化学
弯曲分子几何
平面的
激发态
电导
分子
扫描隧道显微镜
分子内力
光电子学
分子物理学
化学物理
纳米技术
凝聚态物理
原子物理学
材料科学
立体化学
物理
计算机图形学(图像)
有机化学
计算机科学
作者
Qi Zou,Xuanying Chen,Yu Zhou,Xin Jin,Zhiyun Zhang,Jin Qiu,Rui Wang,Wenjing Hong,Jianhua Su,Da‐Hui Qu,He Tian
摘要
Single-molecule conductance measurements for 9,14-diphenyl-9,14-dihydrodibenzo[a,c]phenazine (DPAC) may offer unique insight into the bent-to-planar photocycle between the ground and excited states. Herein, we employ DPAC derivative DPAC-SMe as the molecular prototype to fabricate single-molecule junctions using the scanning tunneling microscope break junction technique and explore photoconductance dependence on the excited-state structural/electronic changes. We find up to ∼200% conductance enhancement of DPAC-SMe under continuous 340 nm light irradiation than that without irradiation, while photoconductance disappears in the case where structural evolution of the DPAC-SMe is halted through macrocyclization. The in situ conductance modulation as pulsed 340 nm light irradiation is monitored in the DPAC-SMe-based junctions alone, suggesting that the photoconductance of DPAC-SMe stems from photoinduced intramolecular planarization. Theoretical calculations reveal that the photoinduced structural evolution brings about a significant redistribution of the electron cloud density, which leads to the appearance of Fano resonance, resulting in enhanced conductance through the DPAC-SMe-fabricated junctions. This work provides evidence of bent-to-planar photocycle-induced conductance differences at the single-molecule level, offering a tailored approach for tuning the charge transport characteristics of organic photoelectronic devices.
科研通智能强力驱动
Strongly Powered by AbleSci AI