Research Progress in Functional Stretchable Organic Electronic Devices
- Corresponding author: Guo Yunlong, guoyunlong@iccas.ac.cn
Citation: Bian Yangshuang, Liu Kai, Guo Yunlong, Liu Yunqi. Research Progress in Functional Stretchable Organic Electronic Devices[J]. Acta Chimica Sinica, ;2020, 78(9): 848-864. doi: 10.6023/A20050197
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The common structures of STOTs (a), STOPDs (b), STOEDs (c), STOSs (d) and STOM (e).
(a) Illustration of the nanoconfined effect of semiconducting polymers in an elastomer. (b) Schematic diagram of the stretching and releasing processes of semiconductors films[7]. Reprinted with permission from Ref. 7 Copyright (2019) WILEY-VCH.
(a) Schematic device structure of PDVT-8/PC61BM OPTs. (b, c) Under different bending times and radius (r=54, 27, and 18 mm), the variation of responsivity and Ilight/Idark ratio (b) and detectivity and gain (c)[34]. Reprinted with permission from Ref. 34 Copyright (2018) American Chemical Society.
(a) Schematic device structure of the fiber-shaped organic memory transistors. (b, c) Variation of threshold voltage and memory window under different applied uniaxial strains (b) and diagonal strains (c) and at a released state[36]. Reprinted with permission from Ref. 36 Copyright (2019) American Chemical Society.
(a) Schematic device structure of the fully rubbery synaptic transistors. (b) Demonstration of high-pass filtering behavior of the stretchable synapse. (c, d) Under 0% and 50% strain, the response of measured EPSCs (c) and the definition of the gain (A20/A1) (d) with 20 successive presynaptic pulses at 20 Hz. (e, f) Variation of the gain (A20/A1) vs various pulse frequencies (e) and the peak current of the EPSC vs various pulse number (f) for the rubbery synaptic transistor with 0% and 50% strain[42]. Reprinted with permission from Ref. 42 Copyright (2019) AAAS.
(a) Photographs of the stretchable QD-LEDs with three different color under 0% and 70% strain. (b) Brightness characteristics and luminous efficiency characteristics of the stretchable red QD-LED with 0% and 70% strain. (c) The relationship of current density and brightness with strain cycles under 0% and 70% strain[47]. Reprinted with permission from Ref. 47 Copyright (2017) American Chemical Society.
(a) The array under bending, rolling, twisting and stretching with different strain levels. (b, c) Variation of the electroluminescence intensity under different strains (b) and mechanical stability for 200 cycles of the ACEL device (c)[50]. Reprinted with permission from Ref. 50 Copyright (2019) American Chemical Society.
(a) Schematic diagram of the sandwich structure of the stretchable OSCs. (b) Output power and PCE of the OSCs under various strains. (c) Variation of the PCE after stretching-relaxing cycles, and (d) J-V characteristics of the OSCs under 50% strain[29]. Reprinted with permission from Ref. 29 Copyright (2017) American Chemical Society.
(a) Photographs of BNGs and (b) schematic diagram of the working process of BSNG. (c, d) Qsc (right) of BSNG under various strain (stretched by a linear motor, at 2 Hz) (c) and under various frequency with 50% strain (d)[61]. Reprinted with permission from Ref. 61 Copyright (2019) Springer Nature.
(a) Photograph of triggering commands with two fingers via the strain sensors to achieve the intelligent control of an audible/visual alarm. (b) Schematic diagrams of the strain sensor with various stretched states. (c) Change in the resistance of the strain sensor under 0%, 40%, and 80% pre-stretching strain[65]. Reprinted with permission from Ref. 65 Copyright (2019) American Chemical Society.
(a) Schematic diagram of the chameleon-inspired circuit layout with tactile sensor and electrochromic devices. (b) Mechanical characterization and (c) absorption spectra of P3HT ECDs under various strains[54]. Reprinted with permission from Ref. 54 Copyright (2015) Springer Nature.
(a) Schematic illustration and photograph of the stretchable multifunctional sensor matrix networks. (b) Temperature, (c) strain, (d) humidity, (e) light, and (f) magnetic field sensing characterization of the multifunctional stretchable sensor [76]. Reprinted with permission from Ref. 76 Copyright (2018) Springer Nature.
(a) Photograph of the stretchable memristor under 0%, 30% and freed 0% after stretching. (b~d) I-V characteristic curves in three stretching states. (e) The retention time of the stretchable memristor at 10% stretching state[78]. Reprinted with permission from Ref. 78 Copyright (2019) Springer Nature.
(a) Schematic illustration of the deformation and strain sensing mechanism of the stretchable actuator. (b) Photograph and (c) strain sensing behavior of the actuator under different electric currents[85]. Reprinted with permission from Ref. 85 Copyright (2020) American Chemical Society.
(a) Electrocardiography (ECG) and Bluetooth signals (Relative signal strength indicator, RSSI) records of the wireless system with or without shield at relaxed stretching states and the photograph at three different states. (b) Reflection |S11| and (c) transmission |S21| of the wireless system as a function of frequency with or without shield at relaxed and stretching states, respectively.[88] Reprinted with permission from Ref. 88 Copyright (2019) WILEY-VCH.