卟啉
扫描隧道显微镜
共价键
聚合物
自旋电子学
化学
材料科学
纳米技术
光化学
结晶学
化学物理
有机化学
铁磁性
物理
量子力学
作者
María Tenorio,Marco Lozano,Lenka Černá,Miguel Martínez García,Maxence Urbani,Koen Lauwaet,Kalyan Biswas,Diego Soler‐Polo,Shanmugasibi K. Mathialagan,Sofía O. Parreiras,José M. Gallego,Rodolfo Miranda,José I. Urgel,Tomás Torres⊗,Pavel Jelı́nek,Giovanni Bottari,David Écija
标识
DOI:10.1002/anie.202420572
摘要
π‐Electron magnetic compounds on surfaces have emerged as a powerful platform to interrogate spin interactions at the atomic scale, with great potential in spintronics and quantum technologies. A key challenge is organizing these compounds over large length scales, while elucidating their resulting magnetic properties. Herein, we offer a relevant contribution toward this objective, which consists of using on‐surface synthesis coupled with coordination chemistry to promote the self‐assembly of π‐electron magnetic porphyrin species. A porphyrin precursor equipped with carbonitrile moieties in a trans arrangement was prepared by solution synthesis and deposited on a Au(111)/mica. Depending on the specific growth protocol, surface‐promoted reactions led to the transformation of the precursor into non‐magnetic Au‐CN coordinated porphyrin monomers, covalent porphyrin dimers, and one‐dimensional porphyrin polymers (based on porphyrin monomers or covalent porphyrin dimers), as revealed by scanning probe microscopy studies combined with theoretical calculations. Interestingly, the scanning tunneling microscopy tip could convert such closed‐shell porphyrin units into open‐shell species by the removal of some peripheral hydrogen atoms. The magnetic features (i.e., singlet or triplet ground state) of the porphyrin units comprising the polymers were investigated for polymers of different lengths. No magnetic exchange coupling between adjacent units was observed.
科研通智能强力驱动
Strongly Powered by AbleSci AI