4.8 Article

Asymmetrically Enhanced Coplanar-Electrode Electroluminescence for Information Encryption and Ultrahighly Stretchable Displays

期刊

ADVANCED MATERIALS
卷 34, 期 31, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adma.202201342

关键词

alternating-current-driven electroluminescence; asymmetric structures; coplanar electrodes; information encryption; stretchable displays

资金

  1. National Natural Science Foundation of China [52103249]
  2. Key-Area Research and Development Program of Guangdong Province [2019B010924003]
  3. Shenzhen International Cooperation Research Program [GJHZ20200731095400001]
  4. Shenzhen Engineering Laboratory (Shenzhen development and reform commission) [[2018]1410]
  5. Shenzhen Fundamental Research Program [JCYJ20170818090312652, GXWD20201231165807007 - 20200810113811001]

向作者/读者索取更多资源

This study presents a new design of an asymmetrically enhanced coplanar-electrode AC-EL device based on the impedance adjustment strategy, which extends the functionalities of coplanar-electrode AC-EL devices by overcoming the challenges of complicated patterning procedures and high driving voltages. The developed device design enables new types of information encryption and ultrahighly stretchable patterned displays, with advantages of simple patterning process, higher brightness, wider color gamut, and long-term stability.
Traditional alternating-current-driven electroluminescent (AC-EL) devices adopting a sandwich structure are commonly used in solid-state lighting and displays, while the emerging coplanar-electrode alternating-current-driven light-emitting variants manifest excellent application prospects in intelligent, multifunctional, and full-color displays, and sensing purposes. In this work, an asymmetrically enhanced coplanar-electrode AC-EL device with a universal and straightforward architecture is designed based on the impedance adjustment strategy. This newly devised asymmetric structure extends the functionalities of the coplanar-electrode AC-EL devices by overcoming the bottlenecks of complicated patterning procedures and high driving voltages of symmetric configuration. The developed device design enables a new type of information encryption and ultrahighly stretchable patterned displays. Notably, the novel encryption appliances demonstrate feasible encryption/decryption features, multiple encryptions, and practical applicability; the biaxially stretchable display devices achieve the highest tensile performance in the field of stretchable electroluminescent pattern displays, and outperform the ultrahighly stretchable sandwich devices in terms of simple patterning process, higher brightness, wider color gamut, and long-term stability. The proposed configuration opens up new avenues for AC-EL devices toward a plethora of smart applications in wearable electronics with intelligent displays, dynamic interaction of human-machine interface, and soft robotics.

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