MIIT Key Laboratory of Critical Materials Technology for New Energy Conversion and Storage, School of Chemistry and Chemical Engineering, Harbin Institute of Technology, Harbin 150001, P. R. China.
ACS Appl Mater Interfaces. 2021 Aug 4;13(30):35689-35699. doi: 10.1021/acsami.1c08078. Epub 2021 Jul 21.
Stimuli-responsiveness is an important characteristic that show promising potential in various applications. Herein, a novel ZIF-8-on-Tb-dpn (Hdpn = 5-(2',4'-dicarboxylphenyl)nicotic acid) heterostructure is constructed using a heteroepitaxial strategy combining the chemical-responsive (antibiotics) and light-responsive behaviors. The pyridine nitrogen of Tb-dpn acts as an anchor site for Zn, which helps to overcome the limit of lattice mismatch between two metal-organic frameworks (MOFs) and promotes the growth of ZIF-8 nanocrystals. Based on the synergy effect of two MOFs, ZIF-8-on-Tb-dpn exhibits an efficient turn-off response toward tetracycline and chloramphenicol via competitive absorption, Förster resonance energy transfer, and photoinduced electron transfer processes with limit of detection values of 5.6 and 37.6 nM, respectively, which are three- to -fivefold lower than those of Tb-dpn. Moreover, the nanocage of ZIF-8 is utilized to encapsulate photochromic spiropyran (SP) molecules and realize the reversible conversion between SP and merocyanine (MC) under visible light and ultraviolet light. The MC form is accompanied with strong adsorption at 555 nm, which can erase the emission of Tb. Therefore, a reversible invisible anticounterfeiting pattern is designed with SP ⊂ ZIF-8-on-Tb-dpn for information anticounterfeiting. The excellent stimuli-responsive ability makes the luminescent platform a potential candidate in luminescence applications.
刺激响应性是一种重要的特性,在各种应用中显示出有前途的潜力。在此,通过结合化学响应(抗生素)和光响应行为的异质外延策略,构建了一种新型的 ZIF-8-on-Tb-dpn(Hdpn = 5-(2',4'-二羧基苯基)烟酸)异质结构。Tb-dpn 的吡啶氮用作 Zn 的锚定位点,这有助于克服两个金属有机骨架(MOFs)之间晶格不匹配的限制,并促进 ZIF-8 纳米晶体的生长。基于两种 MOFs 的协同效应,ZIF-8-on-Tb-dpn 对四环素和氯霉素表现出高效的关断响应,这是通过竞争吸收、Förster 共振能量转移和光致电子转移过程实现的,检测限分别为 5.6 和 37.6 nM,比 Tb-dpn 低三到五倍。此外,ZIF-8 的纳米笼被用于封装光致变色螺吡喃(SP)分子,并在可见光和紫外光下实现 SP 和变色菁(MC)之间的可逆转换。MC 形式伴随着在 555nm 处的强吸收,可以擦除 Tb 的发射。因此,设计了一种具有 SP⊂ZIF-8-on-Tb-dpn 的可逆隐形防伪图案用于信息防伪。优异的刺激响应能力使发光平台成为发光应用中的潜在候选者。