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基于褶皱结构的可拉伸有机电致发光器件研究进展 被引量:1

Research progress on stretchable organic light-emitting devices based on buckled structures
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摘要 近年来,随着柔性和可穿戴电子设备的发展,人们对可拉伸设备的需求不断提升,促进了可拉伸电子器件的快速发展.可拉伸显示器在可拉伸电子设备中起到信息传递和人机交互的作用,是可拉伸电子设备的重要组成部分.可拉伸发光器件作为可拉伸显示器的核心组成部分之一,受到广泛关注.随着材料、工艺和器件结构设计的不断发展与进步,可拉伸发光器件的研究得到快速发展,多种策略被开发出来用于实现器件的拉伸性,且器件性能显著提高.其中,基于褶皱结构的可拉伸有机电致发光器件因其优异的光电性能和机械拉伸性而在可穿戴电子设备、电子皮肤、智能服装等领域展现出较大的应用潜力,成为制备可拉伸显示器的候选器件之一.本文对基于褶皱结构可拉伸有机电致发光器件的研究进展进行综述,首先介绍了褶皱结构的形成机制及相关的理论,然后对褶皱结构型可拉伸有机电致发光器件按照拉伸维度和褶皱有序性进行分类,总结了不同类型器件的设计思路、制造方案和器件性能特点.最后,简要讨论了褶皱结构可拉伸有机电致发光器件存在的一些挑战及对未来的展望. In recent years,with the development of flexible and wearable electronic devices,the demand for stretchable devices has been rising,which has promoted the rapid development of stretchable electronic devices.Stretchable display is an important part in stretchable electronic systems and plays the role of information transmission and human-machine interaction.The stretchable light-emitting device is one of the core components of stretchable displays.With the continuous development of materials,processes and device structure design,the research of stretchable light-emitting devices has been developed rapidly and the device performance has been significantly improved.A variety of strategies have been proposed to make light-emitting devices stretchable.Among them,stretchable organic light-emitting devices(SOLED) based on buckled structures have shown greater application potential in wearable electronic devices,bioelectronic skin,smart clothing and other fields due to their excellent optoelectronic performance and mechanical stretchability and have become one of the most promising candidates for stretchable displays.This paper reviews the research progress of SOLEDs based on buckled structures.Firstly,the formation mechanism of buckled structures and related theories are introduced.Common strategies for the preparation of buckled structures include prestretch-release of elastomer substrates,mechanical compression,solvent or heat-induced deformation and substrate molding,etc.Among them,prestretch-release process can obtain devices with large stretchability and is widely used for the preparation of SOLED with buckled structures.The theoretical model based on the bilayer structure can predict the wavelength and amplitude of the wrinkles.However,in practical applications,the buckled process and the final morphology of the wrinkles are more diverse and complex,which requires different analysis.In order to decrease the bending strain of the OLEDs with buckled structures,ultrathin and flexible films are the preferred substrates.Then the SOLEDs are classified into four types according to the stretch dimension and the morphology of the wrinkles.They are one-dimensional(1D) SOLEDs with random and ordered buckled structures and two-dimensional(2D) SOLEDs with random and ordered buckled structures.Random wrinkles can be easily formed by attaching the flexible OLEDs on a pre-stretched elastic substrate.The morphology of the wrinkles is not controllable.On the contrary,ordered wrinkles with controllable morphology need fine preparation process and structure design.Through the performance comparison,it can be seen that SOLEDs based on ordered wrinkles have better cyclic stretching stability,and 2D stretchable devices can better adapt to 3D surface than 1D stretchable devices.Therefore,2D SOLEDs with ordered wrinkles have greater application potential.However,the stretchability,device performance and fabrication technology of 2D SOLEDs with ordered wrinkles cannot meet application requirements and need to be improved.Finally,some challenges and future prospects of SOLEDs with buckled structures are briefly discussed.SOLEDs based on buckled structures face some common problems.For example,the circular curved buckled structure makes the whole device appear uneven light emission,the process of pre-stretching of the elastic substrate restricts the preparation of large size devices,there is serious image distortion under tensile states,and the elastic substrate is slow to recover to the initial state after several stretching cycles.Therefore,it is important to develop the preparation technology of ordered wrinkles without pre-stretching,image distortion suppression strategy and pixel compensation strategy,and optimize the properties of elastic substrates.
作者 贾士鑫 张浩洋 银达 冯晶 Shixin Jia;Haoyang Zhang;Da Yin;Jing Feng(State Key Laboratory of Integrated Optoelectronics,College of Electronic Science and Engineering,Jilin University,Changchun 130012,China)
出处 《科学通报》 EI CAS CSCD 北大核心 2024年第1期96-111,共16页 Chinese Science Bulletin
基金 国家自然科学基金(61825402) 吉林省自然科学基金(20230101057JC)资助。
关键词 可拉伸电子器件 可拉伸有机电致发光器件 褶皱结构 超薄柔性器件 弹性衬底 stretchable electronics stretchable organic light-emitting devices buckled structure ultra-thin flexible devices elasticsubstrate
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  • 1Rogers JA, Someya T, Huang Y. Materials and mechanics for stretchable electronics. Science 2010,327,5973: 1603-1607.
  • 2Someya T, Dodabalapur A, Huang J, See KC, Katz HE. Chemical and physical sensing by organic field-effect transistors and related devices. Adv Mater, 2010, 22(34): 3799-3811.
  • 3Kim DH, Xiao J, Song J, Huang Y, Rogers JA. Stretchable, curvilinear electronics based on inorganic materials. Adv Mater, 2010, 22(19): 2108-2124.
  • 4Sekitani T, Someya T. Stretchable, large-area organic electronics. Adv Mater, 2010, 22(20): 2228-2246.
  • 5Cao Q, Kim HS, Pimparkar N, Kulkarni JP, Wang C, Shim M, Roy K, Alam MA, Rogers JA. Medium-scale carbon nanotube thin-film integrated circuits on flexible plastic substrates. Nature, 2008, 454(7203):495-500.
  • 6Ko HC, Stoykovich MP, Song J, Malyarchuk V, Choi WM, Yu CJ, Geddes JB 3rd, Xiao J, Wang S, Huang Y, Rogers JA. A hemispherical electronic eye camera based on compressible silicon optoelectronics. Nature, 2008,454(7205): 748-753.
  • 7Jung I, Xiao J, Malyarchuk V, Lu C, Li M, Liu Z, Yoon r, Huang Y, Rogers JA. Dynamically tunable hemispherical electronic eye camera system with adjustable zoom capability. Proc Natl Acad Sci USA, 2011,108(5): 1788-1793.
  • 8Chun KY, Oh Y, Rho J, Ahn JH, Kim YJ, Choi HR, Baik S. Highly conductive, printable and stretchable composite films of carbon nanotubes and silver. Nat Nanotechnol, 2010, 5(12): 853-857.
  • 9Kim RH, Kim DH, Xiao J, Kim BH, Park SI, Panilaitis B, Ghaffari R, Yao J, Li M, Liu Z, Malyarchuk V, Kim DG, Le AP, Nuzzo RG, Kaplan DL, Omenetto FG, Huang Y, Kang Z, Rogers JA. Waterproof AlInGaP optoelectronics on stretchable substrates with applications in biomedicine and robotics. Nat Mater, 2010, 9(11): 929-937.
  • 10Sekitani T, Nakajima H, Maeda H, Fukushima T, Aida T, Hata K, Someya T. Stretchable active-matrix organic light-emitting diode display using printable elastic conductors. Nat Mater, 2009, 8(6): 494-499.

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