Jeon Byoung Yun, Kidanemariam Alemayehu, Noh Juran, Hyun Chohee, Mun Hyun Jung, Park Kangho, Jung Seung-Jin, Jeon Yejee, Yoo Pil J, Park JaeHong, Jung Hee-Tae, Shin Tae Joo, Park Juhyun
Department of Intelligent Energy and Industry, School of Chemical Engineering and Materials Science, Chung-Ang University, Seoul 06974, Republic of Korea.
Department of Materials Science and Engineering, Texas A&M University, College Station, Texas 77843, United States.
ACS Omega. 2021 Dec 6;6(50):34876-34888. doi: 10.1021/acsomega.1c05556. eCollection 2021 Dec 21.
We present aqueous dispersions of conjugated polymer nanowires (CPNWs) with improved light absorption properties aimed at aqueous-based applications. We assembled films of a donor-acceptor-type conjugated polymer and liquid crystalline 4--octylbenzoic acid by removing a cosolvent of their mixture solutions, followed by annealing of the films, and then formed aqueous-dispersed CPNWs with an aspect ratio >1000 by dispersing the films under ultrasonication at a basic pH. X-ray and spectroscopy studies showed that the polymer and liquid crystal molecules form independent domains in film assemblies and highly organized layer structures in CPNWs. Our ordered molecular assemblies in films and aqueous dispersions of CPNWs open up a new route to fabricate nanowires of low-band-gap linear conjugated polymers with the absorption maximum at 794 nm remarkably red-shifted from 666 nm of CPNWs prepared by an emulsion process. Our results suggest the presence of semicrystalline polymorphs β and β phases in CPNWs due to long-range π-π stacking of conjugated backbones in compactly organized lamellar structures. The resulting delocalization with a reduced energy bang gap should be beneficial for enhancing charge transfer and energy-conversion efficiencies in aqueous-based applications such as photocatalysis.
我们展示了具有改进光吸收特性的共轭聚合物纳米线(CPNWs)水分散体,其目标是用于水基应用。我们通过去除供体-受体型共轭聚合物与液晶4-辛基苯甲酸混合溶液的共溶剂,随后对薄膜进行退火处理,然后在碱性pH值下通过超声分散这些薄膜,形成了长径比大于1000的水分散CPNWs。X射线和光谱研究表明,聚合物和液晶分子在薄膜组件中形成独立的区域,在CPNWs中形成高度有序的层状结构。我们在CPNWs的薄膜和水分散体中的有序分子组装开辟了一条新途径,用于制造低带隙线性共轭聚合物纳米线,其最大吸收峰在794 nm,与通过乳液法制备的CPNWs的666 nm相比有显著红移。我们的结果表明,由于共轭主链在紧密组织的层状结构中的长程π-π堆积,CPNWs中存在半结晶多晶型β和β相。由此产生的具有减小能隙的离域化应该有利于提高水基应用(如光催化)中的电荷转移和能量转换效率。