Trung Nguyen Thanh, Chiu Chun-Hao, Cuc Tu Thi Kim, Khang Trang Manh, Jalife Said, Nhien Pham Quoc, Hue Bui Thi Buu, Wu Judy I, Li Yaw-Kuen, Lin Hong-Cheu
Department of Materials Science and Engineering, National Yang Ming Chiao Tung University, Hsinchu, 300093, Taiwan.
Department of Chemistry, University of Houston, Houston, TX, 77204, USA.
Adv Mater. 2024 Jul;36(28):e2311789. doi: 10.1002/adma.202311789. Epub 2024 May 16.
The first tunable nano-bending structures of [1]rotaxane containing a single-fluorophoric N,N'-diphenyl-dihydrodibenzo[a,c]phenazine (DPAC) moiety (i.e., [1]RA) are developed as a loosened lasso structure to feature the bright white-light emission [CIE (0.27, 0.33), Φ = 21.2%] in THF solution, where bi-stable states of bending and twisted structures of DPAC unit in [1]RA produce cyan and orange emissions at 480 and 600 nm, respectively. With acid/base controls, tunable loosened/tightened nano-loops of corresponding [1]rotaxanes (i.e., [1]RA/[1]RB) can be achieved via the shuttling of macrocycles reversibly, and thus to adjust their respective white-light/cyan emissions, where the cyan emission of [1]RB is obtained due to the largest conformational constraint of DPAC moiety in its bending form of [1]RB with a tightened lasso structure. Additionally, the non-interlocked analog M-Boc only shows the orange emission, revealing the twisted form of DPAC fluorophore in M-Boc without any conformational constraint. Moreover, the utilization of solvents (with different viscosities and polarities), temperatures, and water fractions could serve as effective tools to adjust the bi-stable vibration-induced emission (VIE) colors of [1]rotaxanes. Finally, tuning ratiometric emission colors of adaptive conformations of DPAC moieties by altering nano-bending structures in [1]rotaxanes and external stimuli can be further developed as intelligent temperature and viscosity sensor materials.
首个含有单个荧光团N,N'-二苯基-二氢二苯并[a,c]吩嗪(DPAC)部分(即[1]RA)的[1]轮烷可调谐纳米弯曲结构被开发为一种宽松的套索结构,其在四氢呋喃溶液中呈现明亮的白光发射[CIE(0.27, 0.33),Φ = 21.2%],其中[1]RA中DPAC单元的弯曲和扭曲结构的双稳态分别在480和600 nm处产生青色和橙色发射。通过酸/碱控制,相应[1]轮烷(即[1]RA/[1]RB)的可调谐宽松/收紧纳米环可通过大环的可逆穿梭实现,从而调节它们各自的白光/青色发射,其中[1]RB的青色发射是由于DPAC部分在其具有收紧套索结构的[1]RB弯曲形式中具有最大的构象限制。此外,非互锁类似物M-Boc仅显示橙色发射,揭示了M-Boc中DPAC荧光团的扭曲形式且没有任何构象限制。而且,利用不同粘度和极性的溶剂、温度和水含量可作为调节[1]轮烷双稳态振动诱导发射(VIE)颜色的有效工具。最后,通过改变[1]轮烷中的纳米弯曲结构和外部刺激来调节DPAC部分自适应构象的比例发射颜色,可进一步开发为智能温度和粘度传感材料。