Optimized local synthetic conditions induce size reduction and phase purification in {[Fe(Htrz)2(trz)](BF4)}n spin crossover particles

DOI

Data set and images from Optimized local synthetic conditions induce size reduction and phase purification in {Fe(Htrz)2(trz)}n spin crossover particles

  • Publication : Castel T., Marchetti A., Houard F., Daro N., Marchivie M., Chastanet G. and Bernot K. Optimized local synthetic conditions induce size reduction and phase purification in {Fe(Htrz)2(trz)}n spin crossover particles. Crystal Growth & Design 2023 vol.23, n°2, p.1076-1083. HAL : https://hal.science/hal-03945807

Dataset production context :

The well-known synthesis of the two polymorphs of the {Fe(Htrz)2(trz)}n spin crossover coordination polymer is explored with new template-free methods that allow a control over the local synthetic conditions. A “one-pot” synthesis approach is developed, in which the solid reactants are mixed together before the addition of the solvent, which is expected to generate instantaneous supersaturation conditions favoring the nucleation of particles over their growth. In a second method, the addition of ultrasound pulses promotes the appearance of local “hot spots” that affect the local temperature and allow exploring a different region of the concentration–temperature phase diagram, leading to an increase in the phase purity of the product. These two syntheses are compared to the classical method in which the reactants are first dissolved in separate solutions before being mixed. The use of a one-pot synthesis, with or without ultrasound pulses, induces a downsizing of the particle size by a factor of 500 on their volume. The addition of ultrasound pulses allows moving from a mixture of polymorphs I and II of this compound to the pure phase I. These approaches open the way to more studies on the control over the size or phase purity in such molecular compounds, without the use of any surfactant.

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Identifier
DOI https://doi.org/10.57745/CE15YW
Related Identifier https://doi.org/10.1021/acs.cgd.2c01237
Metadata Access https://entrepot.recherche.data.gouv.fr/oai?verb=GetRecord&metadataPrefix=oai_datacite&identifier=doi:10.57745/CE15YW
Provenance
Creator Castel, Tristan; Marchetti, Anaïs; Houard, Félix ORCID logo; Daro, Nathalie ORCID logo; Marchivie, Mathieu ORCID logo; Chastanet, Guillaume ORCID logo; Bernot, Kevin ORCID logo
Publisher Recherche Data Gouv
Contributor TOULIN, Stéphane; Centre National de la Recherche Scientifique; Université de Bordeaux; Bordeaux INP; Université de Rennes; INSA Rennes; Entrepôt-Catalogue Recherche Data Gouv
Publication Year 2023
Funding Reference French National Research Agency ANR-19-CE07-0022-01 ; Région Nouvelle Aquitaine ; Région Bretagne Boost’ERC RECoord No. 1122 ; Institut Universitaire de France ; NSA Rennes
Rights etalab 2.0; info:eu-repo/semantics/openAccess; https://spdx.org/licenses/etalab-2.0.html
OpenAccess true
Contact TOULIN, Stéphane (CNRS - Personnels des unités)
Representation
Resource Type Dataset
Format text/plain; text/tab-separated-values; image/jpeg
Size 3011; 59271; 665422; 968222; 61950; 44806; 598865; 713190; 932446; 62185; 42635; 739776; 702780; 999422; 80355; 59240; 43813; 620304; 669174; 862774; 62322; 59354; 44747; 674806; 747639; 981110; 61432; 57439; 43475; 687767; 844100; 933081; 62890; 57100; 29471; 682059
Version 2.0
Discipline Chemistry; Physics; Engineering Sciences; Materials Science; Materials Science and Engineering; Natural Sciences