Mondal Sanjoy, Santra Dines Chandra, Roy Susmita, Narayana Yemineni S L V, Yoshida Takefumi, Ninomiya Yoshikazu, Higuchi Masayoshi
Electronic Functional Macromolecules Group, National Institute for Materials Science (NIMS), 1-1 Namiki, Tsukuba 305-0044, Japan.
ACS Appl Mater Interfaces. 2023 Sep 13;15(36):42912-42919. doi: 10.1021/acsami.3c06673. Epub 2023 Aug 29.
The introduction of novel materials with multifunctional chromogenic properties, such as electrochromic/electrofluorochromic (EC/EFC) properties, has recently attracted prospective interest in the development of various optoelectronic devices and smart windows. In this study, a novel Zn(II)-based metallo-supramolecular polymer () has been developed as an ON/OFF switchable EFC application with prominent EC behavior. In this regard, the polymeric chain of was first synthesized by 1:1 complexation in a zigzag manner with Zn(II) ions at the metal center and 4,4'-[bis(2,2':6',2″-terpyridinyl)benzene]triphenylamine () as the redox-active ditopic ligand. The exhibits excellent solubility in organic solvents and can form a very good uniform thin film on an indium tin oxide/glass substrate by spin-coating. In a neutral state, transparent exhibits a bright yellow color to the naked eye (absorption at ∼325 nm). The electroactive triphenylamine (TPA) core of , however, undergoes reversible single-electron oxidation when a positive bias of +1.6 V vs Ag/Ag is applied, generating radical cations (TPA ↔ TPA) with a significant drop in transparency (77%). A noticeable chromic shift in the hue of the film from brilliant yellow to green was observed with the appearance of a near-infrared absorption band at ∼897 nm with a tail of 1300-1600 nm. Interestingly, in addition to this EC phenomenon, the fabricated solid-state film exhibits intense, high-contrast reddish-orange photoluminescence with λ = 650 nm, which is significantly desired as a molecular probe for bioimaging. Both the TPA core and the redox-inactive Zn(II)-terpyridine core emit orange-red photoluminescence in , which is significantly quenched upon the oxidation of the film and is re-emitted at 0.0 V vs Ag/Ag. This ON/OFF EFC transition was sustained for several cycles. This study should motivate to design and create distinctive new unique materials with combined EC/EFC behavior for the fabrication of optoelectronic devices by combining a metal-fluorescent core with a redox-active spacer.
具有多功能变色特性的新型材料的引入,如电致变色/电致荧光变色(EC/EFC)特性,最近在各种光电器件和智能窗的开发中引起了广泛关注。在本研究中,一种新型的基于锌(II)的金属超分子聚合物()已被开发用于具有显著EC行为的开/关可切换EFC应用。在这方面,首先通过在金属中心以锯齿形方式将锌(II)离子与4,4'-[双(2,2':6',2″-三联吡啶基)苯]三苯胺()以1:1络合的方式合成了的聚合物链,作为氧化还原活性双齿配体。该在有机溶剂中表现出优异的溶解性,并且可以通过旋涂在氧化铟锡/玻璃基板上形成非常均匀的薄膜。在中性状态下,透明的在肉眼看来呈现亮黄色(在325nm处有吸收)。然而,当施加相对于Ag/Ag为+1.6V的正偏压时,的电活性三苯胺(TPA)核心会发生可逆的单电子氧化,生成自由基阳离子(TPA ↔ TPA),透明度显著下降(77%)。随着在897nm处出现近红外吸收带以及1300 - 1600nm的尾部,观察到薄膜的色调从亮黄色明显变色为绿色。有趣的是,除了这种EC现象外,制备的固态薄膜还表现出强烈的、高对比度的红橙色光致发光,λ = 650nm,这作为生物成像的分子探针非常理想。TPA核心和氧化还原惰性的锌(II)-三联吡啶核心在中均发射橙红色光致发光,在薄膜氧化时显著猝灭,并在相对于Ag/Ag为0.0V时重新发射。这种开/关EFC转变持续了几个循环。这项研究应该会促使人们设计和创造具有独特的EC/EFC组合行为的新型独特材料,通过将金属荧光核心与氧化还原活性间隔基结合来制造光电器件。