flat zones (‘‘dielectric’’ for very thin films and ‘‘metallic’’ for films thicker than 300–400A ) are separated by a sharp transition zone where percolation dominates. The dielectric zone is characterized by isolated particle islands with the electrical conduction dominated by a thermally activated tunneling process. The transition zone is dominated by interconnected silver nanoclusters—a small increase of the filmthickness results in a large increase of the electrical conductivity. The metallic conductivity zone dominates for thicknesses above 300–400A.
机译:研究了嵌入电介质基质中的银纳米颗粒作为宽带吸收光学传感器材料的潜力。该贡献集中于在各种形态学阶段玻璃基板上的银纳米颗粒的电性能。通过银纳米颗粒组成的薄膜的电流被表征为薄膜厚度的函数。观察到三个不同的导电区。两个相对平坦的区域(对于非常薄的薄膜为“电介质”,对于厚度大于300-400A的薄膜为“金属”)由一个以渗流为主的尖锐过渡区域隔开。介电区的特征是隔离的粒子岛,其电导率由热激活隧穿过程控制。过渡区主要由相互连接的银纳米簇组成-膜厚的微小增加会导致电导率大幅增加。金属导电区占主导地位,厚度超过300-400A。

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