Composition Waves in Solution‐Processed Organic Films and Its Propagations from Kinetically Frozen Surface Mesophases

Organic thin films deposited from solution attract wide interest for next‐generation (opto‐)electronic and energy applications. During solvent evaporation, the phase evolution dynamics for different components at different locations are not synchronic within the incrementally concentrated liquid fil...

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Veröffentlicht in:Advanced functional materials 2023-10, Vol.33 (40), p.n/a
Hauptverfasser: Yu, Jinde, Shen, Zichao, Lu, Wanlong, Zhu, Yuanwei, Liu, Yi-Xin, Neher, Dieter, Koch, Norbert, Lu, Guanghao
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container_issue 40
container_start_page
container_title Advanced functional materials
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creator Yu, Jinde
Shen, Zichao
Lu, Wanlong
Zhu, Yuanwei
Liu, Yi-Xin
Neher, Dieter
Koch, Norbert
Lu, Guanghao
description Organic thin films deposited from solution attract wide interest for next‐generation (opto‐)electronic and energy applications. During solvent evaporation, the phase evolution dynamics for different components at different locations are not synchronic within the incrementally concentrated liquid films, determining the final anisotropic morphology and performance. Herein, by examining tens of widely investigated optoelectronic organic films, the general existence of composition wave propagating along the surface‐normal direction upon solidification is identified. The composition wave is initiated by a few nanometers thick surface mesophase kinetically forming at the foremost stage of phase transition, and afterward propagates toward the substrate during solvent evaporation. The composition waves exhibit well‐defined wave properties, including spatial wavelength, period, amplitude, and propagation velocity. These wave properties are closely correlated with the evaporation rate and the diffusion rate of organic molecules, which determines the dynamically varied local composition gradient along the surface‐normal direction. Such composition waves are commonly found for more than 80% of randomly examined solution‐processed thin films for high‐performance organic electronic devices including photovoltaic cells and field‐effect transistors. In solution‐deposited organic film, the general existence of composition wave along film‐depth direction is identified. Its propagation towards substrate during solvent evaporation is initiated by a few nanometers surface mesophase forming at the foremoststage. Such wave properties are correlated with the solvent evaporation rate and organics diffusion rates, leading to the formation of rich/poor phase regions in organic film.
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During solvent evaporation, the phase evolution dynamics for different components at different locations are not synchronic within the incrementally concentrated liquid films, determining the final anisotropic morphology and performance. Herein, by examining tens of widely investigated optoelectronic organic films, the general existence of composition wave propagating along the surface‐normal direction upon solidification is identified. The composition wave is initiated by a few nanometers thick surface mesophase kinetically forming at the foremost stage of phase transition, and afterward propagates toward the substrate during solvent evaporation. The composition waves exhibit well‐defined wave properties, including spatial wavelength, period, amplitude, and propagation velocity. These wave properties are closely correlated with the evaporation rate and the diffusion rate of organic molecules, which determines the dynamically varied local composition gradient along the surface‐normal direction. Such composition waves are commonly found for more than 80% of randomly examined solution‐processed thin films for high‐performance organic electronic devices including photovoltaic cells and field‐effect transistors. In solution‐deposited organic film, the general existence of composition wave along film‐depth direction is identified. Its propagation towards substrate during solvent evaporation is initiated by a few nanometers surface mesophase forming at the foremoststage. 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subjects Composition
Diffusion rate
Evaporation rate
Materials science
Mesophase
Optoelectronics
Organic chemistry
organic electronic devices
organic thin films
Phase transitions
Photovoltaic cells
Propagation velocity
Solidification
Solvents
Substrates
surface mesophase
Thin films
time‐ and space‐resolved optical spectroscopies
Wave propagation
title Composition Waves in Solution‐Processed Organic Films and Its Propagations from Kinetically Frozen Surface Mesophases
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