Bro-Jørgensen William, Sauer Stephan P A, Solomon Gemma C, Garner Marc H
Department of Chemistry, University of Copenhagen, Universitetsparken 5, DK-2100 Copenhagen Ø, Denmark.
Nano-Science Center, University of Copenhagen, Universitetsparken 5, DK-2100 Copenhagen Ø, Denmark.
JACS Au. 2025 Jul 23;5(8):4073-4085. doi: 10.1021/jacsau.5c00735. eCollection 2025 Aug 25.
When a small electric bias is applied to a single-molecule junction, current will flow through the molecule via a tunneling mechanism. In molecules with a cyclic or helical structure there may be circular currents, giving rise to a unidirectional magnetic field. Here, we implement the Biot-Savart law and calculate the magnetic field resulting from the ballistic current density for a selection of molecules. We find that three prerequisites are important for achieving a substantial magnetic field in a single-molecule junction. (1) The current must be high, (2) the ring current must be unidirectional within the bias window, and (3) the diameter of the ring current must be small. We identify both cyclic and linear molecules that potentially fulfill these requirements. In cyclic annulenes with bond-length alternation the current-induced magnetic field can approach the mT-range whereas archetypical cyclic molecules, such as benzene, are not suitable candidates for the generation of a substantial magnetic field. In linear carbon chains with circular currents due to their helical π-systems, the magnetic field is in the mT-range. When the bias window is gated closer to resonance, we show that the magnetic field can potentially reach the sub-tesla range. Our results provide proof-of-concept for achieving experimentally relevant current-induced magnetic fields in molecular wires at low bias.
当向单分子结施加小的电偏压时,电流将通过隧穿机制流经分子。在具有环状或螺旋结构的分子中,可能会有环形电流,从而产生单向磁场。在此,我们应用毕奥 - 萨伐尔定律,并针对一系列分子计算弹道电流密度所产生的磁场。我们发现,要在单分子结中实现可观的磁场,三个先决条件很重要。(1)电流必须很高,(2)在偏压窗口内环形电流必须是单向的,(3)环形电流的直径必须很小。我们确定了可能满足这些要求的环状和线性分子。在具有键长交替的环状轮烯中,电流感应磁场可接近毫特斯拉范围,而典型的环状分子,如苯,并不是产生可观磁场的合适候选者。在由于其螺旋π体系而具有环形电流的线性碳链中,磁场处于毫特斯拉范围。当偏压窗口更接近共振时,我们表明磁场有可能达到亚特斯拉范围。我们的结果为在低偏压下在分子导线中实现与实验相关的电流感应磁场提供了概念验证。