Tailoring the Electronic Configurations of YPc$_2$ on Cu(111): Decoupling Strategies for Molecular Spin Qubits Platforms

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Main Authors: Oh, Soyoung, Cho, Franklin. H., Soe, We-hyo, Yu, Jisoo, Bui, Hong, Spree, Lukas, Hommel, Caroline, Jang, Wonjun, Phark, Soo-hyon, Colazzo, Luciano, Wolf, Christoph, Donati, Fabio
Format: Preprint
Published: 2025
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author Oh, Soyoung
Cho, Franklin. H.
Soe, We-hyo
Yu, Jisoo
Bui, Hong
Spree, Lukas
Hommel, Caroline
Jang, Wonjun
Phark, Soo-hyon
Colazzo, Luciano
Wolf, Christoph
Donati, Fabio
author_facet Oh, Soyoung
Cho, Franklin. H.
Soe, We-hyo
Yu, Jisoo
Bui, Hong
Spree, Lukas
Hommel, Caroline
Jang, Wonjun
Phark, Soo-hyon
Colazzo, Luciano
Wolf, Christoph
Donati, Fabio
contents Among the potential spin qubit candidates, yttrium phthalocyanine double-decker (YPc$_2$) features a diamagnetic metal ion core that stabilizes the molecular structure, while its magnetic properties arise primarily from an unpaired electron (S=1/2) delocalized over the two phthalocyanine (Pc) ligands. Understanding its properties in the proximity of metal electrodes is crucial to assess its potential use in molecular spin qubits architectures. Here, we investigated the morphology and electronic structure of this molecule adsorbed on Cu(111) surface using scanning tunneling microscopy (STM). On Cu(111), YPc$_2$ adsorbs flat, with isolated molecules showing a preferred orientation along the <111> crystal axes. Moreover, we observed two different types of self-assembly molecular packing when growing molecular patches. For YPc$_2$ in direct contact with Cu(111), STM revealed a widely separated highest occupied and lowest unoccupied molecular orbitals (HOMO/LUMO), suggesting the quenching of the unpaired spin. Conversely, when YPc$_2$ is separated from the metal substrate by a few-layer thick diamagnetic zinc phthalocyanine (ZnPc) layer, we found the HOMO to split into singly occupied and singly unoccupied molecular orbitals (SOMO/SUMO). We observed that more than 2 layers of ZnPc are needed to avoid intermixing between the two molecules and spin quenching in YPc2. Density functional theory (DFT) reveals the spin quenching is due to the hybridization between YPc$_2$ and Cu(111) states, confirming the importance of using suitable decoupling layers to preserve the unpaired molecular spin. Our results suggest the potential of YPc$_2$/ZnPc heterostructures as a stable and effective molecular spin qubit platform and validate the possibility of integrating this molecular spin qubit candidate in future quantum logic devices.
format Preprint
id arxiv_https___arxiv_org_abs_2505_15539
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Tailoring the Electronic Configurations of YPc$_2$ on Cu(111): Decoupling Strategies for Molecular Spin Qubits Platforms
Oh, Soyoung
Cho, Franklin. H.
Soe, We-hyo
Yu, Jisoo
Bui, Hong
Spree, Lukas
Hommel, Caroline
Jang, Wonjun
Phark, Soo-hyon
Colazzo, Luciano
Wolf, Christoph
Donati, Fabio
Mesoscale and Nanoscale Physics
Chemical Physics
Among the potential spin qubit candidates, yttrium phthalocyanine double-decker (YPc$_2$) features a diamagnetic metal ion core that stabilizes the molecular structure, while its magnetic properties arise primarily from an unpaired electron (S=1/2) delocalized over the two phthalocyanine (Pc) ligands. Understanding its properties in the proximity of metal electrodes is crucial to assess its potential use in molecular spin qubits architectures. Here, we investigated the morphology and electronic structure of this molecule adsorbed on Cu(111) surface using scanning tunneling microscopy (STM). On Cu(111), YPc$_2$ adsorbs flat, with isolated molecules showing a preferred orientation along the <111> crystal axes. Moreover, we observed two different types of self-assembly molecular packing when growing molecular patches. For YPc$_2$ in direct contact with Cu(111), STM revealed a widely separated highest occupied and lowest unoccupied molecular orbitals (HOMO/LUMO), suggesting the quenching of the unpaired spin. Conversely, when YPc$_2$ is separated from the metal substrate by a few-layer thick diamagnetic zinc phthalocyanine (ZnPc) layer, we found the HOMO to split into singly occupied and singly unoccupied molecular orbitals (SOMO/SUMO). We observed that more than 2 layers of ZnPc are needed to avoid intermixing between the two molecules and spin quenching in YPc2. Density functional theory (DFT) reveals the spin quenching is due to the hybridization between YPc$_2$ and Cu(111) states, confirming the importance of using suitable decoupling layers to preserve the unpaired molecular spin. Our results suggest the potential of YPc$_2$/ZnPc heterostructures as a stable and effective molecular spin qubit platform and validate the possibility of integrating this molecular spin qubit candidate in future quantum logic devices.
title Tailoring the Electronic Configurations of YPc$_2$ on Cu(111): Decoupling Strategies for Molecular Spin Qubits Platforms
topic Mesoscale and Nanoscale Physics
Chemical Physics
url https://arxiv.org/abs/2505.15539