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迈向环境稳定的有机电子学:方法与应用。

Toward Environmentally Robust Organic Electronics: Approaches and Applications.

机构信息

Department of Chemical Engineering, Pohang University of Science and Technology (POSTECH), Pohang, 37673, Korea.

出版信息

Adv Mater. 2017 Nov;29(44). doi: 10.1002/adma.201703638. Epub 2017 Sep 27.

Abstract

Recent interest in flexible electronics has led to a paradigm shift in consumer electronics, and the emergent development of stretchable and wearable electronics is opening a new spectrum of ubiquitous applications for electronics. Organic electronic materials, such as π-conjugated small molecules and polymers, are highly suitable for use in low-cost wearable electronic devices, and their charge-carrier mobilities have now exceeded that of amorphous silicon. However, their commercialization is minimal, mainly because of weaknesses in terms of operational stability, long-term stability under ambient conditions, and chemical stability related to fabrication processes. Recently, however, many attempts have been made to overcome such instabilities of organic electronic materials. Here, an overview is provided of the strategies developed for environmentally robust organic electronics to overcome the detrimental effects of various critical factors such as oxygen, water, chemicals, heat, and light. Additionally, molecular design approaches to π-conjugated small molecules and polymers that are highly stable under ambient and harsh conditions are explored; such materials will circumvent the need for encapsulation and provide a greater degree of freedom using simple solution-based device-fabrication techniques. Applications that are made possible through these strategies are highlighted.

摘要

最近,人们对柔性电子产品的兴趣促使消费电子产品发生了重大转变,而可伸缩和可穿戴电子产品的新兴发展为电子产品的广泛应用开辟了新的领域。有机电子材料,如π共轭小分子和聚合物,非常适合用于低成本的可穿戴电子设备,其电荷载流子迁移率现已超过非晶硅。然而,它们的商业化程度很低,主要是因为它们在操作稳定性、环境条件下的长期稳定性以及与制造工艺相关的化学稳定性方面存在弱点。然而,最近已经有许多尝试来克服有机电子材料的这种不稳定性。在这里,我们对环境稳定的有机电子产品所采用的策略进行了综述,以克服氧气、水、化学品、热和光等各种关键因素的不利影响。此外,我们还探讨了在环境和恶劣条件下高度稳定的π共轭小分子和聚合物的分子设计方法;这些材料将避免封装的需要,并通过简单的基于溶液的器件制造技术提供更大的自由度。突出了这些策略带来的应用。

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