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Dive into the research topics where Francisco Javier Valverde-Muñoz is active.

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Featured researches published by Francisco Javier Valverde-Muñoz.


Inorganic Chemistry | 2015

Synthesis of Nanocrystals and Particle Size Effects Studies on the Thermally Induced Spin Transition of the Model Spin Crossover Compound [Fe(phen)2(NCS)2].

Francisco Javier Valverde-Muñoz; Ana B. Gaspar; Sergii I. Shylin; Vadim Ksenofontov; José Antonio Real

Surfactant-free nanocrystals of the model spin-crossover compound [Fe(phen)2(NCS)2] (phen: 1,10-phenanthroline) have been synthesized applying the reverse micelle technique. The morphology of the nanocrystals, characterized by scanning electronic microscopy, corresponds to rhombohedric platelets with dimensions ranging from 203 × 203 × 106 nm to 142 × 142 × 74 nm. Variation of the concentration of the Fe(BF4)2·6H2O salt in the synthesis has been found to have little influence on the crystallite size. In contrast, the solvent-surfactant ratio (ω) is critical for a good particle growth. The spin transition of the nanocrystals has been characterized by magnetic susceptibility measurements and Mössbauer spectroscopy. The nanocrystals undergo an abrupt and more cooperative spin transition in comparison with the bulk compound. The spin transition is centered in the interval of temperature of 175-185 K and is accompanied by 8 K of thermal hysteresis width. The crystallite quality more than the crystallite size is responsible for the higher cooperativity. The magnetic properties of the nanocrystals embedded in organic polymers such as polyethylene glycol, nujol, glycerol, and triton have been studied as well. The spin transition in the nanocrystals is affected by the polymer coating. The abrupt and first-order spin transition transforms into a more continuous spin transition as a result of the chemical pressure asserted by the organic polymers on the Fe(II) centers.


Journal of the American Chemical Society | 2017

Metal-Controlled Magnetoresistance at Room Temperature in Single-Molecule Devices

Albert C. Aragonès; Daniel Aravena; Francisco Javier Valverde-Muñoz; José Antonio Real; Fausto Sanz; Ismael Díez-Pérez; Eliseo Ruiz

The appropriate choice of the transition metal complex and metal surface electronic structure opens the possibility to control the spin of the charge carriers through the resulting hybrid molecule/metal spinterface in a single-molecule electrical contact at room temperature. The single-molecule conductance of a Au/molecule/Ni junction can be switched by flipping the magnetization direction of the ferromagnetic electrode. The requirements of the molecule include not just the presence of unpaired electrons: the electronic configuration of the metal center has to provide occupied or empty orbitals that strongly interact with the junction metal electrodes and that are close in energy to their Fermi levels for one of the electronic spins only. The key ingredient for the metal surface is to provide an efficient spin texture induced by the spin-orbit coupling in the topological surface states that results in an efficient spin-dependent interaction with the orbitals of the molecule. The strong magnetoresistance effect found in this kind of single-molecule wire opens a new approach for the design of room-temperature nanoscale devices based on spin-polarized currents controlled at molecular level.


Inorganic Chemistry | 2017

Guest Induced Strong Cooperative One- and Two-Step Spin Transitions in Highly Porous Iron(II) Hofmann-Type Metal–Organic Frameworks

Lucía Piñeiro-López; Francisco Javier Valverde-Muñoz; Maksym Seredyuk; M. Carmen Muñoz; Matti Haukka; José Antonio Real

The synthesis, crystal structure, magnetic, calorimetric, and Mössbauer studies of a series of new Hofmann-type spin crossover (SCO) metal-organic frameworks (MOFs) is reported. The new SCO-MOFs arise from self-assembly of FeII, bis(4-pyridyl)butadiyne (bpb), and [Ag(CN)2]- or [MII(CN)4]2- (MII = Ni, Pd). Interpenetration of four identical 3D networks with α-Po topology are obtained for {Fe(bpb)[AgI(CN)2]2} due to the length of the rod-like bismonodentate bpb and [Ag(CN)2]- ligands. The four networks are tightly packed and organized in two subsets orthogonally interpenetrated, while the networks in each subset display parallel interpenetration. This nonporous material undergoes a very incomplete SCO, which is rationalized from its intricate structure. In contrast, the single network Hofmann-type MOFs {Fe(bpb)[MII(CN)4]}·nGuest (MII = Ni, Pd) feature enhanced porosity and display complete one-step or two-step cooperative SCO behaviors when the pores are filled with two molecules of nitrobenzene or naphthalene that interact strongly with the pyridyl and cyano moieties of the bpb ligands via π-π stacking. The lack of these guest molecules favors stabilization of the high-spin state in the whole range of temperatures. However, application of hydrostatic pressure induces one- and two-step SCO.


Dalton Transactions | 2015

Spin crossover in iron(II) complexes with ferrocene-bearing triazole-pyridine ligands

Tania Romero‐Morcillo; Francisco Javier Valverde-Muñoz; Lucía Piñeiro-López; M. Carmen Muñoz; Tomás Romero; Pedro Molina; José Antonio Real

In the search for new multifunctional spin crossover molecular materials, here we describe the synthesis, crystal structures and magnetic and photomagnetic properties of the complexes trans-[Fe(Fc-tzpy)2(NCX)2]·CHCl3 where Fc-tzpy is the ferrocene-appended ligand 4-(2-pyridyl)-1H-1,2,3-triazol-1-ylferrocene, X = S (1) and X = Se (2). Both complexes display thermal- and light-induced (LIESST) spin crossover properties characterised by T1/2 = 85 and 168 K, ΔS = 55 and 66 J K(-1) mol(-1), ΔH = 4.7 and 11.1 kJ mol(-1) and TLIESST = 47 K and 39 K for1 and 2 respectively. The crystal structure of 1 and 2 measured at 275 K is consistent with the iron(ii) ion in the high-spin state while the crystal structure of at 120 K denotes the occurrence of complete transformation to the low-spin state.


