Center for Nanophase Materials Sciences, Oak Ridge National Laboratory , Oak Ridge, Tennessee 37831, United States.
Bredesen Center, University of Tennessee , Knoxville, Tennessee 37996, United States.
ACS Appl Mater Interfaces. 2017 May 10;9(18):15880-15886. doi: 10.1021/acsami.7b03128. Epub 2017 Apr 28.
Understanding the relative humidity (RH) response of poly(3,4-ethylenedioxythiophene):poly(styrenesulfonate) (PEDOT:PSS) is critical for improving the stability of organic electronic devices and developing selective sensors. In this work, combined gravimetric sensing, nanoscale surface probing, and mesoscale optoelectronic characterization are used to directly compare the RH dependence of electrical and optical conductivities and unfold connections between the rate of water adsorption and changes in functional properties of PEDOT:PSS film. We report three distinct regimes where changes in electrical conductivity, optical conductivity, and optical bandgap are correlated with the mass of adsorbed water. At low (RH < 25%) and high (RH > 60%) humidity levels, dramatic changes in electrical, optical, and structural properties occur, while changes are insignificant in mid-RH (25 < RH < 60%) conditions. We associate the three regimes with water adsorption at hydrophilic moieties at low RH, diffusion and swelling throughout the film at mid-RH, and saturation of the film by water at high RH. Optical film thickness increased by 150% as RH was increased from 9 to 80%. Low frequency (1 kHz) impedance increased by ∼100%, and film capacitance increased by ∼30% as RH increased from 9 to 80% due to an increase in the film dielectric constant. Changes in electrical and optical conductivities concomitantly decrease across the full range of RH tested.
理解聚(3,4-亚乙基二氧噻吩):聚(苯乙烯磺酸盐)(PEDOT:PSS)的相对湿度(RH)响应对于提高有机电子器件的稳定性和开发选择性传感器至关重要。在这项工作中,结合重量感应、纳米级表面探测和介观光电特性,直接比较了PEDOT:PSS 薄膜的电导率和光导率以及水吸附速率与功能特性变化之间的关系。我们报告了三个不同的区域,其中电导率、光导率和光学带隙的变化与吸附水的质量相关。在低(RH < 25%)和高(RH > 60%)湿度水平下,电、光和结构性能发生显著变化,而在中 RH(25 < RH < 60%)条件下变化不明显。我们将这三个区域与低 RH 下亲水性部分的水吸附、中 RH 下整个薄膜的扩散和溶胀以及高 RH 下薄膜的水饱和联系起来。当 RH 从 9 增加到 80%时,光学薄膜厚度增加了 150%。由于薄膜介电常数的增加,低频(1 kHz)阻抗增加了约 100%,薄膜电容增加了约 30%,当 RH 从 9 增加到 80%时,电导率和光导率的变化同时在整个测试的 RH 范围内减小。