Transition-Metal Phthalocyanines as Versatile Building Blocks for Molecular Qubits on Surfaces

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Abstract

The search for molecular or colloidal building units capable of autonomously organized configurations has been a long-standing endeavor that has resulted in the development of innovative material categories, such as metal-organic and covalent organic or long-range molecular networks. In particular, the possibility of using molecules on surfaces to create specific architectures, for example, those containing nanostructures of S = 1/2 molecular spin, can enable versatile quantum materials and the exploration of future quantum devices. Transition-metal phthalocyanines are particularly attractive candidates as they are stable molecules that can host spin-bearing transition-metal ions in a planar conjugated ring. Here, we use density functional theory calculations to systematically study electronic and magnetic properties and hyperfine parameters for the whole series of 3d transition-metal atoms. We perform transport simulations of selected qubit candidates to further elucidate their suitability for molecular spin qubits on a surface.

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Urdaniz, C., Taherpour, S., Yu, J., Reina-Galvez, J., & Wolf, C. (2025). Transition-Metal Phthalocyanines as Versatile Building Blocks for Molecular Qubits on Surfaces. The Journal of Physical Chemistry. A, 129(9), 2173–2181. https://doi.org/10.1021/acs.jpca.4c07627

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