Highly-Entangled Polyradical Nanographene with Coexisting Strong Correlation and Topological Frustration
Authors/Creators
- 1. Department of Chemistry, National University of Singapore, 3 Science Drive 3, Singapore 117543, Singapore
- 2. Institute of Physics of the Czech Academy of Sciences, Prague, 16200, Czech Republic
- 3. Department of Theoretical Chemistry, J. Heyrovsky Institute of Physical Chemistry, Czech Academy of Sciences, Prague 18200, Czech Republic
Description
Open-shell benzenoid polycyclic aromatic hydrocarbons, known as magnetic nanographenes, exhibit unconventional π-magnetism arising from topological frustration or strong electronic-electron interaction. Imprinting multiple strongly entangled spins into polyradical nanographenes creates a major paradigm shift in realizing non-trivial collective quantum behaviors and exotic quantum phases in organic quantum materials. However, conventional design approaches are limited by a single magnetic origin, which can restrict the number of correlated spins or the type of magnetic ordering in open-shell nanographenes. Here, we present a novel design strategy combing topological frustration and electron-electron interactions to fabricate the largest fully-fused open-shell nanographene reported to date, a 'butterfly'-shaped tetraradical on Au(111). We employed bond-resolved scanning tunneling microscopy and spin excitation spectroscopy to unambiguously resolve the molecular backbone and reveal the strongly correlated open-shell character, respectively. This nanographene contains four unpaired electrons with both ferromagnetic and anti-ferromagnetic interactions, harboring a many-body singlet ground state and strong multi-spin entanglement, which can be well described by many-body calculations. Furthermore, we demonstrate that the nickelocene magnetic probe can sense highly-correlated spin states in nanographene. The ability to imprint and characterize many-body strongly correlated spins in polyradical nanographenes not only presents exciting opportunities for realizing non-trivial quantum magnetism and phases in organic materials but also paves the way toward high-density ultrafast spintronic devices and quantum information technologies.
Files
Fig1.zip
Files
(41.8 MB)
| Name | Size | Download all |
|---|---|---|
|
md5:501455022959fcb1dec81f558990a2cb
|
163.8 kB | Preview Download |
|
md5:ffd2faf7bd8be4429d88325b37a4b2f6
|
32.9 MB | Preview Download |
|
md5:505a44c2bf64a6e934a0af72a352f78d
|
8.5 MB | Preview Download |
|
md5:b4514f6f4bf26fd04eb4ec2b86047464
|
230.8 kB | Preview Download |
|
md5:a9714f47661835dcfa71ea0a17695bbb
|
6.0 kB | Download |
|
md5:d3471d34cfb8aa589c41698051215e8a
|
3.3 kB | Preview Download |
|
md5:a64388b4191602487732f6326b48e9a9
|
455 Bytes | Preview Download |