Hybrid Heterostructures of a Spin Crossover Coordination Polymer on MoS2: Elucidating the Role of the 2D Substrate

Author:

Núñez‐López Alejandro1ORCID,Torres‐Cavanillas Ramón12ORCID,Morant‐Giner Marc13ORCID,Vassilyeva Natalia1ORCID,Mattana Richard4ORCID,Tatay Sergio1ORCID,Ohresser Philippe5ORCID,Otero Edwige5ORCID,Fonda Emiliano5ORCID,Paulus Michael6,Rubio‐Giménez Víctor17ORCID,Forment‐Aliaga Alicia1ORCID,Coronado Eugenio1ORCID

Affiliation:

1. Instituto de Ciencia Molecular (ICMol) Universitat de València 46980 Catedrático José Beltrán 2 Paterna Spain

2. Department of Materials University of Oxford OX1 3PH Oxford UK

3. Department of Chemical and Pharmaceutical Sciences University of Trieste 34127 Via L. Giorgieri 1 Trieste Italy

4. Unité Mixte de Physique, CNRS, Thales Université Paris‐Saclay 91767 Palaiseau France

5. Synchrotron SOLEIL L'Orme des Merisiers 91190 Saint Aubin France

6. Fakultät Physik/DELTA Technische Universität Dortmund 44221 Dortmund Germany

7. Centre for Membrane Separations, Adsorption, Catalysis and Spectroscopy (cMACS) Katholieke Universiteit Leuven Celestijnenlaan 200F Leuven 3001 Belgium

Abstract

AbstractControlling the deposition of spin‐crossover (SCO) materials constitutes a crucial step for the integration of these bistable molecular systems in electronic devices. Moreover, the influence of functional surfaces, such as 2D materials, can be determinant on the properties of the deposited SCO film. In this work, ultrathin films of the SCO Hofmann‐type coordination polymer [Fe(py)2{Pt(CN)4}] (py = pyridine) onto monolayers of 1T and 2H MoS2 polytypes are grown. The resulting hybrid heterostructures are characterized by GIXRD, XAS, XPS, and EXAFS to get information on the structure and the specific interactions generated at the interface, as well as on the spin transition. The use of a layer‐by‐layer results in SCO/2D heterostructures, with crystalline and well‐oriented [Fe(py)2{Pt(CN)4}]. Unlike with conventional Au or SiO2 substrates, no intermediate self‐assembled monolayer is required, thanks to the surface S atoms. Furthermore, it is observed that the higher presence of Fe3+ in the 2H heterostructures hinders an effective spin transition for [Fe(py)2{Pt(CN)4}] films thinner than 8 nm. Remarkably, when using 1T MoS2, this transition is preserved in films as thin as 4 nm, due to the reducing character of this metallic substrate. These results highlight the active role that 2D materials play as substrates in hybrid molecular/2D heterostructures.

Funder

European Research Council

Generalitat Valenciana

Fonds Wetenschappelijk Onderzoek

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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