RSC Advances | 2015

Two-step spin crossover behaviour in the chiral one-dimensional coordination polymer [Fe(HAT)(NCS)2]∞

Tania Romero‐Morcillo; Francisco Javier Valverde-Muñoz; M. Carmen Muñoz; Juan Manuel Herrera; Enrique Colacio; José Antonio Real

Solvated and unsolvated forms of the complex [Fe(HAT)(NCS)2]∞·(nMeOH) (1) (n = 1.5, 0; HAT = 1,4,5,8,9,12-hexaazatriphenylene) were prepared. The structure of 1·(1.5MeOH), measured at 120 K, showed that this system crystallizes in the homochiral P43 tetragonal space group. The solid is constituted of stacks of one-dimensional coordination polymers running along c-axis. All the FeII centres have the same Λ or Δ conformation and are in the LS state at 120 K. In the range of temperatures 10–300 K the magnetic properties of 1·(1.5MeOH) shows the occurrence of reversible spin crossover behaviour. However, above ca. 310 K complete desolvation of 1·(1.5MeOH) to give 1 was observed from crystal structure analysis, magnetic behaviour and thermal analysis. Compound 1 displays a two-step spin crossover behaviour characterised by a plateau 60 K wide. Simulation of the two-step behaviour in the frame of the regular solutions theory afforded, respectively, the critical temperatures (Tci), the interaction parameters (Γi), and the enthalpy (ΔHi) and entropy (ΔSi) variations for steps i = 1 and 2: Tc1(Tc2) = 172 (358) K, Γ1(Γ2) = 1.6 (3.0) kJ mol−1, ΔH1(ΔH2) = 5.7 (18.3) kJ mol−1 and ΔS1(ΔS2) = 33.4 (51.0) J K mol−1.


Journal of the American Chemical Society | 2018

Very long-lived photogenerated high-spin phase of a multistable spin-crossover molecular material

Teresa Delgado; Antoine Tissot; Laure Guénée; Andreas Hauser; Francisco Javier Valverde-Muñoz; Maksym Seredyuk; José Antonio Real; Sébastien Pillet; El-Eulmi Bendeif; Céline Besnard

The spin-crossover compound [Fe( n-Bu-im)3(tren)](PF6)2 shows an unusual long relaxation time of 20 h after light-induced excited spin state trapping when irradiating at 80 K. This is more than 40 times longer than when irradiating at 10 K. Optical absorption spectroscopy, magnetometry, and X-ray diffraction using synchrotron radiation were used to characterize and explain the different relaxation behaviors of this compound after irradiation below and above 70 K. Rearrangement of the butyl chains of the ligands occurring during the relaxation after irradiation above 70 K is thought to be responsible for the unusually long relaxation time at this temperature.


Inorganic Chemistry | 2018

Switchable Spin-Crossover Hofmann-Type 3D Coordination Polymers Based on Tri- and Tetratopic Ligands

Francisco Javier Valverde-Muñoz; M. Carmen Muñoz; Sacramento Ferrer; Carlos Bartual-Murgui; José Antonio Real

FeII spin-crossover (SCO) coordination polymers of the Hofmann type have become an archetypal class of responsive materials. Almost invariably, the construction of their architectures has been based on the use of monotopic and linear ditopic pyridine-like ligands. In the search for new Hofmann-type architectures with SCO properties, here we analyze the possibilities of bridging ligands with higher connectivity degree. More precisely, the synthesis and structure of {FeII(LN3)[MI(CN)2]2}·(Guest) (Guest = nitrobenzene, benzonitrile, o-dichlorobenzene; MI = Ag, Au) and {FeII(LN4)[Ag2(CN)3][Ag(CN)2]}·H2O are described, where LN3 and LN4 are the tritopic and tetratopic ligands 1,3,5-tris(pyridin-4-ylethynyl)benzene and 1,2,4,5-tetrakis(pyridin-4-ylethynyl)benzene. This new series of Hofmann clathrates displays thermo- and photoinduced SCO behaviors.


Angewandte Chemie | 2016

First Step Towards a Devil's Staircase in Spin‐Crossover Materials

Elzbieta Trzop; Daopeng Zhang; Lucía Piñeiro-López; Francisco Javier Valverde-Muñoz; M. Carmen Muñoz; Lukas Palatinus; Laurent Guérin; H. Cailleau; José Antonio Real; Eric Collet


Inorganic Chemistry | 2016

Strong Cooperative Spin Crossover in 2D and 3D FeII–MI,II Hofmann-Like Coordination Polymers Based on 2-Fluoropyrazine

Francisco Javier Valverde-Muñoz; Maksym Seredyuk; M. Carmen Muñoz; Kateryna O. Znovjyak; Igor O. Fritsky; José Antonio Real


Crystal Growth & Design | 2017

Competing Phases Involving Spin-State and Ligand Structural Orderings in a Multistable Two-Dimensional Spin Crossover Coordination Polymer

Daopeng Zhang; Elzbieta Trzop; Francisco Javier Valverde-Muñoz; Lucía Piñeiro-López; M. Carmen Muñoz; Eric Collet; José Antonio Real

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M. Carmen Muñoz

Polytechnic University of Valencia

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Daopeng Zhang

Shandong University of Technology

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Maksym Seredyuk

Taras Shevchenko National University of Kyiv

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Lukas Palatinus

École Polytechnique Fédérale de Lausanne

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