Department of Chemistry, Towson University, Towson, Maryland 21252, United States.
Department of Biochemistry, University of Maryland, College Park, Maryland 20742, United States.
J Phys Chem B. 2021 Jan 14;125(1):382-392. doi: 10.1021/acs.jpcb.0c08122. Epub 2021 Jan 5.
This paper reports single-molecule tracking (SMT) measurements of the diffusion behaviors of individual, anionic sulforhodamine B (SRB) dye molecules in a series of poly(ethylene oxide) (PEO) films, aimed at clarifying the influences of the molecular weight, network plasticization, and thermal annealing on such dynamics. Micrometer-thick PEO films were prepared by drop-casting from its aqueous (0.2%, 1 nM SRB) solution, followed by drying in air and thermal annealing at 90 °C for 36 h. The diffusion of individual SRB occurring within the amorphous domains was recorded at different relative humidities (5-95%) to characterize the microscale domains' local aspect-ratio, orientation, and molecular permeability at high spatial resolution. The results revealed the involvement of crystalline phases in confining SRB diffusion to submicron distances and guiding longer-range diffusion along one-dimensional-like amorphous morphologies. Upon annealing, amorphous domains were wider, more continuous, and more permeable to SRB probes. The enhanced transport in plasticized PEO, as reflected by the higher SRB mobility and diffusivity, was linked to the polymer's higher chain and segmental mobilities and reduced hydrogen-bonding interactions. This work has demonstrated the usefulness of SMT for an advanced characterization of solid polymer electrolytic films, highly beneficial for the development of safer lithium-ion batteries.
本文报道了单个阴离子磺基罗丹明 B(SRB)染料分子在一系列聚环氧乙烷(PEO)薄膜中的扩散行为的单分子跟踪(SMT)测量结果,旨在阐明分子量、网络增塑和热退火对这种动力学的影响。通过将其水溶液(0.2%,1 nM SRB)滴铸在空气中干燥并在 90°C 下退火 36 小时来制备微米厚的 PEO 薄膜。在不同的相对湿度(5-95%)下记录单个 SRB 的扩散,以高空间分辨率表征微尺度域的局部纵横比、取向和分子渗透性。结果表明,晶相参与限制 SRB 扩散到亚微米距离,并引导长程扩散沿着类似于一维的无定形形态。退火后,无定形域更宽、更连续、对 SRB 探针的渗透性更高。增塑 PEO 中的增强传输,反映在更高的 SRB 迁移率和扩散率上,与聚合物更高的链和链段迁移率以及减少的氢键相互作用有关。这项工作证明了 SMT 对固体聚合物电解质薄膜的高级表征非常有用,这对开发更安全的锂离子电池非常有益。