Wang Minglang, Zhang Guang-Ping
Shandong Key Laboratory of Medical Physics and Image Processing & Shandong Provincial Engineering and Technical Center of Light Manipulations, School of Physics and Electronics, Shandong Normal University, Jinan 250358, China.
Phys Chem Chem Phys. 2024 Mar 13;26(11):9051-9059. doi: 10.1039/d3cp04677j.
Tuning the polarity of charge carriers at a single-molecular level is essential for designing complementary logic circuits in the field of molecular electronics. Herein, the transport properties of N-heterocyclic carbene (NHC)-linked single-molecule junctions are investigated using the quantum transport approach. The results reveal that the hydrogen atoms in NHCs function as a switch for regulating the polarity of charge carriers. Dehydrogenation changes the chemical nature of NHC anchors, thereby rendering holes as the major charge carriers rather than electrons. Essentially, dehydrogenation changes the anchoring group from electron-rich to electron-deficient. The electrons transferred to molecules from the electrodes raise the molecular level closer to the Fermi level, thus resulting in charge carrier polarity conversion. This conversion is influenced by the position and number of hydrogen atoms in the NHC anchors. To efficiently and decisively alter charge carrier polarity atomic manipulation, a methyl substitution approach is developed and verified. These results confirm that atomic manipulation is a significant method for modulating the polarity of charge carriers in NHC-based single-molecule devices.
在单分子水平上调节电荷载流子的极性对于分子电子学领域中互补逻辑电路的设计至关重要。在此,使用量子输运方法研究了氮杂环卡宾(NHC)连接的单分子结的输运性质。结果表明,NHC中的氢原子充当调节电荷载流子极性的开关。脱氢改变了NHC锚定基团的化学性质,从而使空穴成为主要的电荷载流子而非电子。本质上,脱氢使锚定基团从富电子变为缺电子。从电极转移到分子的电子使分子能级更接近费米能级,从而导致电荷载流子极性转换。这种转换受NHC锚定基团中氢原子的位置和数量影响。为了有效且果断地改变电荷载流子极性,开发并验证了一种甲基取代方法。这些结果证实,原子操纵是调节基于NHC的单分子器件中电荷载流子极性的重要方法。