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随机金属线网络的电和热传导的微观评估。

Microscopic Evaluation of Electrical and Thermal Conduction in Random Metal Wire Networks.

机构信息

Department of Chemistry, Indian Institute of Technology Jodhpur , Jodhpur, Rajasthan, 342011 India.

Chemistry and Physics of Materials Unit, Jawaharlal Nehru Centre for Advanced Scientific Research , Jakkur P.O., Bangalore, 560064 India.

出版信息

ACS Appl Mater Interfaces. 2017 Apr 19;9(15):13703-13712. doi: 10.1021/acsami.7b00342. Epub 2017 Apr 5.

Abstract

Ideally, transparent heaters exhibit uniform temperature, fast response time, high achievable temperatures, low operating voltage, stability across a range of temperatures, and high optical transmittance. For metal network heaters, unlike for uniform thin-film heaters, all of these parameters are directly or indirectly related to the network geometry. In the past, at equilibrium, the temperature distributions within metal networks have primarily been studied using either a physical temperature probe or direct infrared (IR) thermography, but there are limits to the spatial resolution of these cameras and probes, and thus, only average regional temperatures have typically been measured. However, knowledge of local temperatures within the network with a very high spatial resolution is required for ensuring a safe and stable operation. Here, we examine the thermal properties of random metal network thin-film heaters fabricated from crack templates using high-resolution IR microscopy. Importantly, the heaters achieve predominantly uniform temperatures throughout the substrate despite the random crack network structure (e.g., unequal sized polygons created by metal wires), but the temperatures of the wires in the network are observed to be significantly higher than the substrate because of the significant thermal contact resistance at the interface between the metal and the substrate. Last, the electrical breakdown mechanisms within the network are examined through transient IR imaging. In addition to experimental measurements of temperatures, an analytical model of the thermal properties of the network is developed in terms of geometrical parameters and material properties, providing insights into key design rules for such transparent heaters. Beyond this work, the methods and the understanding developed here extend to other network-based heaters and conducting films, including those that are not transparent.

摘要

理想情况下,透明加热器应具有均匀的温度、快速的响应时间、较高的可达温度、较低的工作电压、在一定温度范围内的稳定性以及高透光率。对于金属网络加热器,与均匀薄膜加热器不同,所有这些参数都直接或间接地与网络几何形状有关。过去,在平衡状态下,金属网络内部的温度分布主要通过物理温度探头或直接红外(IR)热成像来研究,但这些相机和探头的空间分辨率存在限制,因此,通常只能测量平均区域温度。然而,为了确保安全稳定的运行,需要了解网络内部的局部温度,这需要非常高的空间分辨率。在这里,我们使用高分辨率的红外显微镜研究了由裂纹模板制造的随机金属网络薄膜加热器的热特性。重要的是,尽管存在随机裂纹网络结构(例如,金属线形成的不等大小多边形),但整个衬底上的加热器仍能实现主要的均匀温度,然而,由于金属和衬底之间的界面处存在显著的热接触电阻,网络中的金属丝温度明显高于衬底。最后,通过瞬态红外成像研究了网络内部的电击穿机制。除了对温度进行实验测量外,还根据几何参数和材料特性对网络的热特性进行了分析模型的开发,为这种透明加热器的关键设计规则提供了深入的了解。除了这项工作,这里开发的方法和理解还可以扩展到其他基于网络的加热器和导电膜,包括那些不透明的加热器和导电膜。

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