Metallic Nanowire Percolating Network: From Main Properties to Applications

D. Bellet, Dorina T. Papanastasiou, João Resende, V. Nguyen, C. Jiménez, N. D. Nguyen, D. Muñoz‐Rojas
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Abstract

There has been lately a growing interest into flexible, efficient and low-cost transparent electrodes which can be integrated for many applications. This includes several applications related to energy technologies (photovoltaics, lighting, supercapacitor, electrochromism, etc.) or displays (touch screens, transparent heaters, etc.) as well as Internet of Things (IoT) linked with renewable energy and autonomous devices. This associated industrial demand for low-cost and flexible industrial devices is rapidly increasing, creating a need for a new generation of transparent electrodes (TEs). Indium tin oxide has so far dominated the field of TE, but indium’s scarcity and brittleness have prompted a search into alternatives. Metallic nanowire (MNW) networks appear to be one of the most promising emerging TEs. Randomly deposited MNW networks, for instance, can present sheet resistance values below 10 Ω/sq., optical transparency of 90% and high mechanical stability under bending tests. AgNW or CuNW networks are destined to address a large variety of emerging applications. The main properties of MNW networks, their stability and their integration in energy devices are discussed in this contribution.
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金属纳米线渗透网络:从主要性质到应用
最近,人们对灵活、高效、低成本的透明电极越来越感兴趣,这种电极可以集成到许多应用中。这包括与能源技术(光伏、照明、超级电容器、电致变色等)或显示器(触摸屏、透明加热器等)以及与可再生能源和自主设备相关的物联网(IoT)相关的几个应用。这种对低成本和灵活的工业设备的相关工业需求正在迅速增加,从而产生了对新一代透明电极(te)的需求。迄今为止,氧化铟锡一直主导着TE领域,但铟的稀缺性和脆性促使人们寻找替代品。金属纳米线(MNW)网络似乎是最有前途的新兴te之一。例如,随机沉积的MNW网络可以呈现低于10 Ω/sq的片电阻值。,光学透明度达90%,弯曲试验机械稳定性高。AgNW或CuNW网络注定要解决各种各样的新兴应用。本文讨论了MNW网络的主要特性、稳定性及其在能源器件中的集成。
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