Lee Haklae, Lee Myung-Soo, Uji Masanori, Harada Naoyuki, Park Jeong-Min, Lee Jiyeon, Seo Sung Eun, Park Chul Soon, Kim Jinyeong, Park Seon Joo, Bhang Suk Ho, Yanai Nobuhiro, Kimizuka Nobuo, Kwon Oh Seok, Kim Jae-Hyuk
Department of Chemical and Environmental Engineering, Pusan National University, Busan 46241, South Korea.
Infectious Disease Research Center, Korea Research Institute of Bioscience & Biotechnology (KRIBB), Daejeon 34141, South Korea.
ACS Appl Mater Interfaces. 2022 Jan 26;14(3):4132-4143. doi: 10.1021/acsami.1c21080. Epub 2022 Jan 12.
Efficient and long-term stable triplet-triplet annihilation upconversion (TTA-UC) can be achieved by effectively protecting the excited organic triplet ensembles from photoinduced oxygen quenching, and discovery of a new material platform that promotes TTA-UC in ambient conditions is of paramount importance for practical applications. In this study, we present the first demonstration of an organic nonparaffin phase-change material (PCM) as an air-tolerant medium for TTA-UC with a unique solid-liquid phase transition in response to temperature variation. For the proposed concept, 2,4-hexadien-1-ol is used and extensively characterized with several key features, including good solvation capacity, mild melting point (30.5 °C), and exclusive antioxidant property, enabling a high-efficiency, low-threshold, and photostable TTA-UC system without energy-intensive degassing processes. In-depth characterization reveals that the triplet diffusion among the transient species, i.e., sensitizer* and acceptor*, is efficient and well protected from oxygen quenching in both aerated liquid- and solid-phase 2,4-hexadien-1-ol. We also propose a new strategy for the nanoencapsulation of PCM by employing hollow mesoporous silica nanoparticles as vehicles. This scheme is applicable to both aqueous- and solid-phase TTA-UC systems as well as suitable for various applications, such as thermal energy storage and smart drug delivery.
通过有效保护激发态有机三重态免受光致氧猝灭,可实现高效且长期稳定的三重态-三重态湮灭上转换(TTA-UC),而发现一种能在环境条件下促进TTA-UC的新型材料平台对于实际应用至关重要。在本研究中,我们首次展示了一种有机非石蜡相变材料(PCM)作为TTA-UC的耐空气介质,其具有响应温度变化的独特固-液相转变。对于所提出的概念,使用了2,4-己二烯-1-醇,并对其进行了广泛表征,具有几个关键特性,包括良好的溶剂化能力、适中的熔点(30.5℃)和独特的抗氧化性能,从而实现了一种无需耗能脱气过程的高效、低阈值且光稳定的TTA-UC体系。深入表征表明,在瞬态物种(即敏化剂和受体)之间的三重态扩散是高效的,并且在充气的液相和固相2,4-己二烯-1-醇中均能有效防止氧猝灭。我们还提出了一种以中空介孔二氧化硅纳米颗粒为载体对PCM进行纳米封装的新策略。该方案适用于水相和固相TTA-UC体系,也适用于各种应用,如热能存储和智能药物递送。