Cheng Yaran, Wang Jiahao, Shen Yangyang, Li Haixing
Department of Physics, City University of Hong Kong, Kowloon 999077, Hong Kong, China.
Frontier Institute of Science and Technology, Xi'an Jiaotong University, Yanxiang Road 99, Xi'an 710045, China.
J Phys Chem Lett. 2025 Feb 6;16(5):1247-1252. doi: 10.1021/acs.jpclett.4c03299. Epub 2025 Jan 26.
Amines are one of the most ubiquitous functional groups in molecular junctions; however, the exact regulation of the charge transport through the protonation state of an amine group in the junction backbone remains elusive. We address this question here by designing a diphenylamine molecular backbone and experimentally investigating how protonation of the central amine group affects the charge transport. Our ultraviolet-visible spectroscopy measurements demonstrate the protonation reaction of the diphenylamine compound in the presence of either trifluoroacetic acid or HCl, and we observe a consistent trend of a modestly increased conductance for diphenylamine in the presence of acid, indicating that a protonated amine group in a diphenylamine backbone slightly enhances the electron conduction. We further investigate the charge transport across diphenylamine under a series of applied tip bias voltages between -0.9 to 0.9 V in an electrochemical environment in the absence and presence of acid for determining the frontier molecular orbital alignment with the Fermi level and the coupling coefficient between the molecule and the electrodes. Our finding shows that the highest occupied molecular orbital (HOMO) is the dominating transport channel of the diphenylamine junction, and a modest conductance increase is an outcome of the HOMO resonance energy moving closer to the Fermi level upon protonation of the amine.
胺是分子结中最普遍存在的官能团之一;然而,通过结骨架中胺基团的质子化状态对电荷传输的确切调控仍不清楚。我们在此通过设计一种二苯胺分子骨架并实验研究中心胺基团的质子化如何影响电荷传输来解决这个问题。我们的紫外可见光谱测量证明了二苯胺化合物在三氟乙酸或盐酸存在下的质子化反应,并且我们观察到在酸存在下二苯胺的电导率有适度增加的一致趋势,这表明二苯胺骨架中的质子化胺基团略微增强了电子传导。我们进一步在有无酸的电化学环境中,在 -0.9 至 0.9 V 的一系列施加尖端偏置电压下研究穿过二苯胺的电荷传输,以确定前沿分子轨道与费米能级的对齐以及分子与电极之间的耦合系数。我们的发现表明,最高占据分子轨道(HOMO)是二苯胺结的主要传输通道,电导率的适度增加是胺质子化后 HOMO 共振能量更接近费米能级的结果。