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A Porphyrin Spin Qubit and Its 2D Framework Nanosheets
Authors:Ainhoa Urtizberea  Eva Natividad  Pablo J Alonso  Miguel A Andrés  Ignacio Gascón  Michel Goldmann  Olivier Roubeau
Affiliation:1. Instituto de Ciencia de Materiales de Aragón (ICMA), CSIC and Universidad de Zaragoza, Zaragoza, Spain;2. Centro Universitario de la Defensa, Zaragoza, Spain;3. Departamento de Física de la Materia Condensada, Universidad de Zaragoza, Zaragoza, Spain;4. Instituto de Nanociencia de Aragón (INA), Universidad de Zaragoza, Zaragoza, Spain;5. Departamento de Química Física, Universidad de Zaragoza, Zaragoza, Spain;6. Sorbonne Universités, UPMC Univ. Paris 06, CNRS‐UMR 7588, Institut des NanoSciences de Paris, Paris, France;7. Faculté des Sciences Fondamentales et Biomédicales, Université Paris Descartes, Paris, France;8. Synchrotron SOLEIL, L'Orme des Merisiers, Gif‐sur‐Yvettes, France
Abstract:Molecular spin qubits have been shown to reach sufficiently long quantum coherence times to envision their use as hardware in quantum processors. These will however require their implementation in hybrid solid‐state devices for which the controlled localization and homogeneous orientation of the molecular qubits will be necessary. An alternative to isolated molecules that can ensure these key aspects is 2D framework in which the qubit would act as node. In this work, it is demonstrated that the isolated metalloporphyrin Cu(H4TCPP)] molecule is a potential spin qubit, and maintains similar quantum coherence as node in a 2D {CuTCPP}Zn2(H2O)2] metal–organic framework. Mono‐ and multilayer deposits of nanosheets of a similar 2D framework are then successfully formed following a modular method based on Langmuir–Schaefer conditions. The orientation of the {CuTCPP} qubit nodes in these nanosheets is homogeneous parallel to the substrate. These nanosheets are also formed with a control over the qubit concentration, i.e., by dilution with the unmetallated porphyrin. Eventually, 2D nanosheets are formed in situ directly on a substrate, through a simple protocol devised to reproduce the Langmuir–Schaefer conditions locally. Altogether these studies show that 2D spin qubit frameworks are ideal components to develop a hybrid quantum computing architecture.
Keywords:magnetic materials  metal–  organic frameworks  porphyrin  spin relaxation  thin films
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